rat retina total rna Search Results


90
Jima Inc amos amo-1 and amo-133a
Primers used for quantitative real-time RT-PCR
Amos Amo 1 And Amo 133a, supplied by Jima Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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New England Biolabs nebnext ribosomal rna rrna depletion kit
Primers used for quantitative real-time RT-PCR
Nebnext Ribosomal Rna Rrna Depletion Kit, supplied by New England Biolabs, used in various techniques. Bioz Stars score: 99/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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New England Biolabs human mouse rat
Primers used for quantitative real-time RT-PCR
Human Mouse Rat, supplied by New England Biolabs, used in various techniques. Bioz Stars score: 97/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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New England Biolabs nebnext rrna depletion kit
Primers used for quantitative real-time RT-PCR
Nebnext Rrna Depletion Kit, supplied by New England Biolabs, used in various techniques. Bioz Stars score: 97/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Average 97 stars, based on 1 article reviews
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New England Biolabs nebnext globin rrna depletion kit human mouse rat
Primers used for quantitative real-time RT-PCR
Nebnext Globin Rrna Depletion Kit Human Mouse Rat, supplied by New England Biolabs, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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90
Promega reverse transcribed according to the manufacturer’s instructions
Primers used for quantitative real-time RT-PCR
Reverse Transcribed According To The Manufacturer’s Instructions, supplied by Promega, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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95
Miltenyi Biotec rat neonatal cardiomyocyte isolation kit
Figure 2. <t>Cardiomyocyte-specific</t> knockout of ETV1 slows atrial and His-Purkinje system conduction. Etv1flox/
Rat Neonatal Cardiomyocyte Isolation Kit, supplied by Miltenyi Biotec, used in various techniques. Bioz Stars score: 95/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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93
R&D Systems goat anti human igfbp rp1 polyclonal antibody
<t>IGFBP-rP1-knockdown</t> in RF/6A cells by siIGFBP-rP1. (A) Reverse transcription-quantitative PCR analysis of IGFBP-rP1 transcript expression in RF/6A cells. GAPDH served as an internal reference for control. Both siIGFBP-rP1 duplex 1 and 2 significantly inhibited the expression IGFBP-rP1 compared with controls ( # P<0.05). Furthermore, the inhibitory effect of siIGFBP-rP1 duplex 2 was significantly increased compared with siIGFBP-rP1 duplex 1 (*P<0.05). (B) IGFBP-rP1 expression was measured by western blotting and normalized to that of β-actin. The inhibitory effect of siIGFBP-rP1 on the IGFBP-rP1 protein expression was consistent with that of the RNA expression. The membranes were stripped off and probed for the proteins. Data are presented as the mean ± standard deviation of three independent experiments with similar results and calculated as the integrated optical density of IGFBP-rP1 relative to the internal reference. # P<0.01 vs. the blank control group. *P<0.05 vs. the siIGFBP-rP1 duplex 1 group. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA. Lane M, marker; lane 1, blank control; lane 2, transfection reagent; lane 3, scrambled control siRNA; lane 4, siRNA duplex 1; lane 5, siRNA duplex 2.
Goat Anti Human Igfbp Rp1 Polyclonal Antibody, supplied by R&D Systems, used in various techniques. Bioz Stars score: 93/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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94
R&D Systems mouse tl1a
<t>TL1A</t> is an epithelial cytokine expressed in alveolar epithelium and airway basal cells in human healthy and asthmatic lungs. (A) Single-cell RNA-seq analysis of TNFSF15 ( TL1A ) expression in the LungMAP single-cell human lung atlas. Uniform manifold projection (UMAP) plots show the clustering of 347,970 lung cells (10 single-cell datasets, 148 normal human lung samples from 104 donors: adult, child, and adolescent). Results are visualized using ShinyCell and are based upon data generated by the LungMAP Consortium and downloaded from http://www.lungmap.net . (B and C) Single-cell RNA-seq analysis of TNFSF15 ( TL1A ) expression in epithelial cells from human healthy (B) and asthmatic (C) lungs. t-SNE plots show clustering of 26,154 epithelial cells in upper and lower airways and lung parenchyma in healthy lungs (B; 17 human samples: 6 alveoli and parenchyma, 9 bronchi, 2 nasal), and 25,146 epithelial cells from lower airways in healthy and asthmatic lungs (C; 12 human samples: 15,033 cells from 6 asthma bronchi; 10,113 cells from 6 control bronchi). t-SNE plots were extracted from data obtained by the human lung single-cell atlas and downloaded from https://asthma.cellgeni.sanger.ac.uk .
Mouse Tl1a, supplied by R&D Systems, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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90
Promega pgipz based vectors
(A) VLDL-apo B and VLDL-B100 secretion were measured following 18 h incubation of McA cells in cDMEM (black bars) and in 1% BSA/DMEM (gray bars) by immuno slot blotting. (B) Representative standard curve generated from an immuno slot blot (duplicate standards) where VLDL protein is plotted against average chemiluminescence signal in arbitrary units (AU) generated using anti-rat B100 monoclonal antibody and HRP-anti-mouse IgG. (C) Immunoblots of McA cell lysates from four independent experiments comparing McA cells incubated in cDMEM with 1% BSA/DMEM. Anti-GAPDH blotting display equal protein loading. (D) Relative expression of Apob, <t>Sort1</t> and Atf3 mRNA in McA cells incubated in 1% BSA/DMEM as a percentage of mRNA present in McA cells incubated in cDMEM. Results are averages from 4 independent experiments.* Indicates means are significantly different.
Pgipz Based Vectors, supplied by Promega, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/rat+retina+total+rna/pgipz+based+vectors/pmc05002383-123-17-10
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R&D Systems recombinant proteins chir99021 tocris 4423 recombinant human murine rat activin a r d systems 338 ac recombinant human bmp4 r d systems 314 bp
(A) VLDL-apo B and VLDL-B100 secretion were measured following 18 h incubation of McA cells in cDMEM (black bars) and in 1% BSA/DMEM (gray bars) by immuno slot blotting. (B) Representative standard curve generated from an immuno slot blot (duplicate standards) where VLDL protein is plotted against average chemiluminescence signal in arbitrary units (AU) generated using anti-rat B100 monoclonal antibody and HRP-anti-mouse IgG. (C) Immunoblots of McA cell lysates from four independent experiments comparing McA cells incubated in cDMEM with 1% BSA/DMEM. Anti-GAPDH blotting display equal protein loading. (D) Relative expression of Apob, <t>Sort1</t> and Atf3 mRNA in McA cells incubated in 1% BSA/DMEM as a percentage of mRNA present in McA cells incubated in cDMEM. Results are averages from 4 independent experiments.* Indicates means are significantly different.
Recombinant Proteins Chir99021 Tocris 4423 Recombinant Human Murine Rat Activin A R D Systems 338 Ac Recombinant Human Bmp4 R D Systems 314 Bp, supplied by R&D Systems, used in various techniques. Bioz Stars score: 96/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Image Search Results


Primers used for quantitative real-time RT-PCR

Journal: Journal of Biomedical Science

Article Title: Role of miR-1 and miR-133a in myocardial ischemic postconditioning

doi: 10.1186/1423-0127-18-22

Figure Lengend Snippet: Primers used for quantitative real-time RT-PCR

Article Snippet: miRNA's mimics (Gene Bank NO.: rno-miR-1, NR 032116.1 ; rno-mir-133a, NR 031879.1 ) and AMOs (AMO-1 and AMO-133a) were synthesized by Jima Inc (Shanghai, China).

Techniques:

The sequences of  miRNA mimics  and AMOs

Journal: Journal of Biomedical Science

Article Title: Role of miR-1 and miR-133a in myocardial ischemic postconditioning

doi: 10.1186/1423-0127-18-22

Figure Lengend Snippet: The sequences of miRNA mimics and AMOs

Article Snippet: miRNA's mimics (Gene Bank NO.: rno-miR-1, NR 032116.1 ; rno-mir-133a, NR 031879.1 ) and AMOs (AMO-1 and AMO-133a) were synthesized by Jima Inc (Shanghai, China).

Techniques:

 MiRNAs  significantly dysregulated by IR

Journal: Journal of Biomedical Science

Article Title: Role of miR-1 and miR-133a in myocardial ischemic postconditioning

doi: 10.1186/1423-0127-18-22

Figure Lengend Snippet: MiRNAs significantly dysregulated by IR

Article Snippet: miRNA's mimics (Gene Bank NO.: rno-miR-1, NR 032116.1 ; rno-mir-133a, NR 031879.1 ) and AMOs (AMO-1 and AMO-133a) were synthesized by Jima Inc (Shanghai, China).

Techniques: Control

Regulation of miR-1 and miR-133a by IPost . MiR-1 and miR-133a were down-regulated in IR group, while IPost up-regulated them as compared with IR group ( n = 10, *P < 0.05, compared with Con group; ▲ P < 0.05, compared wit IR group ).

Journal: Journal of Biomedical Science

Article Title: Role of miR-1 and miR-133a in myocardial ischemic postconditioning

doi: 10.1186/1423-0127-18-22

Figure Lengend Snippet: Regulation of miR-1 and miR-133a by IPost . MiR-1 and miR-133a were down-regulated in IR group, while IPost up-regulated them as compared with IR group ( n = 10, *P < 0.05, compared with Con group; ▲ P < 0.05, compared wit IR group ).

Article Snippet: miRNA's mimics (Gene Bank NO.: rno-miR-1, NR 032116.1 ; rno-mir-133a, NR 031879.1 ) and AMOs (AMO-1 and AMO-133a) were synthesized by Jima Inc (Shanghai, China).

Techniques:

The expression of miR-133a and CASP9 protein after transferring the mimic or AMO . (A) Relative expression of miR-133a in different groups. MiR-133a was down-regulated by AMO-133a, and up-regulated by miR-133a mimic ( n = 10, *P < 0.05, compared with IR group; ▲ P < 0.05, compared with AMO-133+IR group ); (B) The relative quantity of CASP9 protein in different groups. AMO-133a up-regulated CASP9 protein, and miR-133a mimic down-regulated it( n = 10, *P < 0.05, compared with IR group ).

Journal: Journal of Biomedical Science

Article Title: Role of miR-1 and miR-133a in myocardial ischemic postconditioning

doi: 10.1186/1423-0127-18-22

Figure Lengend Snippet: The expression of miR-133a and CASP9 protein after transferring the mimic or AMO . (A) Relative expression of miR-133a in different groups. MiR-133a was down-regulated by AMO-133a, and up-regulated by miR-133a mimic ( n = 10, *P < 0.05, compared with IR group; ▲ P < 0.05, compared with AMO-133+IR group ); (B) The relative quantity of CASP9 protein in different groups. AMO-133a up-regulated CASP9 protein, and miR-133a mimic down-regulated it( n = 10, *P < 0.05, compared with IR group ).

Article Snippet: miRNA's mimics (Gene Bank NO.: rno-miR-1, NR 032116.1 ; rno-mir-133a, NR 031879.1 ) and AMOs (AMO-1 and AMO-133a) were synthesized by Jima Inc (Shanghai, China).

Techniques: Expressing, Transferring

MiR-133a mimic attenuates myocardiocyte apoptosis in vivo . (A) TUNEL staining pictures, in which brown stained cells were TUNEL positive cells (magnification, × 400). (B) The percent of TUNEL positive cells in the heart. MiR-133a mimic decreased the apoptosis ratio induced by IR, while AMO-133a increased the apoptosis ratio ( n = 10, *P < 0.05, compared with IR group ).

Journal: Journal of Biomedical Science

Article Title: Role of miR-1 and miR-133a in myocardial ischemic postconditioning

doi: 10.1186/1423-0127-18-22

Figure Lengend Snippet: MiR-133a mimic attenuates myocardiocyte apoptosis in vivo . (A) TUNEL staining pictures, in which brown stained cells were TUNEL positive cells (magnification, × 400). (B) The percent of TUNEL positive cells in the heart. MiR-133a mimic decreased the apoptosis ratio induced by IR, while AMO-133a increased the apoptosis ratio ( n = 10, *P < 0.05, compared with IR group ).

Article Snippet: miRNA's mimics (Gene Bank NO.: rno-miR-1, NR 032116.1 ; rno-mir-133a, NR 031879.1 ) and AMOs (AMO-1 and AMO-133a) were synthesized by Jima Inc (Shanghai, China).

Techniques: In Vivo, TUNEL Assay, Staining

Representative diagrams of the flow cytometric readings for myocardiocytes stained with annexin V and propidium iodide (PI) . ( A) IR. (B) miR-1 mimic+ IR. (C) AMO-1 +IR. (D) miR-133a mimic+ IR. (E) AMO-133a inhibitor +IR. (F) The percentage of apoptosis induced by IR in each group. MiR-1 promoted cell aopoptosis during IR, but miR-133a inhibited cell apoptosis during IR. (* P < 0.05, compared with IR group compared with IR group )

Journal: Journal of Biomedical Science

Article Title: Role of miR-1 and miR-133a in myocardial ischemic postconditioning

doi: 10.1186/1423-0127-18-22

Figure Lengend Snippet: Representative diagrams of the flow cytometric readings for myocardiocytes stained with annexin V and propidium iodide (PI) . ( A) IR. (B) miR-1 mimic+ IR. (C) AMO-1 +IR. (D) miR-133a mimic+ IR. (E) AMO-133a inhibitor +IR. (F) The percentage of apoptosis induced by IR in each group. MiR-1 promoted cell aopoptosis during IR, but miR-133a inhibited cell apoptosis during IR. (* P < 0.05, compared with IR group compared with IR group )

Article Snippet: miRNA's mimics (Gene Bank NO.: rno-miR-1, NR 032116.1 ; rno-mir-133a, NR 031879.1 ) and AMOs (AMO-1 and AMO-133a) were synthesized by Jima Inc (Shanghai, China).

Techniques: Staining

Figure 2. Cardiomyocyte-specific knockout of ETV1 slows atrial and His-Purkinje system conduction. Etv1flox/

Journal: Scientific reports

Article Title: ETV1 activates a rapid conduction transcriptional program in rodent and human cardiomyocytes.

doi: 10.1038/s41598-018-28239-7

Figure Lengend Snippet: Figure 2. Cardiomyocyte-specific knockout of ETV1 slows atrial and His-Purkinje system conduction. Etv1flox/

Article Snippet: P1 NRVM heart lysates were purified using Miltenyi Biotec rat neonatal cardiomyocyte isolation kit (Miltenyi Biotec, 130–105–420) according to the manufacture’s protocol.

Techniques: Knock-Out

Figure 3. Cardiomyocyte deletion of ETV1 resulted in decreased expression of fast conduction genes in atrial and His-Purkinje system (HPS) myocytes. (A) Quantitative RT-PCR of fast conduction gene RNA levels (normalized to Gapdh) comparing 10–12-week-old Etv1 WT (Etv1flox/flox) and Etv1 cKO (Etv1flox/flox, Myh6- Cre) FACS-purified ventricular, atrial, and Purkinje myocytes. Relative Nkx2–5, Gja5, and Scn5a expression displayed versus control, Etv1 WT (n = 4). (B) Immunoblot assessment of Etv1 WT and Etv1 cKO atrial tissue lysates detecting NKX2–5, Cx40, NaV1.5, and Vinculin (loading control). (C) Protein level densitometric quantification (normalized to vinculin), displayed relative to Etv1 WT (n = 5). (D) Immunofluorescence evaluation of NKX2–5, Cx40, and NaV1.5 expression in 10-week-old Etv1 WT and Etv1 cKO atria/ventricular sections. (E) Immunofluorescence evaluation of NKX2–5, Cx40, and NaV1.5 expression in 10-week-old Etv1 WT and Etv1 cKO HPS sections. Positive CNTN2 expression identified HPS cells. Nuclei were identified by DAPI (blue). LA, left atria; LV, left ventricle. Data represent mean ± SEM. *P < 0.05, 2-tailed Student’s t test. Scale bars: 50 um.

Journal: Scientific reports

Article Title: ETV1 activates a rapid conduction transcriptional program in rodent and human cardiomyocytes.

doi: 10.1038/s41598-018-28239-7

Figure Lengend Snippet: Figure 3. Cardiomyocyte deletion of ETV1 resulted in decreased expression of fast conduction genes in atrial and His-Purkinje system (HPS) myocytes. (A) Quantitative RT-PCR of fast conduction gene RNA levels (normalized to Gapdh) comparing 10–12-week-old Etv1 WT (Etv1flox/flox) and Etv1 cKO (Etv1flox/flox, Myh6- Cre) FACS-purified ventricular, atrial, and Purkinje myocytes. Relative Nkx2–5, Gja5, and Scn5a expression displayed versus control, Etv1 WT (n = 4). (B) Immunoblot assessment of Etv1 WT and Etv1 cKO atrial tissue lysates detecting NKX2–5, Cx40, NaV1.5, and Vinculin (loading control). (C) Protein level densitometric quantification (normalized to vinculin), displayed relative to Etv1 WT (n = 5). (D) Immunofluorescence evaluation of NKX2–5, Cx40, and NaV1.5 expression in 10-week-old Etv1 WT and Etv1 cKO atria/ventricular sections. (E) Immunofluorescence evaluation of NKX2–5, Cx40, and NaV1.5 expression in 10-week-old Etv1 WT and Etv1 cKO HPS sections. Positive CNTN2 expression identified HPS cells. Nuclei were identified by DAPI (blue). LA, left atria; LV, left ventricle. Data represent mean ± SEM. *P < 0.05, 2-tailed Student’s t test. Scale bars: 50 um.

Article Snippet: P1 NRVM heart lysates were purified using Miltenyi Biotec rat neonatal cardiomyocyte isolation kit (Miltenyi Biotec, 130–105–420) according to the manufacture’s protocol.

Techniques: Expressing, Quantitative RT-PCR, Purification, Control, Western Blot, Immunofluorescence

Figure 5. ETV1 regulates the diversity of sodium channel biophysical properties between ventricular, atrial, and Purkinje myocytes. Whole-cell patch clamp data from dissociated cardiomyocytes (ventricular, right atrial, Purkinje myocytes) using 10–12 week-old Etv1 WT (Etv1flox/flox) and Etv1 cKO (Etv1flox/flox, Myh6-Cre) mice in a Cntn2-EGFP background (n = 4). (A) Comparison of sodium current–voltage (I–V) relationship. Maximum conductance was calculated to assess significant differences among experimental groups. (B) Voltage dependence of steady-state activation. Voltage at half activation (V0.5, activation) was calculated to assess significant differences among experimental groups. (C) Voltage dependence of steady-state inactivation. Voltage at half inactivation (V0.5, inactivation) was calculated to assess significant differences among experimental groups. (D) Time course of recovery from inactivation. Tau of recovery (τrecovery) was calculated to assess significant differences among experimental groups. Number of cells analyzed per cell type (ventricle, right atria, Purkinje) included in each graph legend. Patch clamp protocol diagrams are included for each endpoint. Data represent mean ± SEM. *P < 0.05, 1-way ANOVA.

Journal: Scientific reports

Article Title: ETV1 activates a rapid conduction transcriptional program in rodent and human cardiomyocytes.

doi: 10.1038/s41598-018-28239-7

Figure Lengend Snippet: Figure 5. ETV1 regulates the diversity of sodium channel biophysical properties between ventricular, atrial, and Purkinje myocytes. Whole-cell patch clamp data from dissociated cardiomyocytes (ventricular, right atrial, Purkinje myocytes) using 10–12 week-old Etv1 WT (Etv1flox/flox) and Etv1 cKO (Etv1flox/flox, Myh6-Cre) mice in a Cntn2-EGFP background (n = 4). (A) Comparison of sodium current–voltage (I–V) relationship. Maximum conductance was calculated to assess significant differences among experimental groups. (B) Voltage dependence of steady-state activation. Voltage at half activation (V0.5, activation) was calculated to assess significant differences among experimental groups. (C) Voltage dependence of steady-state inactivation. Voltage at half inactivation (V0.5, inactivation) was calculated to assess significant differences among experimental groups. (D) Time course of recovery from inactivation. Tau of recovery (τrecovery) was calculated to assess significant differences among experimental groups. Number of cells analyzed per cell type (ventricle, right atria, Purkinje) included in each graph legend. Patch clamp protocol diagrams are included for each endpoint. Data represent mean ± SEM. *P < 0.05, 1-way ANOVA.

Article Snippet: P1 NRVM heart lysates were purified using Miltenyi Biotec rat neonatal cardiomyocyte isolation kit (Miltenyi Biotec, 130–105–420) according to the manufacture’s protocol.

Techniques: Patch Clamp, Comparison, Activation Assay

Figure 6. ETV1-transduced neonatal rat ventricular myocytes (NRVMs) upregulates a His-Purkinje system gene signature. (A) Volcano plot of relative transcript expression from NRVMs transduced with either Ad-Etv1- EGFP or Ad-EGFP. RNA-sequencing (RNA-seq) comparison revealed a total of 9,236 differentially expressed genes (normalized counts ≥ 5, padj < 0.05). All significantly different genes (padj < 0.05) are labeled blue (downregulated) or red (enriched) and all nonsignificantly different transcripts labeled in gray. Of these there were 4,696 upregulated and 4,540 downregulated genes in Ad-Etv1-EGFP versus Ad-EGFP transduced NRVMs. (B) Functional clustering of upregulated genes in Ad-Etv1 transduced NRVMs highlighted significantly enriched ETV1-dependent cellular processes (top 20 non-redundant categories are shown). Pathways are color coded to represent genes clustered into functional classes for heat maps in C. (C) Comparative RNA-seq between 21-day-old (P21) wild-type mouse FACS-purified Purkinje cell (PC)/ventricular myocytes (VM) and Ad-Etv1-EGFP/Ad-EGFP transduced NRVMs. Heat map representation of 88 genes differentially expressed in Ad-Etv1-EGFP versus Ad-EGFP transduced NRVMs (n = 3) plotted adjacent to average fold change expression in PCs and VMs. Genes clustered into functional groups demonstrate that ETV1 regulates a PC transcriptome in neonatal cardiomyocytes.

Journal: Scientific reports

Article Title: ETV1 activates a rapid conduction transcriptional program in rodent and human cardiomyocytes.

doi: 10.1038/s41598-018-28239-7

Figure Lengend Snippet: Figure 6. ETV1-transduced neonatal rat ventricular myocytes (NRVMs) upregulates a His-Purkinje system gene signature. (A) Volcano plot of relative transcript expression from NRVMs transduced with either Ad-Etv1- EGFP or Ad-EGFP. RNA-sequencing (RNA-seq) comparison revealed a total of 9,236 differentially expressed genes (normalized counts ≥ 5, padj < 0.05). All significantly different genes (padj < 0.05) are labeled blue (downregulated) or red (enriched) and all nonsignificantly different transcripts labeled in gray. Of these there were 4,696 upregulated and 4,540 downregulated genes in Ad-Etv1-EGFP versus Ad-EGFP transduced NRVMs. (B) Functional clustering of upregulated genes in Ad-Etv1 transduced NRVMs highlighted significantly enriched ETV1-dependent cellular processes (top 20 non-redundant categories are shown). Pathways are color coded to represent genes clustered into functional classes for heat maps in C. (C) Comparative RNA-seq between 21-day-old (P21) wild-type mouse FACS-purified Purkinje cell (PC)/ventricular myocytes (VM) and Ad-Etv1-EGFP/Ad-EGFP transduced NRVMs. Heat map representation of 88 genes differentially expressed in Ad-Etv1-EGFP versus Ad-EGFP transduced NRVMs (n = 3) plotted adjacent to average fold change expression in PCs and VMs. Genes clustered into functional groups demonstrate that ETV1 regulates a PC transcriptome in neonatal cardiomyocytes.

Article Snippet: P1 NRVM heart lysates were purified using Miltenyi Biotec rat neonatal cardiomyocyte isolation kit (Miltenyi Biotec, 130–105–420) according to the manufacture’s protocol.

Techniques: Expressing, Transduction, RNA Sequencing, Comparison, Labeling, Functional Assay, Purification

Figure 8. Activation of ETV1 in human induced pluripotent stem cells-derived cardiomyocytes (hiPSC-CMs) leads to increased expression of rapid conduction genes and sodium current. (A) Schematic representation of hiPSC-CM generation and maturation (day 0–21), transduction of Ad-Etv1-EGFP or Ad-EGFP (day 24), and timepoint for experimentation (day 38–40). (B) Quantitative RT-PCR analysis of Etv1, NKX2–5, GJA5, SCN5A, and MYL2 in hiPSC-CM transduced with either Ad-Etv1-EGFP or Ad-EGFP (n = 4). (C) Whole-cell patch clamp was performed on Ad-Etv1-EGFP (n = 12) or Ad-EGFP (n = 9) transduced hiPSC-CMs. Sodium current–voltage (I–V) relationship comparison. (D) hiPSC-CM NaV peak conductance (gNaV-peak). gNaV-peak following −120 mV to −35 mV depolarization step was measured for Ad-Etv1-EGFP (n = 12) or Ad-EGFP (n = 9) transduced hiPSC-CMs. Data represent mean ± SEM. *P < 0.05, 2-tailed Student’s t test.

Journal: Scientific reports

Article Title: ETV1 activates a rapid conduction transcriptional program in rodent and human cardiomyocytes.

doi: 10.1038/s41598-018-28239-7

Figure Lengend Snippet: Figure 8. Activation of ETV1 in human induced pluripotent stem cells-derived cardiomyocytes (hiPSC-CMs) leads to increased expression of rapid conduction genes and sodium current. (A) Schematic representation of hiPSC-CM generation and maturation (day 0–21), transduction of Ad-Etv1-EGFP or Ad-EGFP (day 24), and timepoint for experimentation (day 38–40). (B) Quantitative RT-PCR analysis of Etv1, NKX2–5, GJA5, SCN5A, and MYL2 in hiPSC-CM transduced with either Ad-Etv1-EGFP or Ad-EGFP (n = 4). (C) Whole-cell patch clamp was performed on Ad-Etv1-EGFP (n = 12) or Ad-EGFP (n = 9) transduced hiPSC-CMs. Sodium current–voltage (I–V) relationship comparison. (D) hiPSC-CM NaV peak conductance (gNaV-peak). gNaV-peak following −120 mV to −35 mV depolarization step was measured for Ad-Etv1-EGFP (n = 12) or Ad-EGFP (n = 9) transduced hiPSC-CMs. Data represent mean ± SEM. *P < 0.05, 2-tailed Student’s t test.

Article Snippet: P1 NRVM heart lysates were purified using Miltenyi Biotec rat neonatal cardiomyocyte isolation kit (Miltenyi Biotec, 130–105–420) according to the manufacture’s protocol.

Techniques: Activation Assay, Derivative Assay, Expressing, Transduction, Quantitative RT-PCR, Patch Clamp, Comparison

IGFBP-rP1-knockdown in RF/6A cells by siIGFBP-rP1. (A) Reverse transcription-quantitative PCR analysis of IGFBP-rP1 transcript expression in RF/6A cells. GAPDH served as an internal reference for control. Both siIGFBP-rP1 duplex 1 and 2 significantly inhibited the expression IGFBP-rP1 compared with controls ( # P<0.05). Furthermore, the inhibitory effect of siIGFBP-rP1 duplex 2 was significantly increased compared with siIGFBP-rP1 duplex 1 (*P<0.05). (B) IGFBP-rP1 expression was measured by western blotting and normalized to that of β-actin. The inhibitory effect of siIGFBP-rP1 on the IGFBP-rP1 protein expression was consistent with that of the RNA expression. The membranes were stripped off and probed for the proteins. Data are presented as the mean ± standard deviation of three independent experiments with similar results and calculated as the integrated optical density of IGFBP-rP1 relative to the internal reference. # P<0.01 vs. the blank control group. *P<0.05 vs. the siIGFBP-rP1 duplex 1 group. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA. Lane M, marker; lane 1, blank control; lane 2, transfection reagent; lane 3, scrambled control siRNA; lane 4, siRNA duplex 1; lane 5, siRNA duplex 2.

Journal: Molecular Medicine Reports

Article Title: IGFBP-rP1-silencing promotes hypoxia-induced angiogenic potential of choroidal endothelial cells via the RAF/MEK/ERK signaling pathway

doi: 10.3892/mmr.2020.11578

Figure Lengend Snippet: IGFBP-rP1-knockdown in RF/6A cells by siIGFBP-rP1. (A) Reverse transcription-quantitative PCR analysis of IGFBP-rP1 transcript expression in RF/6A cells. GAPDH served as an internal reference for control. Both siIGFBP-rP1 duplex 1 and 2 significantly inhibited the expression IGFBP-rP1 compared with controls ( # P<0.05). Furthermore, the inhibitory effect of siIGFBP-rP1 duplex 2 was significantly increased compared with siIGFBP-rP1 duplex 1 (*P<0.05). (B) IGFBP-rP1 expression was measured by western blotting and normalized to that of β-actin. The inhibitory effect of siIGFBP-rP1 on the IGFBP-rP1 protein expression was consistent with that of the RNA expression. The membranes were stripped off and probed for the proteins. Data are presented as the mean ± standard deviation of three independent experiments with similar results and calculated as the integrated optical density of IGFBP-rP1 relative to the internal reference. # P<0.01 vs. the blank control group. *P<0.05 vs. the siIGFBP-rP1 duplex 1 group. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA. Lane M, marker; lane 1, blank control; lane 2, transfection reagent; lane 3, scrambled control siRNA; lane 4, siRNA duplex 1; lane 5, siRNA duplex 2.

Article Snippet: Recombinant human IGFBP-rP1 and goat anti-human IGFBP-rP1 polyclonal antibody (cat. no. AF1334) were obtained from R&D Systems, Inc. Rabbit anti-human GAPDH polyclonal (cat. no. 10494-1-AP) and mouse anti-human β-actin monoclonal (cat. no. 66009-1-Ig) antibodies were obtained from ProteinTech Group, Inc. Rabbit anti-human VEGF polyclonal (cat. no. ab150766) antibodies were purchased from Abcam.

Techniques: Knockdown, Reverse Transcription, Real-time Polymerase Chain Reaction, Expressing, Control, Western Blot, RNA Expression, Standard Deviation, Binding Assay, Marker, Transfection

Cell growth curves of siIGFBP-rP1-transfected cells and untransfected cells cultured in normoxic conditions for 6, 12, 24, 48 and 72 h. The OD values of transfected cells at 12, 24 and 48 h were significantly higher compared with untransfected cells (*P<0.01). Furthermore, the OD value of siIGFBP-rP1 duplex 2-transfected cells was significantly higher compared with siIGFBP-rP1 duplex 1-transfected cells at 24 h ( # P<0.01). No significant differences were observed among the groups at 6 and 72 h. OD values are presented as the mean ± standard deviation of 4 wells/group and experiments were performed in triplicate. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA; OD, optical density.

Journal: Molecular Medicine Reports

Article Title: IGFBP-rP1-silencing promotes hypoxia-induced angiogenic potential of choroidal endothelial cells via the RAF/MEK/ERK signaling pathway

doi: 10.3892/mmr.2020.11578

Figure Lengend Snippet: Cell growth curves of siIGFBP-rP1-transfected cells and untransfected cells cultured in normoxic conditions for 6, 12, 24, 48 and 72 h. The OD values of transfected cells at 12, 24 and 48 h were significantly higher compared with untransfected cells (*P<0.01). Furthermore, the OD value of siIGFBP-rP1 duplex 2-transfected cells was significantly higher compared with siIGFBP-rP1 duplex 1-transfected cells at 24 h ( # P<0.01). No significant differences were observed among the groups at 6 and 72 h. OD values are presented as the mean ± standard deviation of 4 wells/group and experiments were performed in triplicate. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA; OD, optical density.

Article Snippet: Recombinant human IGFBP-rP1 and goat anti-human IGFBP-rP1 polyclonal antibody (cat. no. AF1334) were obtained from R&D Systems, Inc. Rabbit anti-human GAPDH polyclonal (cat. no. 10494-1-AP) and mouse anti-human β-actin monoclonal (cat. no. 66009-1-Ig) antibodies were obtained from ProteinTech Group, Inc. Rabbit anti-human VEGF polyclonal (cat. no. ab150766) antibodies were purchased from Abcam.

Techniques: Transfection, Cell Culture, Standard Deviation, Binding Assay

Cell growth curves of siIGFBP-rP1-transfected or untransfected cells cultured under normoxic or hypoxic conditions for 6, 12, 24, 48 and 72 h, as detected by MTS colorimetric assays. The OD values of hypoxic groups (CoCl 2 and 1% O 2 ) decreased significantly at 12, 24, 48 and 72 h compared with the control group ( # P<0.01). There was no significant difference between the hypoxic groups (P>0.05). The OD value of the siRNA group were significantly increased at 12, 24 and 48 h compared with controls (**P<0.01). Furthermore, the OD values of the transfected cells cultured in hypoxic conditions (CoCl 2 + siRNA group and 1% O 2 + siRNA group) for 12, 24, 48 and 72 h were significantly lower compared with the siRNA group; additionally, the values were significantly higher compared with the hypoxic groups (*P<0.01). No significant differences were identified between the CoCl 2 + siRNA, 1% O 2 + siRNA and control groups (P>0.05). OD values are presented as the mean ± standard deviation of 4 wells/group and experiments were performed in triplicate. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA; CoCl 2 , cobalt chloride; OD, optical density.

Journal: Molecular Medicine Reports

Article Title: IGFBP-rP1-silencing promotes hypoxia-induced angiogenic potential of choroidal endothelial cells via the RAF/MEK/ERK signaling pathway

doi: 10.3892/mmr.2020.11578

Figure Lengend Snippet: Cell growth curves of siIGFBP-rP1-transfected or untransfected cells cultured under normoxic or hypoxic conditions for 6, 12, 24, 48 and 72 h, as detected by MTS colorimetric assays. The OD values of hypoxic groups (CoCl 2 and 1% O 2 ) decreased significantly at 12, 24, 48 and 72 h compared with the control group ( # P<0.01). There was no significant difference between the hypoxic groups (P>0.05). The OD value of the siRNA group were significantly increased at 12, 24 and 48 h compared with controls (**P<0.01). Furthermore, the OD values of the transfected cells cultured in hypoxic conditions (CoCl 2 + siRNA group and 1% O 2 + siRNA group) for 12, 24, 48 and 72 h were significantly lower compared with the siRNA group; additionally, the values were significantly higher compared with the hypoxic groups (*P<0.01). No significant differences were identified between the CoCl 2 + siRNA, 1% O 2 + siRNA and control groups (P>0.05). OD values are presented as the mean ± standard deviation of 4 wells/group and experiments were performed in triplicate. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA; CoCl 2 , cobalt chloride; OD, optical density.

Article Snippet: Recombinant human IGFBP-rP1 and goat anti-human IGFBP-rP1 polyclonal antibody (cat. no. AF1334) were obtained from R&D Systems, Inc. Rabbit anti-human GAPDH polyclonal (cat. no. 10494-1-AP) and mouse anti-human β-actin monoclonal (cat. no. 66009-1-Ig) antibodies were obtained from ProteinTech Group, Inc. Rabbit anti-human VEGF polyclonal (cat. no. ab150766) antibodies were purchased from Abcam.

Techniques: Transfection, Cell Culture, Control, Standard Deviation, Binding Assay

Cell motility of siIGFBP-rP1-transfected or untransfected cells cultured under normoxic or hypoxic conditions for 24 h is detected by wound and Transwell assays. (A) Representative images showing that RF/6A cells migrated across the wound boundary to the blank area (light microscopy; magnification, ×400) and (B) passed across the filter toward the lower surface (light microscopy; magnification, ×200). Hypoxia significantly promoted cell mobility compared with the controls ( # P<0.01). siIGFBP-rP1 transfection (siIGFBP-rP1 group) further enhanced cell migration, as compared with untransfected cells cultured in hypoxic conditions (hypoxia group; *P<0.01). The transfected cells cultured in hypoxic conditions (hypoxia + siRNA group) exhibited a significantly increased migration ability compared with the transfected cells cultured in normoxic conditions (siIGFBP-rP1 group; **P<0.01). Values are presented as the mean ± standard deviation of 4 samples/group and experiments were performed in triplicate and are quantified as the ratio relative to the control group. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA.

Journal: Molecular Medicine Reports

Article Title: IGFBP-rP1-silencing promotes hypoxia-induced angiogenic potential of choroidal endothelial cells via the RAF/MEK/ERK signaling pathway

doi: 10.3892/mmr.2020.11578

Figure Lengend Snippet: Cell motility of siIGFBP-rP1-transfected or untransfected cells cultured under normoxic or hypoxic conditions for 24 h is detected by wound and Transwell assays. (A) Representative images showing that RF/6A cells migrated across the wound boundary to the blank area (light microscopy; magnification, ×400) and (B) passed across the filter toward the lower surface (light microscopy; magnification, ×200). Hypoxia significantly promoted cell mobility compared with the controls ( # P<0.01). siIGFBP-rP1 transfection (siIGFBP-rP1 group) further enhanced cell migration, as compared with untransfected cells cultured in hypoxic conditions (hypoxia group; *P<0.01). The transfected cells cultured in hypoxic conditions (hypoxia + siRNA group) exhibited a significantly increased migration ability compared with the transfected cells cultured in normoxic conditions (siIGFBP-rP1 group; **P<0.01). Values are presented as the mean ± standard deviation of 4 samples/group and experiments were performed in triplicate and are quantified as the ratio relative to the control group. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA.

Article Snippet: Recombinant human IGFBP-rP1 and goat anti-human IGFBP-rP1 polyclonal antibody (cat. no. AF1334) were obtained from R&D Systems, Inc. Rabbit anti-human GAPDH polyclonal (cat. no. 10494-1-AP) and mouse anti-human β-actin monoclonal (cat. no. 66009-1-Ig) antibodies were obtained from ProteinTech Group, Inc. Rabbit anti-human VEGF polyclonal (cat. no. ab150766) antibodies were purchased from Abcam.

Techniques: Transfection, Cell Culture, Light Microscopy, Migration, Standard Deviation, Control, Binding Assay

IGFBP-rP1-silencing stimulates hypoxia-induced tube formation of RF/6A cells. Representative images (inverted phase contrast microscopy; magnification, ×50) demonstrating that RF/6A cells formed capillary-like tube structures within the Matrigel layer in different mediums. RF/6A cells in hypoxic conditions or siIGFBP-rP1-transfected cells significantly formed completely enclosed capillary-like tubes compared with the controls ( # P<0.01 the hypoxia group vs. the control group; *P<0.01 the siIGFBP-rP1 group vs. the control group). Moreover, siIGFBP-rP1 transfection further promoted tube formation in RF/6A cells in the hypoxia + siIGFBP-rP1 group compared with the siIGFBP-rP1 group (**P<0.01). The values are presented as the mean ± standard deviation of 4 samples/group and experiments were performed in triplicate and are quantified as the ratio relative to the control group. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific small interfering RNA.

Journal: Molecular Medicine Reports

Article Title: IGFBP-rP1-silencing promotes hypoxia-induced angiogenic potential of choroidal endothelial cells via the RAF/MEK/ERK signaling pathway

doi: 10.3892/mmr.2020.11578

Figure Lengend Snippet: IGFBP-rP1-silencing stimulates hypoxia-induced tube formation of RF/6A cells. Representative images (inverted phase contrast microscopy; magnification, ×50) demonstrating that RF/6A cells formed capillary-like tube structures within the Matrigel layer in different mediums. RF/6A cells in hypoxic conditions or siIGFBP-rP1-transfected cells significantly formed completely enclosed capillary-like tubes compared with the controls ( # P<0.01 the hypoxia group vs. the control group; *P<0.01 the siIGFBP-rP1 group vs. the control group). Moreover, siIGFBP-rP1 transfection further promoted tube formation in RF/6A cells in the hypoxia + siIGFBP-rP1 group compared with the siIGFBP-rP1 group (**P<0.01). The values are presented as the mean ± standard deviation of 4 samples/group and experiments were performed in triplicate and are quantified as the ratio relative to the control group. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific small interfering RNA.

Article Snippet: Recombinant human IGFBP-rP1 and goat anti-human IGFBP-rP1 polyclonal antibody (cat. no. AF1334) were obtained from R&D Systems, Inc. Rabbit anti-human GAPDH polyclonal (cat. no. 10494-1-AP) and mouse anti-human β-actin monoclonal (cat. no. 66009-1-Ig) antibodies were obtained from ProteinTech Group, Inc. Rabbit anti-human VEGF polyclonal (cat. no. ab150766) antibodies were purchased from Abcam.

Techniques: Microscopy, Transfection, Control, Standard Deviation, Binding Assay, Small Interfering RNA

IGFBP-rP1-silencing upregulates the hypoxia-induced RAF/MEK/ERK signaling pathway activation and VEGF expression. Representative images and quantified data demonstrated that hypoxic stress upregulated B-RAF, p-MEK, p-ERK and VEGF expression in RF/6A cells compared with controls ( # P<0.05). siIGFBP-rP1 transfection significantly promoted hypoxia-induced B-RAF, p-MEK, p-ERK and VEGF expression in RF/6A compared with the hypoxia group ( # P<0.05). IGFBP-rP1 restoration significantly downregulated the expression of B-RAF, p-MEK, p-ERK and VEGF in siIGFBP-rP1-transfected cells, under both normoxic and hypoxic conditions, compared with the siIGFBP-rP1 and hypoxia + siIGFBP-rP1 groups, respectively (*P<0.01). The membranes were stripped off and probed for the proteins. Values are presented as the mean ± SD of 3 independent experiments with similar results and are presented as the integrated optical density of studied proteins relative to GAPDH. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA. Lane 1, control; lane 2, siIGFBP-rP1; lane 3, siIGFBP-rP1 + IGFBP-rP1; lane 4, hypoxia; lane 5, hypoxia + siIGFBP-rP1; lane 6, hypoxia + siIGFBP-rP1 + IGFBP-rP1.

Journal: Molecular Medicine Reports

Article Title: IGFBP-rP1-silencing promotes hypoxia-induced angiogenic potential of choroidal endothelial cells via the RAF/MEK/ERK signaling pathway

doi: 10.3892/mmr.2020.11578

Figure Lengend Snippet: IGFBP-rP1-silencing upregulates the hypoxia-induced RAF/MEK/ERK signaling pathway activation and VEGF expression. Representative images and quantified data demonstrated that hypoxic stress upregulated B-RAF, p-MEK, p-ERK and VEGF expression in RF/6A cells compared with controls ( # P<0.05). siIGFBP-rP1 transfection significantly promoted hypoxia-induced B-RAF, p-MEK, p-ERK and VEGF expression in RF/6A compared with the hypoxia group ( # P<0.05). IGFBP-rP1 restoration significantly downregulated the expression of B-RAF, p-MEK, p-ERK and VEGF in siIGFBP-rP1-transfected cells, under both normoxic and hypoxic conditions, compared with the siIGFBP-rP1 and hypoxia + siIGFBP-rP1 groups, respectively (*P<0.01). The membranes were stripped off and probed for the proteins. Values are presented as the mean ± SD of 3 independent experiments with similar results and are presented as the integrated optical density of studied proteins relative to GAPDH. IGFBP-rP1, insulin-like growth factor binding protein-related protein 1; siIGFBP-rP1, IGFBP-rP1 specific siRNA. Lane 1, control; lane 2, siIGFBP-rP1; lane 3, siIGFBP-rP1 + IGFBP-rP1; lane 4, hypoxia; lane 5, hypoxia + siIGFBP-rP1; lane 6, hypoxia + siIGFBP-rP1 + IGFBP-rP1.

Article Snippet: Recombinant human IGFBP-rP1 and goat anti-human IGFBP-rP1 polyclonal antibody (cat. no. AF1334) were obtained from R&D Systems, Inc. Rabbit anti-human GAPDH polyclonal (cat. no. 10494-1-AP) and mouse anti-human β-actin monoclonal (cat. no. 66009-1-Ig) antibodies were obtained from ProteinTech Group, Inc. Rabbit anti-human VEGF polyclonal (cat. no. ab150766) antibodies were purchased from Abcam.

Techniques: Activation Assay, Expressing, Transfection, Binding Assay, Control

TL1A is an epithelial cytokine expressed in alveolar epithelium and airway basal cells in human healthy and asthmatic lungs. (A) Single-cell RNA-seq analysis of TNFSF15 ( TL1A ) expression in the LungMAP single-cell human lung atlas. Uniform manifold projection (UMAP) plots show the clustering of 347,970 lung cells (10 single-cell datasets, 148 normal human lung samples from 104 donors: adult, child, and adolescent). Results are visualized using ShinyCell and are based upon data generated by the LungMAP Consortium and downloaded from http://www.lungmap.net . (B and C) Single-cell RNA-seq analysis of TNFSF15 ( TL1A ) expression in epithelial cells from human healthy (B) and asthmatic (C) lungs. t-SNE plots show clustering of 26,154 epithelial cells in upper and lower airways and lung parenchyma in healthy lungs (B; 17 human samples: 6 alveoli and parenchyma, 9 bronchi, 2 nasal), and 25,146 epithelial cells from lower airways in healthy and asthmatic lungs (C; 12 human samples: 15,033 cells from 6 asthma bronchi; 10,113 cells from 6 control bronchi). t-SNE plots were extracted from data obtained by the human lung single-cell atlas and downloaded from https://asthma.cellgeni.sanger.ac.uk .

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: TL1A is an epithelial cytokine expressed in alveolar epithelium and airway basal cells in human healthy and asthmatic lungs. (A) Single-cell RNA-seq analysis of TNFSF15 ( TL1A ) expression in the LungMAP single-cell human lung atlas. Uniform manifold projection (UMAP) plots show the clustering of 347,970 lung cells (10 single-cell datasets, 148 normal human lung samples from 104 donors: adult, child, and adolescent). Results are visualized using ShinyCell and are based upon data generated by the LungMAP Consortium and downloaded from http://www.lungmap.net . (B and C) Single-cell RNA-seq analysis of TNFSF15 ( TL1A ) expression in epithelial cells from human healthy (B) and asthmatic (C) lungs. t-SNE plots show clustering of 26,154 epithelial cells in upper and lower airways and lung parenchyma in healthy lungs (B; 17 human samples: 6 alveoli and parenchyma, 9 bronchi, 2 nasal), and 25,146 epithelial cells from lower airways in healthy and asthmatic lungs (C; 12 human samples: 15,033 cells from 6 asthma bronchi; 10,113 cells from 6 control bronchi). t-SNE plots were extracted from data obtained by the human lung single-cell atlas and downloaded from https://asthma.cellgeni.sanger.ac.uk .

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: RNA Sequencing, Expressing, Generated, Control

Single-cell RNA-seq analysis of IL33 and TSLP expression in human lungs and gating strategy for analysis of mouse lung epithelial cells by flow cytometry. (A and B) Single-cell RNA-seq analysis of IL33 and TSLP expression in epithelial cells from human healthy (A) and asthmatic (B) lungs. t-SNE plots show clustering of 26,154 epithelial cells in upper and lower airways and lung parenchyma in healthy lungs (A; 17 human samples: 6 alveoli and parenchyma, 9 bronchi, 2 nasal), and 25,146 epithelial cells from lower airways in healthy and asthmatic lungs (B; 12 human samples: 15,033 cells from 6 asthma bronchi; 10,113 cells from 6 control bronchi). t-SNE plots were extracted from data obtained by the human lung single-cell atlas , and downloaded from https://asthma.cellgeni.sanger.ac.uk . (C) Gating strategy of Epcam + epithelial cells and CD31 + endothelial cells in the lung of a naïve WT mouse. (D and E) Immunohistofluorescence staining of lung tissue sections (naïve wild type C57BL/6J mouse, steady state) with two distinct rat IgG1 isotype controls (rat IgG1 clone eBRG1, D, red; rat IgG1 clone RB40.34, E, red) for the anti-TL1A antibody (rat IgG1, MAB7441, clone 293327). Double staining was performed with antibodies against RAGE (D, green) or IL-33 (E, green). Images are representative of two independent experiments. Scale bar, 10 μm.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: Single-cell RNA-seq analysis of IL33 and TSLP expression in human lungs and gating strategy for analysis of mouse lung epithelial cells by flow cytometry. (A and B) Single-cell RNA-seq analysis of IL33 and TSLP expression in epithelial cells from human healthy (A) and asthmatic (B) lungs. t-SNE plots show clustering of 26,154 epithelial cells in upper and lower airways and lung parenchyma in healthy lungs (A; 17 human samples: 6 alveoli and parenchyma, 9 bronchi, 2 nasal), and 25,146 epithelial cells from lower airways in healthy and asthmatic lungs (B; 12 human samples: 15,033 cells from 6 asthma bronchi; 10,113 cells from 6 control bronchi). t-SNE plots were extracted from data obtained by the human lung single-cell atlas , and downloaded from https://asthma.cellgeni.sanger.ac.uk . (C) Gating strategy of Epcam + epithelial cells and CD31 + endothelial cells in the lung of a naïve WT mouse. (D and E) Immunohistofluorescence staining of lung tissue sections (naïve wild type C57BL/6J mouse, steady state) with two distinct rat IgG1 isotype controls (rat IgG1 clone eBRG1, D, red; rat IgG1 clone RB40.34, E, red) for the anti-TL1A antibody (rat IgG1, MAB7441, clone 293327). Double staining was performed with antibodies against RAGE (D, green) or IL-33 (E, green). Images are representative of two independent experiments. Scale bar, 10 μm.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: RNA Sequencing, Expressing, Flow Cytometry, Control, Immunohistofluorescence, Staining, Double Staining

TL1A is expressed in mouse alveolar epithelium at steady state. (A) Visualization of Tnfsf15 (TL1A) expressing cells in the LungMAP single-cell mouse lung atlas. UMAP plots show the clustering of 95,658 lung cells (17 samples from late developmental stage to postnatal day 28). The different cell types in the lungs of naïve mice are indicated on the left. Results are visualized using ShinyCell and are based upon data generated by the LungMAP Consortium and downloaded from http://www.lungmap.net . (B) Single-cell RNA-seq analysis of Tnfsf15/TL1A and Il33 gene expression in mouse lung epithelium. UMAP plots show clustering and cell type annotation of 12,536 mouse lung epithelial cells (seven samples from the emergence of the alveolus to postnatal day 28) . The number and percentage of epithelial cells expressing Tnfsf15/TL1A , Il33 , or both are indicated on the right. Results are visualized using ShinyCell and are based upon data obtained by and downloaded from http://www.lungmap.net . (C) Flow cytometry analysis of cell surface TL1A expression on live CD31 + CD45 − endothelial cells and Epcam + CD31 − CD45 − epithelial cells in the lung of a naïve wild type C57BL/6J mouse at steady state. (D and E) Immunohistofluorescence staining of lung tissue sections (naïve wild type C57BL/6J mouse, steady state) with antibodies against TL1A (D and E) and RAGE (D) or IL-33 (E) proteins. A tyramide signal amplification (TSA)-based immunofluorescence method was used to detect TL1A-expressing cells in situ. Images are representative of two independent experiments. Scale bar, 10 μm.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: TL1A is expressed in mouse alveolar epithelium at steady state. (A) Visualization of Tnfsf15 (TL1A) expressing cells in the LungMAP single-cell mouse lung atlas. UMAP plots show the clustering of 95,658 lung cells (17 samples from late developmental stage to postnatal day 28). The different cell types in the lungs of naïve mice are indicated on the left. Results are visualized using ShinyCell and are based upon data generated by the LungMAP Consortium and downloaded from http://www.lungmap.net . (B) Single-cell RNA-seq analysis of Tnfsf15/TL1A and Il33 gene expression in mouse lung epithelium. UMAP plots show clustering and cell type annotation of 12,536 mouse lung epithelial cells (seven samples from the emergence of the alveolus to postnatal day 28) . The number and percentage of epithelial cells expressing Tnfsf15/TL1A , Il33 , or both are indicated on the right. Results are visualized using ShinyCell and are based upon data obtained by and downloaded from http://www.lungmap.net . (C) Flow cytometry analysis of cell surface TL1A expression on live CD31 + CD45 − endothelial cells and Epcam + CD31 − CD45 − epithelial cells in the lung of a naïve wild type C57BL/6J mouse at steady state. (D and E) Immunohistofluorescence staining of lung tissue sections (naïve wild type C57BL/6J mouse, steady state) with antibodies against TL1A (D and E) and RAGE (D) or IL-33 (E) proteins. A tyramide signal amplification (TSA)-based immunofluorescence method was used to detect TL1A-expressing cells in situ. Images are representative of two independent experiments. Scale bar, 10 μm.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: Expressing, Generated, RNA Sequencing, Gene Expression, Flow Cytometry, Immunohistofluorescence, Staining, Amplification, Immunofluorescence, In Situ

High throughput proteomic analyses of lung ILC2s stimulated ex vivo with IL-33 and/or TL1A. (A) Flow cytometry of cultured lung ILC2s ex vivo. Representative histograms of ST2, CD90.2, Sca-1, CD25, ICOS, KLRG1, and DR3 expression at the surface of cultured ILC2s, 3 days after ILC2 cell isolation from the lung and ex vivo culture in the presence of IL-2. Phenotypic analysis was performed on live Lin – CD45 + cells. (B–D) Large-scale label-free proteomic analyses of mouse lung ILC2s after ex vivo overnight stimulation with rIL-2 ± rIL-33 ± rTL1A. Volcano plots of IL-33-stimulated ILC2s (B) or TL1A-stimulated ILC2s (C) compared with non-stimulated cells (NS; in culture with IL-2 alone). Volcano plot of IL-33/TL1A-stimulated ILC2s compared to IL-33-stimulated cells (D). Statistical analysis of protein abundance values was performed from different biological replicate experiments ( n = 6 for NS and IL33 stimulation; n = 3 for TL1A and IL33/TL1A stimulations), using a Student’s t test (log 10 P value, vertical axis). Proteins found as significantly over or under-expressed (P < 0.05 and abs[log 2 fold change] >1) are shown in black. Representative examples of proteins found modulated in each comparison are shown in color. (E) Flow cytometry of cultured lung ILC2s after 14 h of co-stimulation with IL-33 and TL1A in the presence of IL-2 (ILC2 culture used in ). Intracellular cytokine staining revealed that >99% of ILC2s co-expressed IL-9 and IL-13 intracellularly. Phenotypic analysis was performed on live Lin − CD45 + CD90.2 + cells.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: High throughput proteomic analyses of lung ILC2s stimulated ex vivo with IL-33 and/or TL1A. (A) Flow cytometry of cultured lung ILC2s ex vivo. Representative histograms of ST2, CD90.2, Sca-1, CD25, ICOS, KLRG1, and DR3 expression at the surface of cultured ILC2s, 3 days after ILC2 cell isolation from the lung and ex vivo culture in the presence of IL-2. Phenotypic analysis was performed on live Lin – CD45 + cells. (B–D) Large-scale label-free proteomic analyses of mouse lung ILC2s after ex vivo overnight stimulation with rIL-2 ± rIL-33 ± rTL1A. Volcano plots of IL-33-stimulated ILC2s (B) or TL1A-stimulated ILC2s (C) compared with non-stimulated cells (NS; in culture with IL-2 alone). Volcano plot of IL-33/TL1A-stimulated ILC2s compared to IL-33-stimulated cells (D). Statistical analysis of protein abundance values was performed from different biological replicate experiments ( n = 6 for NS and IL33 stimulation; n = 3 for TL1A and IL33/TL1A stimulations), using a Student’s t test (log 10 P value, vertical axis). Proteins found as significantly over or under-expressed (P < 0.05 and abs[log 2 fold change] >1) are shown in black. Representative examples of proteins found modulated in each comparison are shown in color. (E) Flow cytometry of cultured lung ILC2s after 14 h of co-stimulation with IL-33 and TL1A in the presence of IL-2 (ILC2 culture used in ). Intracellular cytokine staining revealed that >99% of ILC2s co-expressed IL-9 and IL-13 intracellularly. Phenotypic analysis was performed on live Lin − CD45 + CD90.2 + cells.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: High Throughput Screening Assay, Ex Vivo, Flow Cytometry, Cell Culture, Expressing, Cell Isolation, Quantitative Proteomics, Comparison, Staining

TL1A synergizes with IL-33 to induce an IL-9-producing ILC9 phenotype in lung ILC2s. (A and B) Large-scale label-free proteomic analyses of ILC2s isolated from pooled lungs of IL-33-treated Rag2 −/− C57BL/6 J mice and cultured with IL-2 prior to overnight stimulation with rIL-2 ± rIL-33 ± rTL1A. Volcano plot of IL-33/TL1A-stimulated ILC2s (ILC9 cells) compared with nonstimulated cells (NS; in culture with IL-2 alone) (A). Statistical analysis of protein abundance values was performed from different biological replicate experiments ( n = 6 for NS; n = 3 for IL33/TL1A stimulation) using a Student’s t test (log 10 P value, vertical axis). Proteins found as significantly over or under-expressed (P < 0.05 and abs[log 2 fold change] >1) are shown in black. Examples of proteins modulated in both IL-33/TL1A-stimulated ILC2s and IL-33-stimulated ILC2s are shown in blue. Proteins shown in red are representative of molecules specifically modulated in IL-33/TL1A-stimulated ILC2s (A). Heat-map of fold changes of selected proteins in three independent biological replicates (B). (C–K) Analysis of ILC2s isolated from pooled lungs of IL-33-treated Rag2 −/− C57BL/6 J mice , and cultured with IL-2 prior to 14 h stimulation with rIL-2 ± rIL-33 ± rTL1A. Flow cytometry analysis of live Lin − CD45 + cells (C, E, and J), frequency of IL-9 high ILC2s (percentage of live Lin − CD45 + CD90.2 + cells) (D and K), and MFI fold change of IL-9 in ILC2s (E), after cytokines treatment and restimulation by PMA, ionomycin, and brefeldin A (4 h, C–E) or brefeldin A (4 h, J and K). Concentration of IL-9 secreted by ILC2s, measured by ELISA (F). Relative STAT5 mRNA expression levels measured by real-time qPCR (G). Samples were normalized to the expression of HPRT and are shown relative to IL-2-stimulated ILC2s. Immunoblot analysis of activated phosphorylated STAT5 (pSTAT5) and α-tubulin (H) or β-actin (I); Arrowheads indicate the migration of the protein of interest; cropped images. Cultured ILC2s were treated with rIL-2 + rIL-33 + rTL1A and increasing doses of a STAT5 inhibitor (STA5i, CAS 285986-31-4) or control vehicle (DMSO) (I–K). Numbers inside outlined areas (C) indicate percent of cells in the relevant gate. Each symbol represents an individual biological replicate (D–G and K). Data are pooled from six (D and E), six to eight (F) or three (G and K) independent experiments, or are representative of six (C and E) or three (H–J) independent experiments. Data are expressed as mean (±SEM) with P values determined by one-way ANOVA followed by Tukey’s multiple-comparisons test (D–G and K): ns not significant, ** P < 0.01, *** P < 0.001, **** P < 0.0001. Source data are available for this figure: .

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: TL1A synergizes with IL-33 to induce an IL-9-producing ILC9 phenotype in lung ILC2s. (A and B) Large-scale label-free proteomic analyses of ILC2s isolated from pooled lungs of IL-33-treated Rag2 −/− C57BL/6 J mice and cultured with IL-2 prior to overnight stimulation with rIL-2 ± rIL-33 ± rTL1A. Volcano plot of IL-33/TL1A-stimulated ILC2s (ILC9 cells) compared with nonstimulated cells (NS; in culture with IL-2 alone) (A). Statistical analysis of protein abundance values was performed from different biological replicate experiments ( n = 6 for NS; n = 3 for IL33/TL1A stimulation) using a Student’s t test (log 10 P value, vertical axis). Proteins found as significantly over or under-expressed (P < 0.05 and abs[log 2 fold change] >1) are shown in black. Examples of proteins modulated in both IL-33/TL1A-stimulated ILC2s and IL-33-stimulated ILC2s are shown in blue. Proteins shown in red are representative of molecules specifically modulated in IL-33/TL1A-stimulated ILC2s (A). Heat-map of fold changes of selected proteins in three independent biological replicates (B). (C–K) Analysis of ILC2s isolated from pooled lungs of IL-33-treated Rag2 −/− C57BL/6 J mice , and cultured with IL-2 prior to 14 h stimulation with rIL-2 ± rIL-33 ± rTL1A. Flow cytometry analysis of live Lin − CD45 + cells (C, E, and J), frequency of IL-9 high ILC2s (percentage of live Lin − CD45 + CD90.2 + cells) (D and K), and MFI fold change of IL-9 in ILC2s (E), after cytokines treatment and restimulation by PMA, ionomycin, and brefeldin A (4 h, C–E) or brefeldin A (4 h, J and K). Concentration of IL-9 secreted by ILC2s, measured by ELISA (F). Relative STAT5 mRNA expression levels measured by real-time qPCR (G). Samples were normalized to the expression of HPRT and are shown relative to IL-2-stimulated ILC2s. Immunoblot analysis of activated phosphorylated STAT5 (pSTAT5) and α-tubulin (H) or β-actin (I); Arrowheads indicate the migration of the protein of interest; cropped images. Cultured ILC2s were treated with rIL-2 + rIL-33 + rTL1A and increasing doses of a STAT5 inhibitor (STA5i, CAS 285986-31-4) or control vehicle (DMSO) (I–K). Numbers inside outlined areas (C) indicate percent of cells in the relevant gate. Each symbol represents an individual biological replicate (D–G and K). Data are pooled from six (D and E), six to eight (F) or three (G and K) independent experiments, or are representative of six (C and E) or three (H–J) independent experiments. Data are expressed as mean (±SEM) with P values determined by one-way ANOVA followed by Tukey’s multiple-comparisons test (D–G and K): ns not significant, ** P < 0.01, *** P < 0.001, **** P < 0.0001. Source data are available for this figure: .

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: Isolation, Cell Culture, Quantitative Proteomics, Flow Cytometry, Concentration Assay, Enzyme-linked Immunosorbent Assay, Expressing, Western Blot, Migration, Control

IL-33 and TL1A synergistically induce IL-9-producing ILC2s ex vivo. (A) Analysis of cultured lung ILC2s 14 h after ex vivo stimulation by rIL-2 (20 ng/ml) ± rIL-33 (20 ng/ml) ± rTL1A (50 ng/ml). Flow cytometry analysis of live Lin − CD45 + cells and frequency of IL-9 high ILC2s (percentage of live Lin − CD45 + CD90.2 + cells) after cytokine treatment and incubation with brefeldin A (4 h), without restimulation by PMA and ionomycin. Numbers inside outlined area indicate percent of cells in the relevant gate and data are representative of eight independent experiments. (B) Concentration of IL-9 secreted by ILC2s treated with rIL-2 (20 ng/ml) and various concentrations of rIL-33 and rTL1A measured by ELISA. (C and D) MFI of nuclear factor IRF4 (C) and flow cytometry (D) of ILC2s 14 h after ex vivo stimulation of cultured ILC2s by rIL-2 (20 ng/ml) ± rIL-33 (20 ng/ml) ± rTL1A (50 ng/ml). Numbers inside outlined areas (D) indicate percent of cells in the relevant gate and data are representative of three independent experiments. (E) Immunoblot analysis of JunB and α-tubulin14 h after cytokine stimulation of lung ILC2s; Arrowheads indicate the migration of the protein of interest; cropped image. Data are representative of three independent experiments. (F–H) Relative mRNA expression levels by real time qPCR, 14 h after cytokine stimulation of lung ILC2s. Samples were normalized to the expression of HPRT and data are expressed relative to IL-2-stimulated ILC2s (F) or relative to HPRT mRNA quantity (G and H). (I and J) Analysis of mouse lung ILC2s 14 h after ex vivo stimulation by rIL-33 + rTL1A ± rIL-2 ± rIL-7 ± rTSLP. Frequency of IL-9 high ILC2s (Lin − CD45 + CD90.2 + cells), after cytokines treatment and re-stimulation by PMA, ionomycin and brefeldin A (4 h, I). Concentration of IL-9 secreted by ILC2s, measured by ELISA (J). (K) Concentration of IL-9 (ELISA) secreted by ILC2s 14 h after ex vivo stimulation by rIL-2 ± rIL-33 ± rIL-4 ± rTGF-β. Each symbol represents an individual biological replicates with n = 2–5 independent experiments (A–C and F–K). Data are expressed as mean (±SEM) with P values determined by one-way ANOVA followed by Tukey’s (A, C, and F–J) or Dunnett’s (B and K) multiple-comparisons tests: ns, not significant, * P < 0.05, ** P < 0.01, *** P < 0.001, **** P < 0.0001. In H, all significant P values are annotated with stars, all other comparisons are not significant. Source data are available for this figure: .

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: IL-33 and TL1A synergistically induce IL-9-producing ILC2s ex vivo. (A) Analysis of cultured lung ILC2s 14 h after ex vivo stimulation by rIL-2 (20 ng/ml) ± rIL-33 (20 ng/ml) ± rTL1A (50 ng/ml). Flow cytometry analysis of live Lin − CD45 + cells and frequency of IL-9 high ILC2s (percentage of live Lin − CD45 + CD90.2 + cells) after cytokine treatment and incubation with brefeldin A (4 h), without restimulation by PMA and ionomycin. Numbers inside outlined area indicate percent of cells in the relevant gate and data are representative of eight independent experiments. (B) Concentration of IL-9 secreted by ILC2s treated with rIL-2 (20 ng/ml) and various concentrations of rIL-33 and rTL1A measured by ELISA. (C and D) MFI of nuclear factor IRF4 (C) and flow cytometry (D) of ILC2s 14 h after ex vivo stimulation of cultured ILC2s by rIL-2 (20 ng/ml) ± rIL-33 (20 ng/ml) ± rTL1A (50 ng/ml). Numbers inside outlined areas (D) indicate percent of cells in the relevant gate and data are representative of three independent experiments. (E) Immunoblot analysis of JunB and α-tubulin14 h after cytokine stimulation of lung ILC2s; Arrowheads indicate the migration of the protein of interest; cropped image. Data are representative of three independent experiments. (F–H) Relative mRNA expression levels by real time qPCR, 14 h after cytokine stimulation of lung ILC2s. Samples were normalized to the expression of HPRT and data are expressed relative to IL-2-stimulated ILC2s (F) or relative to HPRT mRNA quantity (G and H). (I and J) Analysis of mouse lung ILC2s 14 h after ex vivo stimulation by rIL-33 + rTL1A ± rIL-2 ± rIL-7 ± rTSLP. Frequency of IL-9 high ILC2s (Lin − CD45 + CD90.2 + cells), after cytokines treatment and re-stimulation by PMA, ionomycin and brefeldin A (4 h, I). Concentration of IL-9 secreted by ILC2s, measured by ELISA (J). (K) Concentration of IL-9 (ELISA) secreted by ILC2s 14 h after ex vivo stimulation by rIL-2 ± rIL-33 ± rIL-4 ± rTGF-β. Each symbol represents an individual biological replicates with n = 2–5 independent experiments (A–C and F–K). Data are expressed as mean (±SEM) with P values determined by one-way ANOVA followed by Tukey’s (A, C, and F–J) or Dunnett’s (B and K) multiple-comparisons tests: ns, not significant, * P < 0.05, ** P < 0.01, *** P < 0.001, **** P < 0.0001. In H, all significant P values are annotated with stars, all other comparisons are not significant. Source data are available for this figure: .

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: Ex Vivo, Cell Culture, Flow Cytometry, Incubation, Concentration Assay, Enzyme-linked Immunosorbent Assay, Western Blot, Migration, Expressing

IL-33 and TL1A induce phenotypic changes in cultured lung ILC2s at the protein and mRNA levels. (A–J) Analysis of mouse lung ILC2s 14 h after ex vivo stimulation by rIL-2 ± rIL-33 ± rTL1A. MFI of the indicated cell surface markers determined by flow cytometry (A, B, D, and E). Relative mRNA expression levels of various genes (C and F–I), including genes characteristic of ILC1s or ILC3s (I), determined by real-time qPCR, 14 h after cytokine stimulation of lung ILC2s. Samples were normalized to the expression of HPRT and data are expressed as relative to HPRT mRNA quantity. Concentration of IL-5 or IL-13 in cell supernatants, measured by ELISA assay (J). Each symbol represents an individual biological replicate from independent experiments (A–J). Data are expressed as mean (±SEM) with P values determined by unpaired two-tailed Student’s t test (B, E, and J) or one-way ANOVA followed by Tukey’s multiple-comparisons test (A, C, D, and F–I): ns, not significant, * P < 0.05, ** P < 0.01, *** P < 0.001. In I, all significant P values are annotated with stars, all other comparisons are not significant.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: IL-33 and TL1A induce phenotypic changes in cultured lung ILC2s at the protein and mRNA levels. (A–J) Analysis of mouse lung ILC2s 14 h after ex vivo stimulation by rIL-2 ± rIL-33 ± rTL1A. MFI of the indicated cell surface markers determined by flow cytometry (A, B, D, and E). Relative mRNA expression levels of various genes (C and F–I), including genes characteristic of ILC1s or ILC3s (I), determined by real-time qPCR, 14 h after cytokine stimulation of lung ILC2s. Samples were normalized to the expression of HPRT and data are expressed as relative to HPRT mRNA quantity. Concentration of IL-5 or IL-13 in cell supernatants, measured by ELISA assay (J). Each symbol represents an individual biological replicate from independent experiments (A–J). Data are expressed as mean (±SEM) with P values determined by unpaired two-tailed Student’s t test (B, E, and J) or one-way ANOVA followed by Tukey’s multiple-comparisons test (A, C, D, and F–I): ns, not significant, * P < 0.05, ** P < 0.01, *** P < 0.001. In I, all significant P values are annotated with stars, all other comparisons are not significant.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: Cell Culture, Ex Vivo, Flow Cytometry, Expressing, Concentration Assay, Enzyme-linked Immunosorbent Assay, Two Tailed Test

TL1A cooperates with IL-33 for induction of IL-9 high ILC2s in vivo. (A) Treatment schedule of naïve wild type (WT, C57BL/6J) mice. (B) Gating strategy of IL-9 high IL-5 + IL-13 + ILC2s. (C–I) Flow cytometry of IL-5 + IL-13 + ILC2s gated on live ILCs (Lin − CD45 + CD90.2 + cells) (C) and IL-9 high ILC2s gated on live IL-5 + IL-13 + ILC2s (E), frequency of lung IL-5 + IL-13 + ILC2s among live ILCs (D), IL-9 high ILC2s among live IL-5 + IL-13 + ILC2s (F), and IL-9 high IL-13 + ILC2s among live ILCs (G) or IL-9 high ILCs (H), and concentration of IL-9 in BAL fluids (ELISA assay, I) of WT mice 14 h after a single i.n. administration of PBS or rIL-33 (1 μg) and/or rTL1A (5 μg). Numbers inside outlined areas indicate the percent of cells in the relevant gate and data are representative of two independent experiments (C and E). Each symbol represents an individual mouse and data are pooled from two independent experiments. Data are expressed as mean (±SEM) with P values determined by one-way ANOVA followed by Tukey’s (D) or Dunnett’s (F, G, and I) multiple-comparisons tests: ns, not significant, ** P < 0.01, **** P < 0.0001. (J) Frequency of lung eosinophils (Gr1 low Siglec-F + CD11c − cells) among live CD45 + cells, at day 7 after a single i.n. exposure to rIL-33 or rIL-33 plus rTL1A. Each symbol represents an individual mouse and data are pooled from two independent experiments. Data are expressed as mean (±SEM) with P values determined by unpaired two-tailed Student’s t test: * P < 0.05. (K and L) Multiphoton imaging (K) and intravital microscopy (L) of whole lungs of INFER IL-9 fluorescent reporter mice, with detection of IL-9-eGFP + ILC2s (green) and staining of blood vessels (red) and collagen fibers (blue), 16–18 h after a single i.n. administration of IL-33/TL1A combination (1 μg rIL-33 plus 5 μg rTL1A). To increase the numbers of lung IL-9 high ILC2s accessible to in vivo imaging, the single i.n. exposure to IL-33/TL1A combination was performed after prior expansion of lung ILC2s by repeated i.p. injections of IL-33 (K and L). Multiphoton image (K) is a 3D reconstitution of stitched images (7 × 7 tiles and 181 z-stack). Time-lapse images (L) illustrate the migratory behavior of IL-9-eGFP + ILC2s. Time in h/min/s. Scale bars: K, 300 μm; L, 20 μm.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: TL1A cooperates with IL-33 for induction of IL-9 high ILC2s in vivo. (A) Treatment schedule of naïve wild type (WT, C57BL/6J) mice. (B) Gating strategy of IL-9 high IL-5 + IL-13 + ILC2s. (C–I) Flow cytometry of IL-5 + IL-13 + ILC2s gated on live ILCs (Lin − CD45 + CD90.2 + cells) (C) and IL-9 high ILC2s gated on live IL-5 + IL-13 + ILC2s (E), frequency of lung IL-5 + IL-13 + ILC2s among live ILCs (D), IL-9 high ILC2s among live IL-5 + IL-13 + ILC2s (F), and IL-9 high IL-13 + ILC2s among live ILCs (G) or IL-9 high ILCs (H), and concentration of IL-9 in BAL fluids (ELISA assay, I) of WT mice 14 h after a single i.n. administration of PBS or rIL-33 (1 μg) and/or rTL1A (5 μg). Numbers inside outlined areas indicate the percent of cells in the relevant gate and data are representative of two independent experiments (C and E). Each symbol represents an individual mouse and data are pooled from two independent experiments. Data are expressed as mean (±SEM) with P values determined by one-way ANOVA followed by Tukey’s (D) or Dunnett’s (F, G, and I) multiple-comparisons tests: ns, not significant, ** P < 0.01, **** P < 0.0001. (J) Frequency of lung eosinophils (Gr1 low Siglec-F + CD11c − cells) among live CD45 + cells, at day 7 after a single i.n. exposure to rIL-33 or rIL-33 plus rTL1A. Each symbol represents an individual mouse and data are pooled from two independent experiments. Data are expressed as mean (±SEM) with P values determined by unpaired two-tailed Student’s t test: * P < 0.05. (K and L) Multiphoton imaging (K) and intravital microscopy (L) of whole lungs of INFER IL-9 fluorescent reporter mice, with detection of IL-9-eGFP + ILC2s (green) and staining of blood vessels (red) and collagen fibers (blue), 16–18 h after a single i.n. administration of IL-33/TL1A combination (1 μg rIL-33 plus 5 μg rTL1A). To increase the numbers of lung IL-9 high ILC2s accessible to in vivo imaging, the single i.n. exposure to IL-33/TL1A combination was performed after prior expansion of lung ILC2s by repeated i.p. injections of IL-33 (K and L). Multiphoton image (K) is a 3D reconstitution of stitched images (7 × 7 tiles and 181 z-stack). Time-lapse images (L) illustrate the migratory behavior of IL-9-eGFP + ILC2s. Time in h/min/s. Scale bars: K, 300 μm; L, 20 μm.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: In Vivo, Flow Cytometry, Concentration Assay, Enzyme-linked Immunosorbent Assay, Two Tailed Test, Imaging, Intravital Microscopy, Staining, In Vivo Imaging

IL-33 and TL1A synergistically induce IL-9-producing ILC2s in vivo. (A) Gating strategy and representative flow cytometry plots of live lung ILCs (live Lin − CD45 + CD90.2 + cells), live lung IL-5 + IL-13 + ILC2s (live IL-5 + IL-13 + ILCs) and live lung IL-9 high ILC2s (live IL-9 high IL-5 + IL-13 + ILC2s) in vivo in wild type (WT) C57BL/6J mouse, 14 h after a single i.n. administration of rIL-33 (1 μg) and rTL1A (5 μg). (B) Verification of the absence of contamination of the IL-5 + IL-13 + ILC2s and IL-9 high ILC2s populations by TCR + cells (T cells and NKT cells) using anti-TCRβ and anti-TCRγδ antibodies. (C) Confirmation of the expression of IL-5 and IL-13 in live Lin − CD3/TCR − NK1.1 − CD45 + CD90.2 + lung ILCs using antibodies against CD3/TCR and NK1.1 with a different fluorescence from the Lin cocktail (CD4, CD19, CD45R, CD11b, CD11c, Ter119, Ly6G, FcεRI). (D and E) Frequency of lung IL-9 high Lin − cells among live CD45 + cells (D), and flow cytometry of IL-9 high IL-13 + ILC2s (live IL-9 high IL-13 + Lin − CD45 + CD90.2 + cells) (E) of WT mice 14 h after a single i.n. administration of PBS or rIL-33 (1 μg) and/or rTL1A (5 μg). Numbers inside outlined areas indicate the percent of cells in the relevant gate. (F) Frequency of lung IL-9 high Lin − cells among live CD45 + cells of WT mice pretreated with six daily i.p. injections of rIL-33 (days 1–6) prior to one i.n. injection of PBS or rIL-33 and/or rTL1A (day 7). Flow cytometry analyses were performed on day 8. (G) Frequency of IL-9 high ILC2s among live ILCs (Lin − CD45 + CD90.2 + cells) in the lungs of WT mice 6 h after a single i.n. administration of A. alternata extract (12.5 μg), with (αIL-2 mAb) or without (Iso, isotype control mAb) IL-2 blockade. (H and I) Analysis of IL-9 and TL1A release in BAL fluids by ELISA at different time points after the third exposure to A. alternata in a chronic exposure model (repeated i.n. administration of 12.5 μg A. alternata at days 0, 3, and 6). Each symbol represents an individual mouse and data are pooled from two (D and G) or three (F, H, and I) independent experiments. Data are expressed as mean (±SEM) with P values determined by unpaired two-tailed Student’s t tests (G) or one-way ANOVA followed by Dunnett’s multiple-comparison test (D, F, H, and I): * P < 0.05, ** P < 0.01, *** P < 0.001, **** P < 0.0001.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: IL-33 and TL1A synergistically induce IL-9-producing ILC2s in vivo. (A) Gating strategy and representative flow cytometry plots of live lung ILCs (live Lin − CD45 + CD90.2 + cells), live lung IL-5 + IL-13 + ILC2s (live IL-5 + IL-13 + ILCs) and live lung IL-9 high ILC2s (live IL-9 high IL-5 + IL-13 + ILC2s) in vivo in wild type (WT) C57BL/6J mouse, 14 h after a single i.n. administration of rIL-33 (1 μg) and rTL1A (5 μg). (B) Verification of the absence of contamination of the IL-5 + IL-13 + ILC2s and IL-9 high ILC2s populations by TCR + cells (T cells and NKT cells) using anti-TCRβ and anti-TCRγδ antibodies. (C) Confirmation of the expression of IL-5 and IL-13 in live Lin − CD3/TCR − NK1.1 − CD45 + CD90.2 + lung ILCs using antibodies against CD3/TCR and NK1.1 with a different fluorescence from the Lin cocktail (CD4, CD19, CD45R, CD11b, CD11c, Ter119, Ly6G, FcεRI). (D and E) Frequency of lung IL-9 high Lin − cells among live CD45 + cells (D), and flow cytometry of IL-9 high IL-13 + ILC2s (live IL-9 high IL-13 + Lin − CD45 + CD90.2 + cells) (E) of WT mice 14 h after a single i.n. administration of PBS or rIL-33 (1 μg) and/or rTL1A (5 μg). Numbers inside outlined areas indicate the percent of cells in the relevant gate. (F) Frequency of lung IL-9 high Lin − cells among live CD45 + cells of WT mice pretreated with six daily i.p. injections of rIL-33 (days 1–6) prior to one i.n. injection of PBS or rIL-33 and/or rTL1A (day 7). Flow cytometry analyses were performed on day 8. (G) Frequency of IL-9 high ILC2s among live ILCs (Lin − CD45 + CD90.2 + cells) in the lungs of WT mice 6 h after a single i.n. administration of A. alternata extract (12.5 μg), with (αIL-2 mAb) or without (Iso, isotype control mAb) IL-2 blockade. (H and I) Analysis of IL-9 and TL1A release in BAL fluids by ELISA at different time points after the third exposure to A. alternata in a chronic exposure model (repeated i.n. administration of 12.5 μg A. alternata at days 0, 3, and 6). Each symbol represents an individual mouse and data are pooled from two (D and G) or three (F, H, and I) independent experiments. Data are expressed as mean (±SEM) with P values determined by unpaired two-tailed Student’s t tests (G) or one-way ANOVA followed by Dunnett’s multiple-comparison test (D, F, H, and I): * P < 0.05, ** P < 0.01, *** P < 0.001, **** P < 0.0001.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: In Vivo, Flow Cytometry, Expressing, Fluorescence, Injection, Control, Enzyme-linked Immunosorbent Assay, Two Tailed Test, Comparison

Related to . Endogenous IL-9-producing ILC2s accumulate around blood vessels after IL33/TL1A treatment in vivo. IL9-eGFP + ILC2s (green), blood vessels (Evans Blue/red), and collagen fibers (second harmonic generation/blue) were visualized by multiphoton imaging in the cleared lung of INFER IL9 fluorescent reporter mice 16–18 h after administration of IL33/TL1A combination. 360° rotation of a 3D static representation at a frame rate of 25 fps (500 frames per 20 sec).

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: Related to . Endogenous IL-9-producing ILC2s accumulate around blood vessels after IL33/TL1A treatment in vivo. IL9-eGFP + ILC2s (green), blood vessels (Evans Blue/red), and collagen fibers (second harmonic generation/blue) were visualized by multiphoton imaging in the cleared lung of INFER IL9 fluorescent reporter mice 16–18 h after administration of IL33/TL1A combination. 360° rotation of a 3D static representation at a frame rate of 25 fps (500 frames per 20 sec).

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: In Vivo, Imaging

Related to . Endogenous IL-9-producing ILC2s migrate along collagen fibers after IL33/TL1A treatment in vivo. IL9-eGFP + ILC2s (green), blood vessels (Evans Blue/red), and collagen fibers (second harmonic generation/blue) were visualized by lung intravital multiphoton imaging of INFER IL9 fluorescent reporter mice 16–18 h after administration of IL33/TL1A combination. Time in h/min/s. Playback speed: 600.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: Related to . Endogenous IL-9-producing ILC2s migrate along collagen fibers after IL33/TL1A treatment in vivo. IL9-eGFP + ILC2s (green), blood vessels (Evans Blue/red), and collagen fibers (second harmonic generation/blue) were visualized by lung intravital multiphoton imaging of INFER IL9 fluorescent reporter mice 16–18 h after administration of IL33/TL1A combination. Time in h/min/s. Playback speed: 600.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: In Vivo, Imaging

Endogenous TL1A functions as an epithelial alarmin rapidly released after allergen exposure. (A) Treatment schedule of naïve wild type (WT, C57BL/6J) mice. (B–F) Analysis of TL1A and IL-33 release in BAL fluids after a single allergen exposure. TL1A (B and E), IL-33 (C and F), and LDH (D) levels in BAL fluids were determined by ELISA (B, C, E, and F) or LDH (D) assays, 15 min (B–D) or at different time points (E and F) after a single i.n. administration of A. alternata extract (12.5 μg). Each symbol represents an individual mouse and data are pooled from two independent experiments (B–F). Data are expressed as mean (±SEM) with P values determined by one-way ANOVA followed by Tukey’s (B–D) or Dunnett’s (E and F) multiple-comparisons tests: ** P < 0.01, *** P < 0.001, **** P < 0.0001. (G–K) Analysis of TL1A release in cell supernatants after exposure of TL1A-expressing cells to A. alternata or bee venom phospholipase A2 (PLA2). U2OS epithelial cells transfected with a mouse TL1A-Flag expression vector (mTL1A-Flag vector) or control vector were analyzed by indirect immunofluorescence microscopy with anti-mTL1A and anti-Flag antibodies (G). Scale bar, 20 μm. TL1A (H and J) and LDH (I and K) levels in cell supernatants were determined by ELISA (H and J) or LDH cytotoxicity assays (I and K) 15 min after treatment with A. alternata extract ( A. alternata , H and I) or 1 h after treatment with bee venom PLA2 (J and K). NT, not treated. Each symbol represents an individual biological replicate and data are pooled from three independent experiments (H–K). Data are expressed as mean (±SEM) with P values determined by unpaired two-tailed Student’s t tests (treatment versus NT): ** P < 0.01, **** P < 0.0001.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: Endogenous TL1A functions as an epithelial alarmin rapidly released after allergen exposure. (A) Treatment schedule of naïve wild type (WT, C57BL/6J) mice. (B–F) Analysis of TL1A and IL-33 release in BAL fluids after a single allergen exposure. TL1A (B and E), IL-33 (C and F), and LDH (D) levels in BAL fluids were determined by ELISA (B, C, E, and F) or LDH (D) assays, 15 min (B–D) or at different time points (E and F) after a single i.n. administration of A. alternata extract (12.5 μg). Each symbol represents an individual mouse and data are pooled from two independent experiments (B–F). Data are expressed as mean (±SEM) with P values determined by one-way ANOVA followed by Tukey’s (B–D) or Dunnett’s (E and F) multiple-comparisons tests: ** P < 0.01, *** P < 0.001, **** P < 0.0001. (G–K) Analysis of TL1A release in cell supernatants after exposure of TL1A-expressing cells to A. alternata or bee venom phospholipase A2 (PLA2). U2OS epithelial cells transfected with a mouse TL1A-Flag expression vector (mTL1A-Flag vector) or control vector were analyzed by indirect immunofluorescence microscopy with anti-mTL1A and anti-Flag antibodies (G). Scale bar, 20 μm. TL1A (H and J) and LDH (I and K) levels in cell supernatants were determined by ELISA (H and J) or LDH cytotoxicity assays (I and K) 15 min after treatment with A. alternata extract ( A. alternata , H and I) or 1 h after treatment with bee venom PLA2 (J and K). NT, not treated. Each symbol represents an individual biological replicate and data are pooled from three independent experiments (H–K). Data are expressed as mean (±SEM) with P values determined by unpaired two-tailed Student’s t tests (treatment versus NT): ** P < 0.01, **** P < 0.0001.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: Enzyme-linked Immunosorbent Assay, Expressing, Transfection, Plasmid Preparation, Control, Immunofluorescence, Microscopy, Two Tailed Test

Endogenous TL1A is important for early induction of IL-9 high ILC2s after allergen exposure. (A) Treatment schedule of naïve WT mice. (B) IL-9 mRNA levels in the lungs analyzed by qPCR at different time points after a single allergen exposure. Data are expressed as relative to IL-9 mRNA levels in mice treated with PBS. (C–H) Flow cytometry and frequency of IL-9 high Lin − cells among live CD45 + cells (C and D) and IL-9 high ILC2s among live ILCs (Lin − CD45 + CD90.2 + cells) (E and F), flow cytometry (G), and MFI of IRF4 expression in ILC2s (H), in the lungs of WT mice 6 h after a single i.n. administration of A. alternata extract (12.5 μg), with (αTL1A mAb) or without (Iso, isotype control mAb) TL1A blockade. Numbers inside outlined areas indicate the percent of cells in the relevant gate (C, E, and G) and data are representative of two (G) or three (C and E) independent experiments. Each symbol represents an individual mouse and data are pooled from three (D and F) or two (B and H) independent experiments. Data are expressed as mean (±SEM) with P values determined by one-way ANOVA followed by Tukey’s multiple-comparisons test (B) or unpaired two-tailed Student’s t tests (D, F, and H): ns, not significant, *** P < 0.001, **** P < 0.0001.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: Endogenous TL1A is important for early induction of IL-9 high ILC2s after allergen exposure. (A) Treatment schedule of naïve WT mice. (B) IL-9 mRNA levels in the lungs analyzed by qPCR at different time points after a single allergen exposure. Data are expressed as relative to IL-9 mRNA levels in mice treated with PBS. (C–H) Flow cytometry and frequency of IL-9 high Lin − cells among live CD45 + cells (C and D) and IL-9 high ILC2s among live ILCs (Lin − CD45 + CD90.2 + cells) (E and F), flow cytometry (G), and MFI of IRF4 expression in ILC2s (H), in the lungs of WT mice 6 h after a single i.n. administration of A. alternata extract (12.5 μg), with (αTL1A mAb) or without (Iso, isotype control mAb) TL1A blockade. Numbers inside outlined areas indicate the percent of cells in the relevant gate (C, E, and G) and data are representative of two (G) or three (C and E) independent experiments. Each symbol represents an individual mouse and data are pooled from three (D and F) or two (B and H) independent experiments. Data are expressed as mean (±SEM) with P values determined by one-way ANOVA followed by Tukey’s multiple-comparisons test (B) or unpaired two-tailed Student’s t tests (D, F, and H): ns, not significant, *** P < 0.001, **** P < 0.0001.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: Flow Cytometry, Expressing, Control, Two Tailed Test

ILC9 cells have an increased capacity to initiate IL-5-dependent allergic airway inflammation. (A) Treatment schedule of naïve wild type (WT, C57BL/6J) mice by a single i.v. adoptive cell transfer of classical IL-33-activated ILC2s (ILC2) or IL-33/TL1A-activated ILC2s (ILC9). (B–H) Flow cytometry (B and D) and frequency of eosinophils (Gr1 low Siglec-F + CD11c − cells) among live CD45 + cells from BALF (C and F) or lung (E and G), and number of Red5 + ILC2s or ILC9s in total lung of mice (H), at day 7 after a single i.v. adoptive transfer of 5 × 10 5 ILC2s or ILC9s in separate host mice. Adoptively transferred ILC2s and ILC9s were prepared from Rag2 −/− mice ( Il5 +/+ cells) (B–E) or Red5 mice ( Il5 −/− cells) (F–H). Control mice received an intravenous injection of PBS. Red5 + cells indicate the activity of the Il5 promoter. Each symbol represents an individual mouse and data are representative (B and D) or pooled (C and E–H) from two independent experiments. (I–K) Live imaging of ILC2s and ILC9 cells in the lung. Lung intravital microscopy was performed 1–4 h after adoptive transfer of 6 × 10 5 of each cell type in the same host (green, classical IL-33-activated ILC2s-CFSE + ; red, IL-33/TL1A-activated ILC9 cells-CTO + ) (I). Imaging of the migratory behavior of ILC2s and ILC9 cells in the lung (J) and cell quantification from lung intravital microscopy data (K). Time-lapse images, 2 h after adoptive cell transfer (J). A maximum intensity projection of stitched images (2 × 2 tiles and 18 z-stack) is shown (K). Time in h/min/s. Scale bars: J, 20 μm; K, 100 μm. Lung intravital microscopy data are representative (J and K) or analyzed (K) from three adoptive transfer experiments on four mice. Data are expressed as mean (±SEM) with P values determined by paired two-tailed Student’s t test (K) or one-way ANOVA followed by Tukey’s multiple-comparisons test (C and E–H): ns, not significant, * P < 0.05, ** P < 0.01, *** P < 0.001, **** P < 0.0001.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: ILC9 cells have an increased capacity to initiate IL-5-dependent allergic airway inflammation. (A) Treatment schedule of naïve wild type (WT, C57BL/6J) mice by a single i.v. adoptive cell transfer of classical IL-33-activated ILC2s (ILC2) or IL-33/TL1A-activated ILC2s (ILC9). (B–H) Flow cytometry (B and D) and frequency of eosinophils (Gr1 low Siglec-F + CD11c − cells) among live CD45 + cells from BALF (C and F) or lung (E and G), and number of Red5 + ILC2s or ILC9s in total lung of mice (H), at day 7 after a single i.v. adoptive transfer of 5 × 10 5 ILC2s or ILC9s in separate host mice. Adoptively transferred ILC2s and ILC9s were prepared from Rag2 −/− mice ( Il5 +/+ cells) (B–E) or Red5 mice ( Il5 −/− cells) (F–H). Control mice received an intravenous injection of PBS. Red5 + cells indicate the activity of the Il5 promoter. Each symbol represents an individual mouse and data are representative (B and D) or pooled (C and E–H) from two independent experiments. (I–K) Live imaging of ILC2s and ILC9 cells in the lung. Lung intravital microscopy was performed 1–4 h after adoptive transfer of 6 × 10 5 of each cell type in the same host (green, classical IL-33-activated ILC2s-CFSE + ; red, IL-33/TL1A-activated ILC9 cells-CTO + ) (I). Imaging of the migratory behavior of ILC2s and ILC9 cells in the lung (J) and cell quantification from lung intravital microscopy data (K). Time-lapse images, 2 h after adoptive cell transfer (J). A maximum intensity projection of stitched images (2 × 2 tiles and 18 z-stack) is shown (K). Time in h/min/s. Scale bars: J, 20 μm; K, 100 μm. Lung intravital microscopy data are representative (J and K) or analyzed (K) from three adoptive transfer experiments on four mice. Data are expressed as mean (±SEM) with P values determined by paired two-tailed Student’s t test (K) or one-way ANOVA followed by Tukey’s multiple-comparisons test (C and E–H): ns, not significant, * P < 0.05, ** P < 0.01, *** P < 0.001, **** P < 0.0001.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: Flow Cytometry, Adoptive Transfer Assay, Control, Injection, Activity Assay, Imaging, Intravital Microscopy, Two Tailed Test

Related to . Adoptively transferred ILC2s and ILC9s are equally recruited to the lung and exhibit an ameboid-like mode of migration. IL-33-activated ILC2s (CFSE/green), IL33/TL1A-activated ILC9s (CTO/red), blood vessels (Evans Blue/dark blue), and collagen fibers (second harmonic generation/light blue) were observed by lung intravital multiphoton imaging 2 h after intravenous adoptive transfer (6 × 10 5 cells). Time in h/min/s. Playback speed: 600.

Journal: The Journal of Experimental Medicine

Article Title: TL1A is an epithelial alarmin that cooperates with IL-33 for initiation of allergic airway inflammation

doi: 10.1084/jem.20231236

Figure Lengend Snippet: Related to . Adoptively transferred ILC2s and ILC9s are equally recruited to the lung and exhibit an ameboid-like mode of migration. IL-33-activated ILC2s (CFSE/green), IL33/TL1A-activated ILC9s (CTO/red), blood vessels (Evans Blue/dark blue), and collagen fibers (second harmonic generation/light blue) were observed by lung intravital multiphoton imaging 2 h after intravenous adoptive transfer (6 × 10 5 cells). Time in h/min/s. Playback speed: 600.

Article Snippet: Cells were then directly blocked with 1% bovine serum albumin in PBS and incubated for 1 h at room temperature with mAbs to mouse TL1A (rat IgG1 mAb, clone 293327, 2 μg/ml, # MAB7441; RRID: AB_2206977; R&D Systems) or DDK (Flag) epitope (rabbit mAb, clone TA592569S, 1 μg/ml, # TA592569; Origene).

Techniques: Migration, Imaging, Adoptive Transfer Assay

(A) VLDL-apo B and VLDL-B100 secretion were measured following 18 h incubation of McA cells in cDMEM (black bars) and in 1% BSA/DMEM (gray bars) by immuno slot blotting. (B) Representative standard curve generated from an immuno slot blot (duplicate standards) where VLDL protein is plotted against average chemiluminescence signal in arbitrary units (AU) generated using anti-rat B100 monoclonal antibody and HRP-anti-mouse IgG. (C) Immunoblots of McA cell lysates from four independent experiments comparing McA cells incubated in cDMEM with 1% BSA/DMEM. Anti-GAPDH blotting display equal protein loading. (D) Relative expression of Apob, Sort1 and Atf3 mRNA in McA cells incubated in 1% BSA/DMEM as a percentage of mRNA present in McA cells incubated in cDMEM. Results are averages from 4 independent experiments.* Indicates means are significantly different.

Journal: Biochemical and biophysical research communications

Article Title: Sortilin facilitates VLDL-B100 secretion by insulin sensitive McArdle RH7777 cells

doi: 10.1016/j.bbrc.2016.07.096

Figure Lengend Snippet: (A) VLDL-apo B and VLDL-B100 secretion were measured following 18 h incubation of McA cells in cDMEM (black bars) and in 1% BSA/DMEM (gray bars) by immuno slot blotting. (B) Representative standard curve generated from an immuno slot blot (duplicate standards) where VLDL protein is plotted against average chemiluminescence signal in arbitrary units (AU) generated using anti-rat B100 monoclonal antibody and HRP-anti-mouse IgG. (C) Immunoblots of McA cell lysates from four independent experiments comparing McA cells incubated in cDMEM with 1% BSA/DMEM. Anti-GAPDH blotting display equal protein loading. (D) Relative expression of Apob, Sort1 and Atf3 mRNA in McA cells incubated in 1% BSA/DMEM as a percentage of mRNA present in McA cells incubated in cDMEM. Results are averages from 4 independent experiments.* Indicates means are significantly different.

Article Snippet: McA cells were transfected using Fugene6 according to manufacturer’s protocol (Promega Corp., Madison WI) using three different pGIPZ based vectors expressing shRNAi targeting rat Sort1 mRNA (V2LMM_58553, V3LMM_450660, V3LMM_450662), and one scrambled, non-silencing control (GE Healthcare Dharmacon, Lafayette, CO).

Techniques: Incubation, Generated, Dot Blot, Western Blot, Expressing

(A) Following siRNA-mediated KD of sortilin, three clones of McA cells were selected representing high (H, McA60), medium (M, McA62) and low (L, McA53) sortilin expression evaluated by immunoblotting compared with wild type (WT) McA cells. The effect of increasing sortilin KD on VLDL-B100 secretion by McA cells incubated in cDMEM (B) or incubated in 1% BSA/DMEM (C). Results in (B) and (C) are averages of triplicate plates for each condition (n = 2 studies). * Indicates means are significantly different from the SCR McA cell line.

Journal: Biochemical and biophysical research communications

Article Title: Sortilin facilitates VLDL-B100 secretion by insulin sensitive McArdle RH7777 cells

doi: 10.1016/j.bbrc.2016.07.096

Figure Lengend Snippet: (A) Following siRNA-mediated KD of sortilin, three clones of McA cells were selected representing high (H, McA60), medium (M, McA62) and low (L, McA53) sortilin expression evaluated by immunoblotting compared with wild type (WT) McA cells. The effect of increasing sortilin KD on VLDL-B100 secretion by McA cells incubated in cDMEM (B) or incubated in 1% BSA/DMEM (C). Results in (B) and (C) are averages of triplicate plates for each condition (n = 2 studies). * Indicates means are significantly different from the SCR McA cell line.

Article Snippet: McA cells were transfected using Fugene6 according to manufacturer’s protocol (Promega Corp., Madison WI) using three different pGIPZ based vectors expressing shRNAi targeting rat Sort1 mRNA (V2LMM_58553, V3LMM_450660, V3LMM_450662), and one scrambled, non-silencing control (GE Healthcare Dharmacon, Lafayette, CO).

Techniques: Clone Assay, Expressing, Western Blot, Incubation

(A) McA cell lines with variable sortilin KD were incubated with vehicle (black bars) or with 10 μM cpd984 (gray bars) for 18 h (3-100 mm plates per condition). Viability of McA cells was not compromised by incubations with cpd984 as there was no significant release of LDH into the medium compared with control incubations. VLDL was isolated from media of each plate and VLDL-B100 was quantified by immuno slot blotting. Results presented are averages of the 3 plates ± S.D. (B) McA cells were incubated for 18 h in 1% BSA/DMEM ± 10 μM cpd984. McA cells were then stimulated with a time course of 250 nM insulin (0, 5, 10 and 15 min). IRβ and AKT, pY-IRβ, and p-AKT (S473) were evaluated by immunoblotting using protein and phosphospecific antibodies.

Journal: Biochemical and biophysical research communications

Article Title: Sortilin facilitates VLDL-B100 secretion by insulin sensitive McArdle RH7777 cells

doi: 10.1016/j.bbrc.2016.07.096

Figure Lengend Snippet: (A) McA cell lines with variable sortilin KD were incubated with vehicle (black bars) or with 10 μM cpd984 (gray bars) for 18 h (3-100 mm plates per condition). Viability of McA cells was not compromised by incubations with cpd984 as there was no significant release of LDH into the medium compared with control incubations. VLDL was isolated from media of each plate and VLDL-B100 was quantified by immuno slot blotting. Results presented are averages of the 3 plates ± S.D. (B) McA cells were incubated for 18 h in 1% BSA/DMEM ± 10 μM cpd984. McA cells were then stimulated with a time course of 250 nM insulin (0, 5, 10 and 15 min). IRβ and AKT, pY-IRβ, and p-AKT (S473) were evaluated by immunoblotting using protein and phosphospecific antibodies.

Article Snippet: McA cells were transfected using Fugene6 according to manufacturer’s protocol (Promega Corp., Madison WI) using three different pGIPZ based vectors expressing shRNAi targeting rat Sort1 mRNA (V2LMM_58553, V3LMM_450660, V3LMM_450662), and one scrambled, non-silencing control (GE Healthcare Dharmacon, Lafayette, CO).

Techniques: Incubation, Control, Isolation, Western Blot