transferrin receptor tfrc Search Results


95
Sino Biological c terminus
(A) Protein diagram. VP1u-APEX2 consists of APEX2 fused to <t>the</t> <t>C-terminus</t> of the unique region of B19V VP1 (VP1u) via a seven-residue glycine-serine linker (GGSGGSG), followed by a Flag tag and a 6 × Histidine (His) tag. APEX2 has a linker-Flag-His tag fused at the C-terminus. (B) Analysis of purified proteins. VP1u-APEX2 and APEX2 proteins were expressed in bacteria and purified. Approximately (∼) 1 µg of each protein was separated by SDS-PAGE, followed by Coomassie blue staining. M, molecular weight marker. (C) Confocal microscopy of VP1u-APEX2 entry. 1 × 10 6 UT7/Epo-S1 cells were incubated with 2 μM VP1u-APEX2 or APEX2 protein at 37°C for 2 h. The cells were then immunostained with α-Flag to visualize internalized proteins under a Leica STED confocal microscope. Scale bar = 10 μm. Nuclei were stained with DAPI (4’,6-diamidino-2-phenylindole). (D) Western blotting of APEX2-biotinylated proteins. 1 × 10 7 UT7/Epo-S1 cells were incubated with 2 μM VP1u-APEX2 or APEX2 protein at 37°C. After 2 h, APEX2-mediated biotinylation was then performed as described in the Materials and Methods and Figure S1 . Biotinylated host proteins were purified with streptavidin-conjugated magnetic beads. The supernatant was collected as the flow-through (FT), and the beads were further washed several times and eluted as the pull-down (PD). Both FT and PD samples were analyzed by SDS-PAGE and immunoblotting using Alexa Fluor 680-conjugated streptavidin. (E) Analysis of VP1u-APEX2-biotinylated/associated proteins using quantitative mass spectrometry (qMS). Three independent PD samples prepared from VP1u-APEX2 and APEX2 (control) treated cells were analyzed by on-bead digestion and qMS. MS data were processed and analyzed as described in the Materials and Methods. The bubble plot shows protein enrichment (log 2 fold change) in the VP1u-APEX2 group relative to the APEX control, with color indicating subcellular localization based on Gene Ontology (GO) annotation. TFRC denotes human transferrin receptor 1 (hTfR).
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Proteintech tfr1
(A) Protein diagram. VP1u-APEX2 consists of APEX2 fused to <t>the</t> <t>C-terminus</t> of the unique region of B19V VP1 (VP1u) via a seven-residue glycine-serine linker (GGSGGSG), followed by a Flag tag and a 6 × Histidine (His) tag. APEX2 has a linker-Flag-His tag fused at the C-terminus. (B) Analysis of purified proteins. VP1u-APEX2 and APEX2 proteins were expressed in bacteria and purified. Approximately (∼) 1 µg of each protein was separated by SDS-PAGE, followed by Coomassie blue staining. M, molecular weight marker. (C) Confocal microscopy of VP1u-APEX2 entry. 1 × 10 6 UT7/Epo-S1 cells were incubated with 2 μM VP1u-APEX2 or APEX2 protein at 37°C for 2 h. The cells were then immunostained with α-Flag to visualize internalized proteins under a Leica STED confocal microscope. Scale bar = 10 μm. Nuclei were stained with DAPI (4’,6-diamidino-2-phenylindole). (D) Western blotting of APEX2-biotinylated proteins. 1 × 10 7 UT7/Epo-S1 cells were incubated with 2 μM VP1u-APEX2 or APEX2 protein at 37°C. After 2 h, APEX2-mediated biotinylation was then performed as described in the Materials and Methods and Figure S1 . Biotinylated host proteins were purified with streptavidin-conjugated magnetic beads. The supernatant was collected as the flow-through (FT), and the beads were further washed several times and eluted as the pull-down (PD). Both FT and PD samples were analyzed by SDS-PAGE and immunoblotting using Alexa Fluor 680-conjugated streptavidin. (E) Analysis of VP1u-APEX2-biotinylated/associated proteins using quantitative mass spectrometry (qMS). Three independent PD samples prepared from VP1u-APEX2 and APEX2 (control) treated cells were analyzed by on-bead digestion and qMS. MS data were processed and analyzed as described in the Materials and Methods. The bubble plot shows protein enrichment (log 2 fold change) in the VP1u-APEX2 group relative to the APEX control, with color indicating subcellular localization based on Gene Ontology (GO) annotation. TFRC denotes human transferrin receptor 1 (hTfR).
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Miltenyi Biotec anti human cd71 pe reafinitytm antibody
Fig. 5. In vivo HU treatment of Nos2–/– mice impairs HU inhibition of proliferation in erythroid progenitors. a) Schematic representation of experimental setup: Nos2–/– or wild-type (WT) mice were treated orally with 200 mg/kg HU or drinking water for 2 weeks. WT mice were injected with 20 mg/kg of 1400W twice daily for 3 consecutive days. Mouse erythroid progenitors (mERP) were isolated from bone marrow by immunomagnetic cell separation using <t>anti-CD71-PE</t> and anti- Ter119-FITC antibodies. b) Immunocytochemistry for Nos2 protein in mERP isolated from WT mice treated or not with HU. Quantification of Nos2-positive cells. c) Citrulline concentration in the bone marrow of WT and Nos2–/– mice treated or not with HU. d) Colony formation assay showing the number of late erythroid (CFU-E), early erythroid (BFU-E), or granulocyte/macrophage progenitors (CFU-GM) in the bone marrow of WT or Nos2–/– mice treated or not with HU. e) Immunocytochemistry for Ki67 in mERP cells isolated from WT and Nos2–/– mice treated or not with HU. f) Quantification of Ki67-positive cells. g) Cell cycle distribution by flow cytometry showing the percentage of cells in G0/G1, S, or G2/M phases of the cell cycle. c) n = 3, f) n = 5; mean + SEM, *p < 0.05, **p < 0.01, ***p < 0.001 vs. WT.
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94
ProSci Incorporated rab11a
HEV pORF1 predominantly localizes to CD63-positive vesicular structures. Analyses of subcellular distribution of pORF1 ectopically expressed in A549/D3 cells. ( A ) Confocal microscopy of double-tagged pORF1; EGFP-mCherry Merge displays the subcellular distribution of EGFP ( green )-mCherry ( red ) fusion protein without insertion of pORF1. C-term, C-terminal mCherry; N-term, N-terminal EGFP. ( B ) Particle analysis of only C-terminus–containing vesicles (C-term) and N- and C-terminus-containing vesicles (C+N-terminus). ∗∗∗ P > .0001; ∼300 particles were analyzed. ( C ) Confocal microscopy of C-terminally mScarlet-tagged pORF1 ( red ) and indirect immunofluorescent stain of different organelle marker proteins ( green ); ERGIC53, ERGIC; GM130, Golgi; EEA1, EEs; <t>Rab11a,</t> REs; LC3B, APs; LAMP2, LYs; CD63, MVBs. ( D ) Particle analysis of pORF1-containing vesicles (pORF1 alone) and pORF1- and marker protein–containing vesicles (pORF1 + marker); between ∼200 and ∼1000 particles were analyzed for each organelle marker. Single channels depicted as greyscale images with headers indicating the channel coloring; zoom refers to areas magnified from white rectangles in merge; white ellipses indicate nucleus; scale bar represents 40 μm. APs, autophagosomes; EEs, early endosomes; ERGIC, ER-Golgi intermediate compartment; Golgi, Golgi apparatus; LYs, lysosomes; MVBs, multivesicular bodies; REs, recycling endosomes. Data are displayed as mean ± standard error of the mean. Microscopy performed on Leica TCS SP8 System with 100× objective (numerical arperture 1.4). Images deconvoluted via lightning algorithm using LAS X Control software.
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91
Boster Bio transferrin receptor 1 tfr1
SIRT1/NRF2/GPX4 pathway is involved in hippocampal ferroptosis in aged mice. (A) WB images and quantification analysis of SIRT1, NRF2 and GPX4 in the hippocampus of aged mice. (B) WB images and quantification analysis of SLC7A11, <t>TFR1,</t> IRP2 and ferritin in the hippocampus of aged mice ( n = 3 per group). (C) qRT‐PCR expression of SIRT1, NRF2, GPX4, SLC7A11, TFR1, IRP2 and ferritin mRNA in the hippocampus of aged mice ( n = 3 per group). Values are presented as mean ± SEM. ** p < 0.01 compared with the C group; # p < 0.05 and ## p < 0.01 compared with the M group; + p < 0.05 and ++ p < 0.01 and compared with the EX group.
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95
Sino Biological mtfr
SIRT1/NRF2/GPX4 pathway is involved in hippocampal ferroptosis in aged mice. (A) WB images and quantification analysis of SIRT1, NRF2 and GPX4 in the hippocampus of aged mice. (B) WB images and quantification analysis of SLC7A11, <t>TFR1,</t> IRP2 and ferritin in the hippocampus of aged mice ( n = 3 per group). (C) qRT‐PCR expression of SIRT1, NRF2, GPX4, SLC7A11, TFR1, IRP2 and ferritin mRNA in the hippocampus of aged mice ( n = 3 per group). Values are presented as mean ± SEM. ** p < 0.01 compared with the C group; # p < 0.05 and ## p < 0.01 compared with the M group; + p < 0.05 and ++ p < 0.01 and compared with the EX group.
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93
Boster Bio transferrin receptor
SIRT1/NRF2/GPX4 pathway is involved in hippocampal ferroptosis in aged mice. (A) WB images and quantification analysis of SIRT1, NRF2 and GPX4 in the hippocampus of aged mice. (B) WB images and quantification analysis of SLC7A11, <t>TFR1,</t> IRP2 and ferritin in the hippocampus of aged mice ( n = 3 per group). (C) qRT‐PCR expression of SIRT1, NRF2, GPX4, SLC7A11, TFR1, IRP2 and ferritin mRNA in the hippocampus of aged mice ( n = 3 per group). Values are presented as mean ± SEM. ** p < 0.01 compared with the C group; # p < 0.05 and ## p < 0.01 compared with the M group; + p < 0.05 and ++ p < 0.01 and compared with the EX group.
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Sino Biological antibodies against tfr
SIRT1/NRF2/GPX4 pathway is involved in hippocampal ferroptosis in aged mice. (A) WB images and quantification analysis of SIRT1, NRF2 and GPX4 in the hippocampus of aged mice. (B) WB images and quantification analysis of SLC7A11, <t>TFR1,</t> IRP2 and ferritin in the hippocampus of aged mice ( n = 3 per group). (C) qRT‐PCR expression of SIRT1, NRF2, GPX4, SLC7A11, TFR1, IRP2 and ferritin mRNA in the hippocampus of aged mice ( n = 3 per group). Values are presented as mean ± SEM. ** p < 0.01 compared with the C group; # p < 0.05 and ## p < 0.01 compared with the M group; + p < 0.05 and ++ p < 0.01 and compared with the EX group.
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Sino Biological rabbit polyclonal anti transferrin receptor c
SIRT1/NRF2/GPX4 pathway is involved in hippocampal ferroptosis in aged mice. (A) WB images and quantification analysis of SIRT1, NRF2 and GPX4 in the hippocampus of aged mice. (B) WB images and quantification analysis of SLC7A11, <t>TFR1,</t> IRP2 and ferritin in the hippocampus of aged mice ( n = 3 per group). (C) qRT‐PCR expression of SIRT1, NRF2, GPX4, SLC7A11, TFR1, IRP2 and ferritin mRNA in the hippocampus of aged mice ( n = 3 per group). Values are presented as mean ± SEM. ** p < 0.01 compared with the C group; # p < 0.05 and ## p < 0.01 compared with the M group; + p < 0.05 and ++ p < 0.01 and compared with the EX group.
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Sino Biological antitfr1 antibody
SIRT1/NRF2/GPX4 pathway is involved in hippocampal ferroptosis in aged mice. (A) WB images and quantification analysis of SIRT1, NRF2 and GPX4 in the hippocampus of aged mice. (B) WB images and quantification analysis of SLC7A11, <t>TFR1,</t> IRP2 and ferritin in the hippocampus of aged mice ( n = 3 per group). (C) qRT‐PCR expression of SIRT1, NRF2, GPX4, SLC7A11, TFR1, IRP2 and ferritin mRNA in the hippocampus of aged mice ( n = 3 per group). Values are presented as mean ± SEM. ** p < 0.01 compared with the C group; # p < 0.05 and ## p < 0.01 compared with the M group; + p < 0.05 and ++ p < 0.01 and compared with the EX group.
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Sino Biological r001
SIRT1/NRF2/GPX4 pathway is involved in hippocampal ferroptosis in aged mice. (A) WB images and quantification analysis of SIRT1, NRF2 and GPX4 in the hippocampus of aged mice. (B) WB images and quantification analysis of SLC7A11, <t>TFR1,</t> IRP2 and ferritin in the hippocampus of aged mice ( n = 3 per group). (C) qRT‐PCR expression of SIRT1, NRF2, GPX4, SLC7A11, TFR1, IRP2 and ferritin mRNA in the hippocampus of aged mice ( n = 3 per group). Values are presented as mean ± SEM. ** p < 0.01 compared with the C group; # p < 0.05 and ## p < 0.01 compared with the M group; + p < 0.05 and ++ p < 0.01 and compared with the EX group.
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95
Sino Biological cynomolgus tfr
SIRT1/NRF2/GPX4 pathway is involved in hippocampal ferroptosis in aged mice. (A) WB images and quantification analysis of SIRT1, NRF2 and GPX4 in the hippocampus of aged mice. (B) WB images and quantification analysis of SLC7A11, <t>TFR1,</t> IRP2 and ferritin in the hippocampus of aged mice ( n = 3 per group). (C) qRT‐PCR expression of SIRT1, NRF2, GPX4, SLC7A11, TFR1, IRP2 and ferritin mRNA in the hippocampus of aged mice ( n = 3 per group). Values are presented as mean ± SEM. ** p < 0.01 compared with the C group; # p < 0.05 and ## p < 0.01 compared with the M group; + p < 0.05 and ++ p < 0.01 and compared with the EX group.
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Image Search Results


(A) Protein diagram. VP1u-APEX2 consists of APEX2 fused to the C-terminus of the unique region of B19V VP1 (VP1u) via a seven-residue glycine-serine linker (GGSGGSG), followed by a Flag tag and a 6 × Histidine (His) tag. APEX2 has a linker-Flag-His tag fused at the C-terminus. (B) Analysis of purified proteins. VP1u-APEX2 and APEX2 proteins were expressed in bacteria and purified. Approximately (∼) 1 µg of each protein was separated by SDS-PAGE, followed by Coomassie blue staining. M, molecular weight marker. (C) Confocal microscopy of VP1u-APEX2 entry. 1 × 10 6 UT7/Epo-S1 cells were incubated with 2 μM VP1u-APEX2 or APEX2 protein at 37°C for 2 h. The cells were then immunostained with α-Flag to visualize internalized proteins under a Leica STED confocal microscope. Scale bar = 10 μm. Nuclei were stained with DAPI (4’,6-diamidino-2-phenylindole). (D) Western blotting of APEX2-biotinylated proteins. 1 × 10 7 UT7/Epo-S1 cells were incubated with 2 μM VP1u-APEX2 or APEX2 protein at 37°C. After 2 h, APEX2-mediated biotinylation was then performed as described in the Materials and Methods and Figure S1 . Biotinylated host proteins were purified with streptavidin-conjugated magnetic beads. The supernatant was collected as the flow-through (FT), and the beads were further washed several times and eluted as the pull-down (PD). Both FT and PD samples were analyzed by SDS-PAGE and immunoblotting using Alexa Fluor 680-conjugated streptavidin. (E) Analysis of VP1u-APEX2-biotinylated/associated proteins using quantitative mass spectrometry (qMS). Three independent PD samples prepared from VP1u-APEX2 and APEX2 (control) treated cells were analyzed by on-bead digestion and qMS. MS data were processed and analyzed as described in the Materials and Methods. The bubble plot shows protein enrichment (log 2 fold change) in the VP1u-APEX2 group relative to the APEX control, with color indicating subcellular localization based on Gene Ontology (GO) annotation. TFRC denotes human transferrin receptor 1 (hTfR).

Journal: bioRxiv

Article Title: Identification of Human Transferrin Receptor as an Entry Co-receptor for Parvovirus B19 Infection of Human Erythroid Progenitor Cells

doi: 10.64898/2026.04.02.715920

Figure Lengend Snippet: (A) Protein diagram. VP1u-APEX2 consists of APEX2 fused to the C-terminus of the unique region of B19V VP1 (VP1u) via a seven-residue glycine-serine linker (GGSGGSG), followed by a Flag tag and a 6 × Histidine (His) tag. APEX2 has a linker-Flag-His tag fused at the C-terminus. (B) Analysis of purified proteins. VP1u-APEX2 and APEX2 proteins were expressed in bacteria and purified. Approximately (∼) 1 µg of each protein was separated by SDS-PAGE, followed by Coomassie blue staining. M, molecular weight marker. (C) Confocal microscopy of VP1u-APEX2 entry. 1 × 10 6 UT7/Epo-S1 cells were incubated with 2 μM VP1u-APEX2 or APEX2 protein at 37°C for 2 h. The cells were then immunostained with α-Flag to visualize internalized proteins under a Leica STED confocal microscope. Scale bar = 10 μm. Nuclei were stained with DAPI (4’,6-diamidino-2-phenylindole). (D) Western blotting of APEX2-biotinylated proteins. 1 × 10 7 UT7/Epo-S1 cells were incubated with 2 μM VP1u-APEX2 or APEX2 protein at 37°C. After 2 h, APEX2-mediated biotinylation was then performed as described in the Materials and Methods and Figure S1 . Biotinylated host proteins were purified with streptavidin-conjugated magnetic beads. The supernatant was collected as the flow-through (FT), and the beads were further washed several times and eluted as the pull-down (PD). Both FT and PD samples were analyzed by SDS-PAGE and immunoblotting using Alexa Fluor 680-conjugated streptavidin. (E) Analysis of VP1u-APEX2-biotinylated/associated proteins using quantitative mass spectrometry (qMS). Three independent PD samples prepared from VP1u-APEX2 and APEX2 (control) treated cells were analyzed by on-bead digestion and qMS. MS data were processed and analyzed as described in the Materials and Methods. The bubble plot shows protein enrichment (log 2 fold change) in the VP1u-APEX2 group relative to the APEX control, with color indicating subcellular localization based on Gene Ontology (GO) annotation. TFRC denotes human transferrin receptor 1 (hTfR).

Article Snippet: Purified proteins: Recombinant hTfR ECD protein tagged with a His-tag at the C-terminus (#11020-H07H) and recombinant human ferritin heavy chain 1/FTH1 (#13217-HNAE) were purchased from SinoBiological (Paoli, PA).

Techniques: Residue, FLAG-tag, Purification, Bacteria, SDS Page, Staining, Molecular Weight, Marker, Confocal Microscopy, Incubation, Microscopy, Western Blot, Magnetic Beads, Mass Spectrometry, Control, Protein Enrichment

Fig. 5. In vivo HU treatment of Nos2–/– mice impairs HU inhibition of proliferation in erythroid progenitors. a) Schematic representation of experimental setup: Nos2–/– or wild-type (WT) mice were treated orally with 200 mg/kg HU or drinking water for 2 weeks. WT mice were injected with 20 mg/kg of 1400W twice daily for 3 consecutive days. Mouse erythroid progenitors (mERP) were isolated from bone marrow by immunomagnetic cell separation using anti-CD71-PE and anti- Ter119-FITC antibodies. b) Immunocytochemistry for Nos2 protein in mERP isolated from WT mice treated or not with HU. Quantification of Nos2-positive cells. c) Citrulline concentration in the bone marrow of WT and Nos2–/– mice treated or not with HU. d) Colony formation assay showing the number of late erythroid (CFU-E), early erythroid (BFU-E), or granulocyte/macrophage progenitors (CFU-GM) in the bone marrow of WT or Nos2–/– mice treated or not with HU. e) Immunocytochemistry for Ki67 in mERP cells isolated from WT and Nos2–/– mice treated or not with HU. f) Quantification of Ki67-positive cells. g) Cell cycle distribution by flow cytometry showing the percentage of cells in G0/G1, S, or G2/M phases of the cell cycle. c) n = 3, f) n = 5; mean + SEM, *p < 0.05, **p < 0.01, ***p < 0.001 vs. WT.

Journal: Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie

Article Title: Hydroxyurea inhibits proliferation and stimulates apoptosis through inducible nitric oxide synthase in erythroid cells.

doi: 10.1016/j.biopha.2024.117723

Figure Lengend Snippet: Fig. 5. In vivo HU treatment of Nos2–/– mice impairs HU inhibition of proliferation in erythroid progenitors. a) Schematic representation of experimental setup: Nos2–/– or wild-type (WT) mice were treated orally with 200 mg/kg HU or drinking water for 2 weeks. WT mice were injected with 20 mg/kg of 1400W twice daily for 3 consecutive days. Mouse erythroid progenitors (mERP) were isolated from bone marrow by immunomagnetic cell separation using anti-CD71-PE and anti- Ter119-FITC antibodies. b) Immunocytochemistry for Nos2 protein in mERP isolated from WT mice treated or not with HU. Quantification of Nos2-positive cells. c) Citrulline concentration in the bone marrow of WT and Nos2–/– mice treated or not with HU. d) Colony formation assay showing the number of late erythroid (CFU-E), early erythroid (BFU-E), or granulocyte/macrophage progenitors (CFU-GM) in the bone marrow of WT or Nos2–/– mice treated or not with HU. e) Immunocytochemistry for Ki67 in mERP cells isolated from WT and Nos2–/– mice treated or not with HU. f) Quantification of Ki67-positive cells. g) Cell cycle distribution by flow cytometry showing the percentage of cells in G0/G1, S, or G2/M phases of the cell cycle. c) n = 3, f) n = 5; mean + SEM, *p < 0.05, **p < 0.01, ***p < 0.001 vs. WT.

Article Snippet: Bone marrow cells were flushed out of the femurs and tibias of WT or Nos2–/– mice treated with HU or 1400W and resuspended in 100 μL of buffer (1 % PBS, 0.5 % BSA, 2 mM EDTA) and stained with 7 μL of anti-human CD71-PE REAfinityTM antibody (Miltenyi Biotec, 130–120–809, Bergisch Gladbach, Germany) for 15 min at 4◦C.

Techniques: In Vivo, Inhibition, Injection, Isolation, Immunocytochemistry, Concentration Assay, Colony Assay, Flow Cytometry

HEV pORF1 predominantly localizes to CD63-positive vesicular structures. Analyses of subcellular distribution of pORF1 ectopically expressed in A549/D3 cells. ( A ) Confocal microscopy of double-tagged pORF1; EGFP-mCherry Merge displays the subcellular distribution of EGFP ( green )-mCherry ( red ) fusion protein without insertion of pORF1. C-term, C-terminal mCherry; N-term, N-terminal EGFP. ( B ) Particle analysis of only C-terminus–containing vesicles (C-term) and N- and C-terminus-containing vesicles (C+N-terminus). ∗∗∗ P > .0001; ∼300 particles were analyzed. ( C ) Confocal microscopy of C-terminally mScarlet-tagged pORF1 ( red ) and indirect immunofluorescent stain of different organelle marker proteins ( green ); ERGIC53, ERGIC; GM130, Golgi; EEA1, EEs; Rab11a, REs; LC3B, APs; LAMP2, LYs; CD63, MVBs. ( D ) Particle analysis of pORF1-containing vesicles (pORF1 alone) and pORF1- and marker protein–containing vesicles (pORF1 + marker); between ∼200 and ∼1000 particles were analyzed for each organelle marker. Single channels depicted as greyscale images with headers indicating the channel coloring; zoom refers to areas magnified from white rectangles in merge; white ellipses indicate nucleus; scale bar represents 40 μm. APs, autophagosomes; EEs, early endosomes; ERGIC, ER-Golgi intermediate compartment; Golgi, Golgi apparatus; LYs, lysosomes; MVBs, multivesicular bodies; REs, recycling endosomes. Data are displayed as mean ± standard error of the mean. Microscopy performed on Leica TCS SP8 System with 100× objective (numerical arperture 1.4). Images deconvoluted via lightning algorithm using LAS X Control software.

Journal: Cellular and Molecular Gastroenterology and Hepatology

Article Title: The Protease Domain in HEV pORF1 Mediates the Replicase’s Localization to Multivesicular Bodies and Its Exosomal Release

doi: 10.1016/j.jcmgh.2024.01.001

Figure Lengend Snippet: HEV pORF1 predominantly localizes to CD63-positive vesicular structures. Analyses of subcellular distribution of pORF1 ectopically expressed in A549/D3 cells. ( A ) Confocal microscopy of double-tagged pORF1; EGFP-mCherry Merge displays the subcellular distribution of EGFP ( green )-mCherry ( red ) fusion protein without insertion of pORF1. C-term, C-terminal mCherry; N-term, N-terminal EGFP. ( B ) Particle analysis of only C-terminus–containing vesicles (C-term) and N- and C-terminus-containing vesicles (C+N-terminus). ∗∗∗ P > .0001; ∼300 particles were analyzed. ( C ) Confocal microscopy of C-terminally mScarlet-tagged pORF1 ( red ) and indirect immunofluorescent stain of different organelle marker proteins ( green ); ERGIC53, ERGIC; GM130, Golgi; EEA1, EEs; Rab11a, REs; LC3B, APs; LAMP2, LYs; CD63, MVBs. ( D ) Particle analysis of pORF1-containing vesicles (pORF1 alone) and pORF1- and marker protein–containing vesicles (pORF1 + marker); between ∼200 and ∼1000 particles were analyzed for each organelle marker. Single channels depicted as greyscale images with headers indicating the channel coloring; zoom refers to areas magnified from white rectangles in merge; white ellipses indicate nucleus; scale bar represents 40 μm. APs, autophagosomes; EEs, early endosomes; ERGIC, ER-Golgi intermediate compartment; Golgi, Golgi apparatus; LYs, lysosomes; MVBs, multivesicular bodies; REs, recycling endosomes. Data are displayed as mean ± standard error of the mean. Microscopy performed on Leica TCS SP8 System with 100× objective (numerical arperture 1.4). Images deconvoluted via lightning algorithm using LAS X Control software.

Article Snippet: Primary antibodies were raised against ERGIC53/LMAN1 (lectin mannose-binding 1; Santa Cruz Biotechnologies, sc-365158), GM130/GOLGA2 (golgin A2; Cell Signaling, 12480S), EEA1 (early endosome antigen 1; Abcam, ab206860), Rab11a (Ras-related protein Rab-11A; ProSci, 33-825), (MAP1)LC3B (microtubule-associated protein 1 light chain 3-beta; MBL International, PM036 MBL), LAMP2/CD107b (lysosomal associated membrane protein 2; BD Biosciences, 555803), and CD63 (cluster of differentiation 63; Abcam, ab59479).

Techniques: Confocal Microscopy, Particle Size Analysis, Staining, Marker, Microscopy, Control, Software

SIRT1/NRF2/GPX4 pathway is involved in hippocampal ferroptosis in aged mice. (A) WB images and quantification analysis of SIRT1, NRF2 and GPX4 in the hippocampus of aged mice. (B) WB images and quantification analysis of SLC7A11, TFR1, IRP2 and ferritin in the hippocampus of aged mice ( n = 3 per group). (C) qRT‐PCR expression of SIRT1, NRF2, GPX4, SLC7A11, TFR1, IRP2 and ferritin mRNA in the hippocampus of aged mice ( n = 3 per group). Values are presented as mean ± SEM. ** p < 0.01 compared with the C group; # p < 0.05 and ## p < 0.01 compared with the M group; + p < 0.05 and ++ p < 0.01 and compared with the EX group.

Journal: Journal of Cellular and Molecular Medicine

Article Title: Electroacupuncture Pretreatment Ameliorates Perioperative Neurocognitive Disorder in Aged Mice by Inhibiting Ferroptosis Through the SIRT1 / NRF2 / GPX4 Pathway

doi: 10.1111/jcmm.71021

Figure Lengend Snippet: SIRT1/NRF2/GPX4 pathway is involved in hippocampal ferroptosis in aged mice. (A) WB images and quantification analysis of SIRT1, NRF2 and GPX4 in the hippocampus of aged mice. (B) WB images and quantification analysis of SLC7A11, TFR1, IRP2 and ferritin in the hippocampus of aged mice ( n = 3 per group). (C) qRT‐PCR expression of SIRT1, NRF2, GPX4, SLC7A11, TFR1, IRP2 and ferritin mRNA in the hippocampus of aged mice ( n = 3 per group). Values are presented as mean ± SEM. ** p < 0.01 compared with the C group; # p < 0.05 and ## p < 0.01 compared with the M group; + p < 0.05 and ++ p < 0.01 and compared with the EX group.

Article Snippet: The membrane was then incubated overnight at 4°C with primary antibodies: SIRT1 (1:850; Lot‐19G10A10; BOSTER), NRF2 (1:1500; Cat#YT3189; Immunoway), iron regulatory protein 2 (IRP2) (1:3000; Cat#YN3307; Immunoway), transferrin receptor 1 (TFR1) (1:750; LotNo‐23BP65E1; BOSTER), GPX4 (1:1500; Cat#YN3047; Immunoway), ferritin (1:3000; Cat#YT1692; Immunoway) and SLC7A11 (1:2000; Cat#YT8130; Immunoway).

Techniques: Quantitative RT-PCR, Expressing