mouse tumor Search Results


93
ATCC mouse mammary tumor cell line
LyP-1 receptor (p32) and/or TGFβ-1 expression in breast cancer <t>cell</t> lines and patients. (A) LyP-1 receptor (p32) expression in human and <t>mouse</t> breast cancer cells by immunofluorescence staining. In MDA-MB-231 and 4T1 cells, LyP-1 receptors were localized more on plasma membrane (white arrows) and endoplasmic reticulum-like membrane networks (white triangular arrowheads). In MCF-7 cells, they were more enriched in Golgi-like juxtanuclear compartments (white arrows). Scale bar = 25 μm. (B) LyP-1 receptor expression in breast cancer cell lines by Western blot. Note that mouse LyP-1 receptors in 4T1 cells have a slightly different banding pattern from those in human breast cancer cells. All experiments were repeated three times. (C) Representative images of LyP-1 receptor and TGFβ-1 expression in breast cancer patient samples. Yellow arrows point to positive p32 IHC staining in <t>tumor</t> cells; red open arrows point to TGFβ-1 staining in tumor stroma. Magnification is indicated by scale bars. IHC, immunohistochemistry; TGFβ-1, transforming growth factor β-1.
Mouse Mammary Tumor Cell Line, supplied by ATCC, 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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Miltenyi Biotec mouse tumor dissociation kit
LyP-1 receptor (p32) and/or TGFβ-1 expression in breast cancer <t>cell</t> lines and patients. (A) LyP-1 receptor (p32) expression in human and <t>mouse</t> breast cancer cells by immunofluorescence staining. In MDA-MB-231 and 4T1 cells, LyP-1 receptors were localized more on plasma membrane (white arrows) and endoplasmic reticulum-like membrane networks (white triangular arrowheads). In MCF-7 cells, they were more enriched in Golgi-like juxtanuclear compartments (white arrows). Scale bar = 25 μm. (B) LyP-1 receptor expression in breast cancer cell lines by Western blot. Note that mouse LyP-1 receptors in 4T1 cells have a slightly different banding pattern from those in human breast cancer cells. All experiments were repeated three times. (C) Representative images of LyP-1 receptor and TGFβ-1 expression in breast cancer patient samples. Yellow arrows point to positive p32 IHC staining in <t>tumor</t> cells; red open arrows point to TGFβ-1 staining in tumor stroma. Magnification is indicated by scale bars. IHC, immunohistochemistry; TGFβ-1, transforming growth factor β-1.
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Elabscience Biotechnology tnf α
LyP-1 receptor (p32) and/or TGFβ-1 expression in breast cancer <t>cell</t> lines and patients. (A) LyP-1 receptor (p32) expression in human and <t>mouse</t> breast cancer cells by immunofluorescence staining. In MDA-MB-231 and 4T1 cells, LyP-1 receptors were localized more on plasma membrane (white arrows) and endoplasmic reticulum-like membrane networks (white triangular arrowheads). In MCF-7 cells, they were more enriched in Golgi-like juxtanuclear compartments (white arrows). Scale bar = 25 μm. (B) LyP-1 receptor expression in breast cancer cell lines by Western blot. Note that mouse LyP-1 receptors in 4T1 cells have a slightly different banding pattern from those in human breast cancer cells. All experiments were repeated three times. (C) Representative images of LyP-1 receptor and TGFβ-1 expression in breast cancer patient samples. Yellow arrows point to positive p32 IHC staining in <t>tumor</t> cells; red open arrows point to TGFβ-1 staining in tumor stroma. Magnification is indicated by scale bars. IHC, immunohistochemistry; TGFβ-1, transforming growth factor β-1.
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Elabscience Biotechnology tnf αelisa kit
LyP-1 receptor (p32) and/or TGFβ-1 expression in breast cancer <t>cell</t> lines and patients. (A) LyP-1 receptor (p32) expression in human and <t>mouse</t> breast cancer cells by immunofluorescence staining. In MDA-MB-231 and 4T1 cells, LyP-1 receptors were localized more on plasma membrane (white arrows) and endoplasmic reticulum-like membrane networks (white triangular arrowheads). In MCF-7 cells, they were more enriched in Golgi-like juxtanuclear compartments (white arrows). Scale bar = 25 μm. (B) LyP-1 receptor expression in breast cancer cell lines by Western blot. Note that mouse LyP-1 receptors in 4T1 cells have a slightly different banding pattern from those in human breast cancer cells. All experiments were repeated three times. (C) Representative images of LyP-1 receptor and TGFβ-1 expression in breast cancer patient samples. Yellow arrows point to positive p32 IHC staining in <t>tumor</t> cells; red open arrows point to TGFβ-1 staining in tumor stroma. Magnification is indicated by scale bars. IHC, immunohistochemistry; TGFβ-1, transforming growth factor β-1.
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Miltenyi Biotec tumor isolation kit
LyP-1 receptor (p32) and/or TGFβ-1 expression in breast cancer <t>cell</t> lines and patients. (A) LyP-1 receptor (p32) expression in human and <t>mouse</t> breast cancer cells by immunofluorescence staining. In MDA-MB-231 and 4T1 cells, LyP-1 receptors were localized more on plasma membrane (white arrows) and endoplasmic reticulum-like membrane networks (white triangular arrowheads). In MCF-7 cells, they were more enriched in Golgi-like juxtanuclear compartments (white arrows). Scale bar = 25 μm. (B) LyP-1 receptor expression in breast cancer cell lines by Western blot. Note that mouse LyP-1 receptors in 4T1 cells have a slightly different banding pattern from those in human breast cancer cells. All experiments were repeated three times. (C) Representative images of LyP-1 receptor and TGFβ-1 expression in breast cancer patient samples. Yellow arrows point to positive p32 IHC staining in <t>tumor</t> cells; red open arrows point to TGFβ-1 staining in tumor stroma. Magnification is indicated by scale bars. IHC, immunohistochemistry; TGFβ-1, transforming growth factor β-1.
Tumor 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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Beijing Solarbio Science mouse tumor
LyP-1 receptor (p32) and/or TGFβ-1 expression in breast cancer <t>cell</t> lines and patients. (A) LyP-1 receptor (p32) expression in human and <t>mouse</t> breast cancer cells by immunofluorescence staining. In MDA-MB-231 and 4T1 cells, LyP-1 receptors were localized more on plasma membrane (white arrows) and endoplasmic reticulum-like membrane networks (white triangular arrowheads). In MCF-7 cells, they were more enriched in Golgi-like juxtanuclear compartments (white arrows). Scale bar = 25 μm. (B) LyP-1 receptor expression in breast cancer cell lines by Western blot. Note that mouse LyP-1 receptors in 4T1 cells have a slightly different banding pattern from those in human breast cancer cells. All experiments were repeated three times. (C) Representative images of LyP-1 receptor and TGFβ-1 expression in breast cancer patient samples. Yellow arrows point to positive p32 IHC staining in <t>tumor</t> cells; red open arrows point to TGFβ-1 staining in tumor stroma. Magnification is indicated by scale bars. IHC, immunohistochemistry; TGFβ-1, transforming growth factor β-1.
Mouse Tumor, supplied by Beijing Solarbio Science, 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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Beijing Solarbio Science mouse tumor infiltration tissue lymphocyte separation liquid kit
LyP-1 receptor (p32) and/or TGFβ-1 expression in breast cancer <t>cell</t> lines and patients. (A) LyP-1 receptor (p32) expression in human and <t>mouse</t> breast cancer cells by immunofluorescence staining. In MDA-MB-231 and 4T1 cells, LyP-1 receptors were localized more on plasma membrane (white arrows) and endoplasmic reticulum-like membrane networks (white triangular arrowheads). In MCF-7 cells, they were more enriched in Golgi-like juxtanuclear compartments (white arrows). Scale bar = 25 μm. (B) LyP-1 receptor expression in breast cancer cell lines by Western blot. Note that mouse LyP-1 receptors in 4T1 cells have a slightly different banding pattern from those in human breast cancer cells. All experiments were repeated three times. (C) Representative images of LyP-1 receptor and TGFβ-1 expression in breast cancer patient samples. Yellow arrows point to positive p32 IHC staining in <t>tumor</t> cells; red open arrows point to TGFβ-1 staining in tumor stroma. Magnification is indicated by scale bars. IHC, immunohistochemistry; TGFβ-1, transforming growth factor β-1.
Mouse Tumor Infiltration Tissue Lymphocyte Separation Liquid Kit, supplied by Beijing Solarbio Science, 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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90
ATCC mouse mammary tumor cell lines
CSC/EMT markers are elevated in tumors from DIO mice in association with increased local leptin signaling. (a) <t>Tumor</t> expression of several CSC/EMT-related genes in DIO and control mice identified by RNA sequencing analysis was verified via quantitative RT-PCR. (b) Tumor expression in DIO and control mice of previously established CSC/EMT-related genes (11) not identified by RNA sequencing was measured by quantitative RT-PCR. (c) ALDH activity, another marker of CSC enrichment, was quantified in DIO and control <t>mouse</t> tumors. (d) Immunohistochemical staining for tumor E-cadherin and vimentin expression in DIO and control mice. Representative images shown at x20 magnification. (e) Tumor expression of Lepr as well as <t>mammary</t> fat pad (MFP) expression of Lep in DIO and control mice were measured via quantitative RT-PCR. *P<0.05, **P<0.01
Mouse Mammary Tumor Cell Lines, supplied by ATCC, 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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Cusabio elisa kit
CSC/EMT markers are elevated in tumors from DIO mice in association with increased local leptin signaling. (a) <t>Tumor</t> expression of several CSC/EMT-related genes in DIO and control mice identified by RNA sequencing analysis was verified via quantitative RT-PCR. (b) Tumor expression in DIO and control mice of previously established CSC/EMT-related genes (11) not identified by RNA sequencing was measured by quantitative RT-PCR. (c) ALDH activity, another marker of CSC enrichment, was quantified in DIO and control <t>mouse</t> tumors. (d) Immunohistochemical staining for tumor E-cadherin and vimentin expression in DIO and control mice. Representative images shown at x20 magnification. (e) Tumor expression of Lepr as well as <t>mammary</t> fat pad (MFP) expression of Lep in DIO and control mice were measured via quantitative RT-PCR. *P<0.05, **P<0.01
Elisa Kit, supplied by Cusabio, 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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Proteintech ke10002
CSC/EMT markers are elevated in tumors from DIO mice in association with increased local leptin signaling. (a) <t>Tumor</t> expression of several CSC/EMT-related genes in DIO and control mice identified by RNA sequencing analysis was verified via quantitative RT-PCR. (b) Tumor expression in DIO and control mice of previously established CSC/EMT-related genes (11) not identified by RNA sequencing was measured by quantitative RT-PCR. (c) ALDH activity, another marker of CSC enrichment, was quantified in DIO and control <t>mouse</t> tumors. (d) Immunohistochemical staining for tumor E-cadherin and vimentin expression in DIO and control mice. Representative images shown at x20 magnification. (e) Tumor expression of Lepr as well as <t>mammary</t> fat pad (MFP) expression of Lep in DIO and control mice were measured via quantitative RT-PCR. *P<0.05, **P<0.01
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MedChemExpress tnf α
NETosis <t>promotes</t> <t>TNF-α</t> release from MESs but does not induce cell proliferation. a MES proliferation was not affected by NETosis ( n = 3). b NETosis significantly increased TNF-α secretion ( n = 3). c , d IL-1β and TGF-β levels remained unchanged ( n = 3). Data were analyzed using ANOVA and are presented as mean ± SEM.
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ATCC atcc number are atcc crl
NETosis <t>promotes</t> <t>TNF-α</t> release from MESs but does not induce cell proliferation. a MES proliferation was not affected by NETosis ( n = 3). b NETosis significantly increased TNF-α secretion ( n = 3). c , d IL-1β and TGF-β levels remained unchanged ( n = 3). Data were analyzed using ANOVA and are presented as mean ± SEM.
Atcc Number Are Atcc Crl, supplied by ATCC, 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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Image Search Results


LyP-1 receptor (p32) and/or TGFβ-1 expression in breast cancer cell lines and patients. (A) LyP-1 receptor (p32) expression in human and mouse breast cancer cells by immunofluorescence staining. In MDA-MB-231 and 4T1 cells, LyP-1 receptors were localized more on plasma membrane (white arrows) and endoplasmic reticulum-like membrane networks (white triangular arrowheads). In MCF-7 cells, they were more enriched in Golgi-like juxtanuclear compartments (white arrows). Scale bar = 25 μm. (B) LyP-1 receptor expression in breast cancer cell lines by Western blot. Note that mouse LyP-1 receptors in 4T1 cells have a slightly different banding pattern from those in human breast cancer cells. All experiments were repeated three times. (C) Representative images of LyP-1 receptor and TGFβ-1 expression in breast cancer patient samples. Yellow arrows point to positive p32 IHC staining in tumor cells; red open arrows point to TGFβ-1 staining in tumor stroma. Magnification is indicated by scale bars. IHC, immunohistochemistry; TGFβ-1, transforming growth factor β-1.

Journal: Human Gene Therapy

Article Title: LyP-1-Modified Oncolytic Adenoviruses Targeting Transforming Growth Factor β Inhibit Tumor Growth and Metastases and Augment Immune Checkpoint Inhibitor Therapy in Breast Cancer Mouse Models

doi: 10.1089/hum.2020.078

Figure Lengend Snippet: LyP-1 receptor (p32) and/or TGFβ-1 expression in breast cancer cell lines and patients. (A) LyP-1 receptor (p32) expression in human and mouse breast cancer cells by immunofluorescence staining. In MDA-MB-231 and 4T1 cells, LyP-1 receptors were localized more on plasma membrane (white arrows) and endoplasmic reticulum-like membrane networks (white triangular arrowheads). In MCF-7 cells, they were more enriched in Golgi-like juxtanuclear compartments (white arrows). Scale bar = 25 μm. (B) LyP-1 receptor expression in breast cancer cell lines by Western blot. Note that mouse LyP-1 receptors in 4T1 cells have a slightly different banding pattern from those in human breast cancer cells. All experiments were repeated three times. (C) Representative images of LyP-1 receptor and TGFβ-1 expression in breast cancer patient samples. Yellow arrows point to positive p32 IHC staining in tumor cells; red open arrows point to TGFβ-1 staining in tumor stroma. Magnification is indicated by scale bars. IHC, immunohistochemistry; TGFβ-1, transforming growth factor β-1.

Article Snippet: Human mammary tumor cell lines, MCF-7 (ATCC, Manassas, VA), MDA-MB-231 (ATCC), and MDA-MB-231-luc2, 16 and the mouse mammary tumor cell line, 4T1 (ATCC), were maintained as described earlier.

Techniques: Expressing, Immunofluorescence, Staining, Clinical Proteomics, Membrane, Western Blot, Immunohistochemistry

CSC/EMT markers are elevated in tumors from DIO mice in association with increased local leptin signaling. (a) Tumor expression of several CSC/EMT-related genes in DIO and control mice identified by RNA sequencing analysis was verified via quantitative RT-PCR. (b) Tumor expression in DIO and control mice of previously established CSC/EMT-related genes (11) not identified by RNA sequencing was measured by quantitative RT-PCR. (c) ALDH activity, another marker of CSC enrichment, was quantified in DIO and control mouse tumors. (d) Immunohistochemical staining for tumor E-cadherin and vimentin expression in DIO and control mice. Representative images shown at x20 magnification. (e) Tumor expression of Lepr as well as mammary fat pad (MFP) expression of Lep in DIO and control mice were measured via quantitative RT-PCR. *P<0.05, **P<0.01

Journal: Molecular cancer research : MCR

Article Title: Leptin Signaling Mediates Obesity-associated CSC Enrichment and EMT in Preclinical TNBC Models

doi: 10.1158/1541-7786.MCR-17-0508

Figure Lengend Snippet: CSC/EMT markers are elevated in tumors from DIO mice in association with increased local leptin signaling. (a) Tumor expression of several CSC/EMT-related genes in DIO and control mice identified by RNA sequencing analysis was verified via quantitative RT-PCR. (b) Tumor expression in DIO and control mice of previously established CSC/EMT-related genes (11) not identified by RNA sequencing was measured by quantitative RT-PCR. (c) ALDH activity, another marker of CSC enrichment, was quantified in DIO and control mouse tumors. (d) Immunohistochemical staining for tumor E-cadherin and vimentin expression in DIO and control mice. Representative images shown at x20 magnification. (e) Tumor expression of Lepr as well as mammary fat pad (MFP) expression of Lep in DIO and control mice were measured via quantitative RT-PCR. *P<0.05, **P<0.01

Article Snippet: Cell lines Two mouse mammary tumor cell lines isolated from MMTV-Wnt-1 mice in 2010 by the Hursting laboratory and found to cluster with the basal-like (E-Wnt) and claudin-low (M-Wnt) breast cancer subtypes (11), and human MDA-MB-231 breast cancer cells (ATCC #HTB-26, obtained in 2011), which cluster with the claudin-low subtype, were used in in vitro studies.

Techniques: Expressing, Control, RNA Sequencing, Quantitative RT-PCR, Activity Assay, Marker, Immunohistochemical staining, Staining

Leptin stimulates mammosphere formation in triple-negative mammary tumor cells. Mammosphere formation in (a) E-Wnt, (b) M-Wnt, and (c) MDA-MB-231 cells was assessed at the end of propagation 1 (P1), during which the cells were treated for 7 days with leptin, and following propagation 2 (P2), in which the spheres from P1 were dissociated and then replated with the same treatments for another 7 days. Representative images of mammospheres at the end of P2 are shown at x10 magnification. (d) Lepr expression in parental E-Wnt cells (EWnt-P) as well as E-Wnt cells stably transfected with a scrambled shRNA plasmid (EWnt-S) or shRNA to Lepr (EWnt-L1 and EWnt-L2) was measured by quantitative RT-PCR. (e) Mammosphere formation was assessed in EWnt-P, EWnt-S, EWnt-L1, and EWnt-L2 cells after a 7-day incubation in mammosphere media. Socs3 (f) and Foxc2, Twist2, and Vim (g) gene expression was measured by quantitative RT-PCR. Different letters indicate significant differences, P<0.05.

Journal: Molecular cancer research : MCR

Article Title: Leptin Signaling Mediates Obesity-associated CSC Enrichment and EMT in Preclinical TNBC Models

doi: 10.1158/1541-7786.MCR-17-0508

Figure Lengend Snippet: Leptin stimulates mammosphere formation in triple-negative mammary tumor cells. Mammosphere formation in (a) E-Wnt, (b) M-Wnt, and (c) MDA-MB-231 cells was assessed at the end of propagation 1 (P1), during which the cells were treated for 7 days with leptin, and following propagation 2 (P2), in which the spheres from P1 were dissociated and then replated with the same treatments for another 7 days. Representative images of mammospheres at the end of P2 are shown at x10 magnification. (d) Lepr expression in parental E-Wnt cells (EWnt-P) as well as E-Wnt cells stably transfected with a scrambled shRNA plasmid (EWnt-S) or shRNA to Lepr (EWnt-L1 and EWnt-L2) was measured by quantitative RT-PCR. (e) Mammosphere formation was assessed in EWnt-P, EWnt-S, EWnt-L1, and EWnt-L2 cells after a 7-day incubation in mammosphere media. Socs3 (f) and Foxc2, Twist2, and Vim (g) gene expression was measured by quantitative RT-PCR. Different letters indicate significant differences, P<0.05.

Article Snippet: Cell lines Two mouse mammary tumor cell lines isolated from MMTV-Wnt-1 mice in 2010 by the Hursting laboratory and found to cluster with the basal-like (E-Wnt) and claudin-low (M-Wnt) breast cancer subtypes (11), and human MDA-MB-231 breast cancer cells (ATCC #HTB-26, obtained in 2011), which cluster with the claudin-low subtype, were used in in vitro studies.

Techniques: Expressing, Stable Transfection, Transfection, shRNA, Plasmid Preparation, Quantitative RT-PCR, Incubation, Gene Expression

Obesity-associated circulating factors promote triple-negative mammary tumor cell viability, migration, invasion, and a CSC/EMT genotype. (a) E-Wnt, M-Wnt, and MDA-MB-231 cell viability following a 48-hour exposure to media containing 2% DIO or control mouse serum was assessed by MTT assay. (b) Migration of E-Wnt, M-Wnt, and MDA-MB-231 cells during a 6-hour exposure to media containing 2% DIO or 2% control mouse serum was measured by wound healing assay. Representative images of cells at baseline and 6 hours are shown at x10 magnification. (c) The invasive capacity of E-Wnt, M-Wnt, and MDA-MB-231 cells in response to chemoattraction with media containing 2% DIO or 2% control mouse serum over 24 hours was measured using Matrigel invasion chambers. Representative images of invading cells are shown at x10 magnification. (d) Expression of CSC/EMT-related genes in E-Wnt, M-Wnt, and MDA-MB-231 cells following a 24-hour exposure to media containing 2% DIO or 2% control mouse serum was measured by quantitative RT-PCR. *P<0.05, **P<0.01, ***P<0.001

Journal: Molecular cancer research : MCR

Article Title: Leptin Signaling Mediates Obesity-associated CSC Enrichment and EMT in Preclinical TNBC Models

doi: 10.1158/1541-7786.MCR-17-0508

Figure Lengend Snippet: Obesity-associated circulating factors promote triple-negative mammary tumor cell viability, migration, invasion, and a CSC/EMT genotype. (a) E-Wnt, M-Wnt, and MDA-MB-231 cell viability following a 48-hour exposure to media containing 2% DIO or control mouse serum was assessed by MTT assay. (b) Migration of E-Wnt, M-Wnt, and MDA-MB-231 cells during a 6-hour exposure to media containing 2% DIO or 2% control mouse serum was measured by wound healing assay. Representative images of cells at baseline and 6 hours are shown at x10 magnification. (c) The invasive capacity of E-Wnt, M-Wnt, and MDA-MB-231 cells in response to chemoattraction with media containing 2% DIO or 2% control mouse serum over 24 hours was measured using Matrigel invasion chambers. Representative images of invading cells are shown at x10 magnification. (d) Expression of CSC/EMT-related genes in E-Wnt, M-Wnt, and MDA-MB-231 cells following a 24-hour exposure to media containing 2% DIO or 2% control mouse serum was measured by quantitative RT-PCR. *P<0.05, **P<0.01, ***P<0.001

Article Snippet: Cell lines Two mouse mammary tumor cell lines isolated from MMTV-Wnt-1 mice in 2010 by the Hursting laboratory and found to cluster with the basal-like (E-Wnt) and claudin-low (M-Wnt) breast cancer subtypes (11), and human MDA-MB-231 breast cancer cells (ATCC #HTB-26, obtained in 2011), which cluster with the claudin-low subtype, were used in in vitro studies.

Techniques: Migration, Control, MTT Assay, Wound Healing Assay, Expressing, Quantitative RT-PCR

Proposed model illustrating leptin-mediated upregulation in CSC/EMT-related genes and phenotype. Our findings suggest that obesity in MMTV-Wnt-1 mice promotes both an excess of leptin production in the tumor microenvironment (normal mammary tissue) and an upregulation in tumor expression of the leptin receptor and CSC/EMT-related genes. They also indicate that leptin signaling promotes a CSC/EMT-related phenotype, including increased CSC enrichment and cell viability, migration, and invasion, and specifically regulates the expression of Foxc2, Twist2, Vim, Akt3, and Sox2 in triple-negative mammary tumor cells. We hypothesize that these genes may mediate the observed leptin-induced CSC/EMT-related phenotype and that leptin regulates these genes via stimulation of the JAK2/STAT3 and/or PI3K/Akt pathways. Black arrows indicate effects observed in this study, solid blue arrows indicate pathways known from the literature, and dotted blue arrows indicate hypothesized mechanisms.

Journal: Molecular cancer research : MCR

Article Title: Leptin Signaling Mediates Obesity-associated CSC Enrichment and EMT in Preclinical TNBC Models

doi: 10.1158/1541-7786.MCR-17-0508

Figure Lengend Snippet: Proposed model illustrating leptin-mediated upregulation in CSC/EMT-related genes and phenotype. Our findings suggest that obesity in MMTV-Wnt-1 mice promotes both an excess of leptin production in the tumor microenvironment (normal mammary tissue) and an upregulation in tumor expression of the leptin receptor and CSC/EMT-related genes. They also indicate that leptin signaling promotes a CSC/EMT-related phenotype, including increased CSC enrichment and cell viability, migration, and invasion, and specifically regulates the expression of Foxc2, Twist2, Vim, Akt3, and Sox2 in triple-negative mammary tumor cells. We hypothesize that these genes may mediate the observed leptin-induced CSC/EMT-related phenotype and that leptin regulates these genes via stimulation of the JAK2/STAT3 and/or PI3K/Akt pathways. Black arrows indicate effects observed in this study, solid blue arrows indicate pathways known from the literature, and dotted blue arrows indicate hypothesized mechanisms.

Article Snippet: Cell lines Two mouse mammary tumor cell lines isolated from MMTV-Wnt-1 mice in 2010 by the Hursting laboratory and found to cluster with the basal-like (E-Wnt) and claudin-low (M-Wnt) breast cancer subtypes (11), and human MDA-MB-231 breast cancer cells (ATCC #HTB-26, obtained in 2011), which cluster with the claudin-low subtype, were used in in vitro studies.

Techniques: Expressing, Migration

NETosis promotes TNF-α release from MESs but does not induce cell proliferation. a MES proliferation was not affected by NETosis ( n = 3). b NETosis significantly increased TNF-α secretion ( n = 3). c , d IL-1β and TGF-β levels remained unchanged ( n = 3). Data were analyzed using ANOVA and are presented as mean ± SEM.

Journal: Kidney Diseases

Article Title: Clinical and Experimental Insights into the Role of NETosis in IgA Nephropathy Pathogenesis

doi: 10.1159/000546343

Figure Lengend Snippet: NETosis promotes TNF-α release from MESs but does not induce cell proliferation. a MES proliferation was not affected by NETosis ( n = 3). b NETosis significantly increased TNF-α secretion ( n = 3). c , d IL-1β and TGF-β levels remained unchanged ( n = 3). Data were analyzed using ANOVA and are presented as mean ± SEM.

Article Snippet: In the experiment evaluating the effects of TNF-α on MESs, MES cells were treated with TNF-α (MCE, HY- P70571 ) at a concentration of 20 ng/mL for 24 h.

Techniques:

TNF-α stimulation downregulates PPARα in MESs. a Western blot analysis of PPARα, PPARβ/δ, and PPARγ ( n = 3). b–d Relative expression of PPARα, PPARβ/δ, and PPARγ normalized to β-actin. Data are presented as mean ± SEM.

Journal: Kidney Diseases

Article Title: Clinical and Experimental Insights into the Role of NETosis in IgA Nephropathy Pathogenesis

doi: 10.1159/000546343

Figure Lengend Snippet: TNF-α stimulation downregulates PPARα in MESs. a Western blot analysis of PPARα, PPARβ/δ, and PPARγ ( n = 3). b–d Relative expression of PPARα, PPARβ/δ, and PPARγ normalized to β-actin. Data are presented as mean ± SEM.

Article Snippet: In the experiment evaluating the effects of TNF-α on MESs, MES cells were treated with TNF-α (MCE, HY- P70571 ) at a concentration of 20 ng/mL for 24 h.

Techniques: Western Blot, Expressing