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vivo blocking antibody against mouse pd 1  (Bio X Cell)


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    Bio X Cell vivo blocking antibody against mouse pd 1
    CLCA4 overexpression enhanced the therapeutic effect of <t>anti-PD-1.</t> (A) In vivo tumorigenicity assay in nude mice was performed to detect the therapeutic effect of CLCA4 overexpression combined with anti-PD-1 antibody. (B) Tumor growth curve was monitored from nude mice with different treatment groups. (C) Weights of tumors from nude mice with different treatments were detected. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (D) Analysis of the survival times of mice in each group ( n = 8 per group), and the experiment was terminated 60 days after tumor inoculation. Unpaired two-tailed t -test (mean ± standard deviation). (E) Immunofluorescence or immunohistochemistry staining was performed to detect the infiltration levels of CD8 + T cells, GZMB, Perforin + cells, Ki67 + , Bmi-1 + , and Oct4 + cells in tumors from different treatment groups. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (F) Hematoxylin-eosin staining of liver metastases in each group. (G) Quantitative analysis of the liver weight in each group. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (H) Quantitative analysis of the liver metastasis area/total liver area in each group. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation).
    Vivo Blocking Antibody Against Mouse Pd 1, supplied by Bio X Cell, used in various techniques. Bioz Stars score: 94/100, based on 41 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/anti+mouse+pd+1/pmc12886529-85-11-19?v=Bio+X+Cell
    Average 94 stars, based on 41 article reviews
    vivo blocking antibody against mouse pd 1 - by Bioz Stars, 2026-08
    94/100 stars

    Images

    1) Product Images from "Chloride channel accessory 4 suppresses stem cell-like properties of colorectal cancer and enhances anti-PD-1 immunotherapy"

    Article Title: Chloride channel accessory 4 suppresses stem cell-like properties of colorectal cancer and enhances anti-PD-1 immunotherapy

    Journal: Genes & Diseases

    doi: 10.1016/j.gendis.2025.101859

    CLCA4 overexpression enhanced the therapeutic effect of anti-PD-1. (A) In vivo tumorigenicity assay in nude mice was performed to detect the therapeutic effect of CLCA4 overexpression combined with anti-PD-1 antibody. (B) Tumor growth curve was monitored from nude mice with different treatment groups. (C) Weights of tumors from nude mice with different treatments were detected. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (D) Analysis of the survival times of mice in each group ( n = 8 per group), and the experiment was terminated 60 days after tumor inoculation. Unpaired two-tailed t -test (mean ± standard deviation). (E) Immunofluorescence or immunohistochemistry staining was performed to detect the infiltration levels of CD8 + T cells, GZMB, Perforin + cells, Ki67 + , Bmi-1 + , and Oct4 + cells in tumors from different treatment groups. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (F) Hematoxylin-eosin staining of liver metastases in each group. (G) Quantitative analysis of the liver weight in each group. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (H) Quantitative analysis of the liver metastasis area/total liver area in each group. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation).
    Figure Legend Snippet: CLCA4 overexpression enhanced the therapeutic effect of anti-PD-1. (A) In vivo tumorigenicity assay in nude mice was performed to detect the therapeutic effect of CLCA4 overexpression combined with anti-PD-1 antibody. (B) Tumor growth curve was monitored from nude mice with different treatment groups. (C) Weights of tumors from nude mice with different treatments were detected. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (D) Analysis of the survival times of mice in each group ( n = 8 per group), and the experiment was terminated 60 days after tumor inoculation. Unpaired two-tailed t -test (mean ± standard deviation). (E) Immunofluorescence or immunohistochemistry staining was performed to detect the infiltration levels of CD8 + T cells, GZMB, Perforin + cells, Ki67 + , Bmi-1 + , and Oct4 + cells in tumors from different treatment groups. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (F) Hematoxylin-eosin staining of liver metastases in each group. (G) Quantitative analysis of the liver weight in each group. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (H) Quantitative analysis of the liver metastasis area/total liver area in each group. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation).

    Techniques Used: Over Expression, In Vivo, Tumorigenicity Assay, Standard Deviation, Two Tailed Test, Immunofluorescence, Immunohistochemistry, Staining



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    Image Search Results


    PD-1 H regulates GAM polarization to promote glioma malignancy and suppress T-cell immunity. ( A ) Flow cytometric analysis of CD206 expression in BV2 cells, used as an in vitro model of GAMs, with PD-1 H knockout (PD-1 H-KO and PD-1 H-KO#1) or negative control (PD-1 H-NC) under basal conditions (blank) or following IL-4 stimulation (M2) for 48 h. ( B ) Flow cytometric analysis of CD86 expression in PD-1 H-deficient or control BV2 cells under basal conditions (blank) or after IFN-γ stimulation (M1) for 48 h. ( C ) Phagocytic activity of PD-1 H-deficient and control BV2 cells, assessed by uptake of fluorescent microspheres (FluoSpheres) after 4 h incubation. ( D ) Cell viability of GL261 glioma cells cultured with conditioned media derived from PD-1 H-NC, PD-1 H-KO, PD-1 H-KO#1, lenti-NC, or PD-1 H-overexpressing BV2 cells, measured by CCK-8 assay at 24, 48, and 72 h (*** p < 0.001, **** p < 0.0001). ( E, F ) Transwell invasion assays of GL261 cells co-cultured with BV2 cells expressing different levels of PD-1 H. Representative images ( E ) and quantification of invading cells per field ( F ) Are shown (* p < 0.05). ( G, H ) Colony formation assay of GL261 cells cultured with conditioned medium from BV2 cells as indicated. Representative images ( G ) and quantification of colony numbers ( H ) are shown (* p < 0.05, ** p < 0.01). ( I, J ) Wound-healing assays of GL261 cells at 0 h and 48 h after scratch following treatment with BV2 cell–derived conditioned media. Representative images ( I ) and quantification of wound closure ( J ) Are shown (* p < 0.05, ** p < 0.01). ( K ) Antigen-specific proliferation of OT-I CD8+ T cells in the priming stage. Total lymph node cells were stimulated with OVA257-268 peptide and co-cultured with BV2 cells for 48 h. Representative CFSE histograms are shown. ( L ) Proliferation analysis of CD8+ T cells in the differentiation stage. Pre-primed T cells were co-cultured with BV2 cells under IL-2 stimulation for another 48 h. Relative proliferative capacity was quantified via derivative analysis of normalized CFSE signals. Data are presented as mean ± SD (** p < 0.01)

    Journal: Journal of Translational Medicine

    Article Title: PD-1 H (VISTA) drives immunosuppressive reprogramming of glioma-associated myeloid cells to promote glioma progression

    doi: 10.1186/s12967-026-08497-0

    Figure Lengend Snippet: PD-1 H regulates GAM polarization to promote glioma malignancy and suppress T-cell immunity. ( A ) Flow cytometric analysis of CD206 expression in BV2 cells, used as an in vitro model of GAMs, with PD-1 H knockout (PD-1 H-KO and PD-1 H-KO#1) or negative control (PD-1 H-NC) under basal conditions (blank) or following IL-4 stimulation (M2) for 48 h. ( B ) Flow cytometric analysis of CD86 expression in PD-1 H-deficient or control BV2 cells under basal conditions (blank) or after IFN-γ stimulation (M1) for 48 h. ( C ) Phagocytic activity of PD-1 H-deficient and control BV2 cells, assessed by uptake of fluorescent microspheres (FluoSpheres) after 4 h incubation. ( D ) Cell viability of GL261 glioma cells cultured with conditioned media derived from PD-1 H-NC, PD-1 H-KO, PD-1 H-KO#1, lenti-NC, or PD-1 H-overexpressing BV2 cells, measured by CCK-8 assay at 24, 48, and 72 h (*** p < 0.001, **** p < 0.0001). ( E, F ) Transwell invasion assays of GL261 cells co-cultured with BV2 cells expressing different levels of PD-1 H. Representative images ( E ) and quantification of invading cells per field ( F ) Are shown (* p < 0.05). ( G, H ) Colony formation assay of GL261 cells cultured with conditioned medium from BV2 cells as indicated. Representative images ( G ) and quantification of colony numbers ( H ) are shown (* p < 0.05, ** p < 0.01). ( I, J ) Wound-healing assays of GL261 cells at 0 h and 48 h after scratch following treatment with BV2 cell–derived conditioned media. Representative images ( I ) and quantification of wound closure ( J ) Are shown (* p < 0.05, ** p < 0.01). ( K ) Antigen-specific proliferation of OT-I CD8+ T cells in the priming stage. Total lymph node cells were stimulated with OVA257-268 peptide and co-cultured with BV2 cells for 48 h. Representative CFSE histograms are shown. ( L ) Proliferation analysis of CD8+ T cells in the differentiation stage. Pre-primed T cells were co-cultured with BV2 cells under IL-2 stimulation for another 48 h. Relative proliferative capacity was quantified via derivative analysis of normalized CFSE signals. Data are presented as mean ± SD (** p < 0.01)

    Article Snippet: Mice were subsequently treated with PBS or anti-PD-1 H monoclonal antibody (13F3, 300 μg/mouse, HY-P990145, MCE) every two days, a dosing regimen based on previous studies [ , ].

    Techniques: Expressing, In Vitro, Knock-Out, Negative Control, Control, Activity Assay, Incubation, Cell Culture, Derivative Assay, CCK-8 Assay, Colony Assay

    PD-1 H expression and distribution in glioma. ( A ) Representative IHC images of PD-1 H in human glioma vs. normal brain tissue (scale bars, 200 μm). ( B ) Quantification of IHC scores for PD-1 H in glioma ( n = 27) and normal brain ( n = 5) samples (** p < 0.01). ( C ) Violin plots showing expression distribution of PD-1 H and other immune checkpoint molecules (TIM-3, LAG-3, TIGIT, CTLA-4, PD-L1, and PD-1) in glioma samples from the TCGA dataset. ( D ) Bulk RNA-seq of PD-1 H expression levels in glioma ( n = 702) and normal brain ( n = 423) samples based on RNA-seq data from TCGA and GTEx datasets (**** p < 0.0001). ( E ) UMAP plot showing single-cell RNA-seq data of glioma, colored by cell type (5.27 × 10 5 cells from 85 glioma samples, single-cell portal, SCP2389). ( F ) UMAP plot with PD-1 H expression intensity (color scale). ( G ) Bar chart showing the expression of PD-1 H in different cell clusters

    Journal: Journal of Translational Medicine

    Article Title: PD-1 H (VISTA) drives immunosuppressive reprogramming of glioma-associated myeloid cells to promote glioma progression

    doi: 10.1186/s12967-026-08497-0

    Figure Lengend Snippet: PD-1 H expression and distribution in glioma. ( A ) Representative IHC images of PD-1 H in human glioma vs. normal brain tissue (scale bars, 200 μm). ( B ) Quantification of IHC scores for PD-1 H in glioma ( n = 27) and normal brain ( n = 5) samples (** p < 0.01). ( C ) Violin plots showing expression distribution of PD-1 H and other immune checkpoint molecules (TIM-3, LAG-3, TIGIT, CTLA-4, PD-L1, and PD-1) in glioma samples from the TCGA dataset. ( D ) Bulk RNA-seq of PD-1 H expression levels in glioma ( n = 702) and normal brain ( n = 423) samples based on RNA-seq data from TCGA and GTEx datasets (**** p < 0.0001). ( E ) UMAP plot showing single-cell RNA-seq data of glioma, colored by cell type (5.27 × 10 5 cells from 85 glioma samples, single-cell portal, SCP2389). ( F ) UMAP plot with PD-1 H expression intensity (color scale). ( G ) Bar chart showing the expression of PD-1 H in different cell clusters

    Article Snippet: Mice were subsequently treated with PBS or anti-PD-1 H monoclonal antibody (13F3, 300 μg/mouse, HY-P990145, MCE) every two days, a dosing regimen based on previous studies [ , ].

    Techniques: Expressing, RNA Sequencing, Single Cell

    PD-1 H expression in GAMs is associated with immune cell composition and clinical outcome in glioma. ( A–E ) Representative IHC staining of PD-1 H, CD68, CD163, CD80, and CD8 in a glioma specimen with low PD-1 H expression (patient-1). ( F–J ) Corresponding IHC staining of PD-1 H, CD68, CD163, CD80, and CD8 in a glioma specimen with high PD-1 H expression (patient-2). Scale bars, 200 μm. ( K–N ) Correlation analyses between PD-1 H and immune cell markers, including CD68, CD163, CD80 and CD8 in glioma samples ( n = 27). ( O–R ) Correlation analyses of expression levels between PD-1 H and immune checkpoint molecules, including TIM-3, PD-L1, PD-1, and CTLA-4 in glioma samples from the TCGA dataset ( n = 702, Spearman correlation, p < 0.001). ( S, T ) Kaplan–Meier survival curves of glioma patients stratified by PD-1 H expression levels in GAMs, including progression-free survival (PFS, S) and overall survival (OS, T) (Log-rank test)

    Journal: Journal of Translational Medicine

    Article Title: PD-1 H (VISTA) drives immunosuppressive reprogramming of glioma-associated myeloid cells to promote glioma progression

    doi: 10.1186/s12967-026-08497-0

    Figure Lengend Snippet: PD-1 H expression in GAMs is associated with immune cell composition and clinical outcome in glioma. ( A–E ) Representative IHC staining of PD-1 H, CD68, CD163, CD80, and CD8 in a glioma specimen with low PD-1 H expression (patient-1). ( F–J ) Corresponding IHC staining of PD-1 H, CD68, CD163, CD80, and CD8 in a glioma specimen with high PD-1 H expression (patient-2). Scale bars, 200 μm. ( K–N ) Correlation analyses between PD-1 H and immune cell markers, including CD68, CD163, CD80 and CD8 in glioma samples ( n = 27). ( O–R ) Correlation analyses of expression levels between PD-1 H and immune checkpoint molecules, including TIM-3, PD-L1, PD-1, and CTLA-4 in glioma samples from the TCGA dataset ( n = 702, Spearman correlation, p < 0.001). ( S, T ) Kaplan–Meier survival curves of glioma patients stratified by PD-1 H expression levels in GAMs, including progression-free survival (PFS, S) and overall survival (OS, T) (Log-rank test)

    Article Snippet: Mice were subsequently treated with PBS or anti-PD-1 H monoclonal antibody (13F3, 300 μg/mouse, HY-P990145, MCE) every two days, a dosing regimen based on previous studies [ , ].

    Techniques: Expressing, Immunohistochemistry

    PD-1 H expression in GAMs promotes glioma progression and impairs antitumor T-cell responses in vivo. ( A ) Schematic illustration of the in vivo experimental design. C57BL/6 mice were intracranially implanted with GL261-luc glioma cells together with GAMs expressing PD-1 H overexpression (PD-1 H-OE), negative control (PD-1 H-NC), or PD-1 H knockout (PD-1 H-KO). Tumor growth was monitored by bioluminescence imaging at the indicated time points. ( B ) Representative bioluminescence images of tumor-bearing mice from each group at days 7, 14, and 21 after implantation. ( C ) Quantification of tumor bioluminescence radiance over time in mice receiving PD-1 H-OE, PD-1 H-NC, or PD-1 H-KO GAMs (* p < 0.05, *** p < 0.001). ( D ) Kaplan–Meier survival analysis of glioma-bearing mice in the indicated groups. Statistical significance was determined by log-rank test ( p < 0.001). ( E ) Flow cytometric analysis of GAM phenotypes isolated from glioma tissues. Representative histograms show expression of CD206 and MHC-II on GAMs from PD-1 H-OE, PD-1 H-NC, and PD-1 H-KO groups. ( F, G ) Representative flow cytometry histograms showing expression of PD-1 and TIM-3 on tumor-infiltrating CD8 + T ( F ) and CD4 + T ( G ) cells from each group

    Journal: Journal of Translational Medicine

    Article Title: PD-1 H (VISTA) drives immunosuppressive reprogramming of glioma-associated myeloid cells to promote glioma progression

    doi: 10.1186/s12967-026-08497-0

    Figure Lengend Snippet: PD-1 H expression in GAMs promotes glioma progression and impairs antitumor T-cell responses in vivo. ( A ) Schematic illustration of the in vivo experimental design. C57BL/6 mice were intracranially implanted with GL261-luc glioma cells together with GAMs expressing PD-1 H overexpression (PD-1 H-OE), negative control (PD-1 H-NC), or PD-1 H knockout (PD-1 H-KO). Tumor growth was monitored by bioluminescence imaging at the indicated time points. ( B ) Representative bioluminescence images of tumor-bearing mice from each group at days 7, 14, and 21 after implantation. ( C ) Quantification of tumor bioluminescence radiance over time in mice receiving PD-1 H-OE, PD-1 H-NC, or PD-1 H-KO GAMs (* p < 0.05, *** p < 0.001). ( D ) Kaplan–Meier survival analysis of glioma-bearing mice in the indicated groups. Statistical significance was determined by log-rank test ( p < 0.001). ( E ) Flow cytometric analysis of GAM phenotypes isolated from glioma tissues. Representative histograms show expression of CD206 and MHC-II on GAMs from PD-1 H-OE, PD-1 H-NC, and PD-1 H-KO groups. ( F, G ) Representative flow cytometry histograms showing expression of PD-1 and TIM-3 on tumor-infiltrating CD8 + T ( F ) and CD4 + T ( G ) cells from each group

    Article Snippet: Mice were subsequently treated with PBS or anti-PD-1 H monoclonal antibody (13F3, 300 μg/mouse, HY-P990145, MCE) every two days, a dosing regimen based on previous studies [ , ].

    Techniques: Expressing, In Vivo, Over Expression, Negative Control, Knock-Out, Imaging, Isolation, Flow Cytometry

    PD-1 H regulates transcriptional programs and signaling pathways in GAMs. ( A ) Principal component analysis (PCA) of transcriptomic profiles from BV2 cells with PD-1 H-KO (KO), PD-1 H-NC (NC), or PD-1 H-OE (OE), showing distinct clustering among groups. ( B, C ) Volcano plot ( B ) and heatmap ( C ) showing differentially expressed genes (DEGs) in PD-1 H-OE vs. PD-1 H-NC. Upregulated and downregulated genes are highlighted. ( D, E ) Volcano plot ( D ) and heatmap ( E ) displaying DEGs in PD-1 H-KO vs. PD-1 H-NC. ( F, G ) Gene ontology (GO) enrichment analysis of DEGs from PD-1 H-OE vs. PD-1 H-NC ( F ) and PD-1 H-KO vs. PD-1 H-NC ( G ), with dot size indicating gene count and color representing statistical significance. ( H ) Western blot analysis of NF-κB, phosphorylated AKT (p-AKT), total AKT, in BV2 cells with different expression levels of PD-1 H. The PD-1H-blocking antibody 13F3 was applied as indicated (−/+)

    Journal: Journal of Translational Medicine

    Article Title: PD-1 H (VISTA) drives immunosuppressive reprogramming of glioma-associated myeloid cells to promote glioma progression

    doi: 10.1186/s12967-026-08497-0

    Figure Lengend Snippet: PD-1 H regulates transcriptional programs and signaling pathways in GAMs. ( A ) Principal component analysis (PCA) of transcriptomic profiles from BV2 cells with PD-1 H-KO (KO), PD-1 H-NC (NC), or PD-1 H-OE (OE), showing distinct clustering among groups. ( B, C ) Volcano plot ( B ) and heatmap ( C ) showing differentially expressed genes (DEGs) in PD-1 H-OE vs. PD-1 H-NC. Upregulated and downregulated genes are highlighted. ( D, E ) Volcano plot ( D ) and heatmap ( E ) displaying DEGs in PD-1 H-KO vs. PD-1 H-NC. ( F, G ) Gene ontology (GO) enrichment analysis of DEGs from PD-1 H-OE vs. PD-1 H-NC ( F ) and PD-1 H-KO vs. PD-1 H-NC ( G ), with dot size indicating gene count and color representing statistical significance. ( H ) Western blot analysis of NF-κB, phosphorylated AKT (p-AKT), total AKT, in BV2 cells with different expression levels of PD-1 H. The PD-1H-blocking antibody 13F3 was applied as indicated (−/+)

    Article Snippet: Mice were subsequently treated with PBS or anti-PD-1 H monoclonal antibody (13F3, 300 μg/mouse, HY-P990145, MCE) every two days, a dosing regimen based on previous studies [ , ].

    Techniques: Protein-Protein interactions, Western Blot, Expressing, Blocking Assay

    Therapeutic blockade of PD-1 H suppresses glioma progression in PD-1 H-/- host mice. ( A ) Schematic illustration of the in vivo experimental design. C57BL/6PD-1 H-/- mice were intracranially implanted with GL261-luc glioma cells together with PD-1 H-NC GAMs. Mice were treated with PBS or anti-PD-1 H monoclonal antibody at the indicated time points, and tumor growth was monitored by serial bioluminescence imaging. ( B ) Representative bioluminescence images of mice treated with PBS or anti-PD-1 H antibody at days 7, 14, 21, and 28 after implantation. ( C ) Quantification of tumor bioluminescence radiance over time in PBS- and anti-PD-1 H-treated mice, * p < 0.05. ( D ) Kaplan–Meier survival curves of glioma-bearing mice receiving PBS or anti-PD-1 H treatment, log-rank test, * p < 0.05

    Journal: Journal of Translational Medicine

    Article Title: PD-1 H (VISTA) drives immunosuppressive reprogramming of glioma-associated myeloid cells to promote glioma progression

    doi: 10.1186/s12967-026-08497-0

    Figure Lengend Snippet: Therapeutic blockade of PD-1 H suppresses glioma progression in PD-1 H-/- host mice. ( A ) Schematic illustration of the in vivo experimental design. C57BL/6PD-1 H-/- mice were intracranially implanted with GL261-luc glioma cells together with PD-1 H-NC GAMs. Mice were treated with PBS or anti-PD-1 H monoclonal antibody at the indicated time points, and tumor growth was monitored by serial bioluminescence imaging. ( B ) Representative bioluminescence images of mice treated with PBS or anti-PD-1 H antibody at days 7, 14, 21, and 28 after implantation. ( C ) Quantification of tumor bioluminescence radiance over time in PBS- and anti-PD-1 H-treated mice, * p < 0.05. ( D ) Kaplan–Meier survival curves of glioma-bearing mice receiving PBS or anti-PD-1 H treatment, log-rank test, * p < 0.05

    Article Snippet: Mice were subsequently treated with PBS or anti-PD-1 H monoclonal antibody (13F3, 300 μg/mouse, HY-P990145, MCE) every two days, a dosing regimen based on previous studies [ , ].

    Techniques: In Vivo, Imaging

    CLCA4 overexpression enhanced the therapeutic effect of anti-PD-1. (A) In vivo tumorigenicity assay in nude mice was performed to detect the therapeutic effect of CLCA4 overexpression combined with anti-PD-1 antibody. (B) Tumor growth curve was monitored from nude mice with different treatment groups. (C) Weights of tumors from nude mice with different treatments were detected. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (D) Analysis of the survival times of mice in each group ( n = 8 per group), and the experiment was terminated 60 days after tumor inoculation. Unpaired two-tailed t -test (mean ± standard deviation). (E) Immunofluorescence or immunohistochemistry staining was performed to detect the infiltration levels of CD8 + T cells, GZMB, Perforin + cells, Ki67 + , Bmi-1 + , and Oct4 + cells in tumors from different treatment groups. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (F) Hematoxylin-eosin staining of liver metastases in each group. (G) Quantitative analysis of the liver weight in each group. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (H) Quantitative analysis of the liver metastasis area/total liver area in each group. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation).

    Journal: Genes & Diseases

    Article Title: Chloride channel accessory 4 suppresses stem cell-like properties of colorectal cancer and enhances anti-PD-1 immunotherapy

    doi: 10.1016/j.gendis.2025.101859

    Figure Lengend Snippet: CLCA4 overexpression enhanced the therapeutic effect of anti-PD-1. (A) In vivo tumorigenicity assay in nude mice was performed to detect the therapeutic effect of CLCA4 overexpression combined with anti-PD-1 antibody. (B) Tumor growth curve was monitored from nude mice with different treatment groups. (C) Weights of tumors from nude mice with different treatments were detected. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (D) Analysis of the survival times of mice in each group ( n = 8 per group), and the experiment was terminated 60 days after tumor inoculation. Unpaired two-tailed t -test (mean ± standard deviation). (E) Immunofluorescence or immunohistochemistry staining was performed to detect the infiltration levels of CD8 + T cells, GZMB, Perforin + cells, Ki67 + , Bmi-1 + , and Oct4 + cells in tumors from different treatment groups. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (F) Hematoxylin-eosin staining of liver metastases in each group. (G) Quantitative analysis of the liver weight in each group. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation). (H) Quantitative analysis of the liver metastasis area/total liver area in each group. One-way ANOVA with Tukey's multiple comparisons test (mean ± standard deviation).

    Article Snippet: After 7 days, mice were intraperitoneally treated with either an in vivo blocking antibody against mouse PD-1 (Clone: 29F.1A2, BioXcell, Cat# BP0273) or a rat IgG2a isotype control antibody (Clone: 2A3, BioXcell, Cat# BP0089).

    Techniques: Over Expression, In Vivo, Tumorigenicity Assay, Standard Deviation, Two Tailed Test, Immunofluorescence, Immunohistochemistry, Staining