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pd 1 pe  (Sino Biological)


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    Structured Review

    Sino Biological pd 1 pe
    Pd 1 Pe, supplied by Sino Biological, used in various techniques. Bioz Stars score: 93/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/pd+1+pe/pmc13113230-119-9-11?v=Sino+Biological
    Average 93 stars, based on 1 article reviews
    pd 1 pe - by Bioz Stars, 2026-07
    93/100 stars

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    Miltenyi Biotec pd 1 pe
    Low-affinity CD5 CAR-T cells exhibit reduced fratricide and exhaustion phenotypes (A) Viability of CAR-T cells measured on day 3 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (B) Culture supernatants were collected on day 3 after cell seeding. IFN-γ and TNF-α levels secreted by CAR -T cells were measured by cytometric bead array. Data are presented as mean ± SD from multiple donors ( n = 3). (C) CD69 expression level of CAR-T cells on day 10 after seeding. Fluorescence intensity was quantified by flow cytometry. Data are presented as mean ± SD from multiple donors ( n = 3). (D) Total T cell number harvested on day 10 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (E) Expression levels <t>of</t> <t>PD-1</t> and LAG-3 (surface markers), and TOX (intracellular marker) in CAR-T cells on day 10 after seeding. Surface markers were analyzed by flow cytometry, and TOX expression was assessed via intracellular staining following fixation and permeabilization. Data are presented as mean ± SD from multiple donors ( n = 3). All statistical significance was assessed using a linear mixed-effects model with donor as a random effect and Tukey’s test.
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    Low-affinity CD5 CAR-T cells exhibit reduced fratricide and exhaustion phenotypes (A) Viability of CAR-T cells measured on day 3 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (B) Culture supernatants were collected on day 3 after cell seeding. IFN-γ and TNF-α levels secreted by CAR -T cells were measured by cytometric bead array. Data are presented as mean ± SD from multiple donors ( n = 3). (C) CD69 expression level of CAR-T cells on day 10 after seeding. Fluorescence intensity was quantified by flow cytometry. Data are presented as mean ± SD from multiple donors ( n = 3). (D) Total T cell number harvested on day 10 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (E) Expression levels <t>of</t> <t>PD-1</t> and LAG-3 (surface markers), and TOX (intracellular marker) in CAR-T cells on day 10 after seeding. Surface markers were analyzed by flow cytometry, and TOX expression was assessed via intracellular staining following fixation and permeabilization. Data are presented as mean ± SD from multiple donors ( n = 3). All statistical significance was assessed using a linear mixed-effects model with donor as a random effect and Tukey’s test.
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    ( A ) Schematic illustration of the drug response assay. Created with BioRender.com. TME, tumor microenvironment; IF, immunofluorescence. ( B ) Cellular composition of malignant pleural effusions (MPEs) from five NSCLC patients as determined by flow cytometry. ( C ) ATP-based viability of a MPE in different culture media. Each dot represents the mean ± standard deviation (shaded envelope) of n = 5 technical replicates from one representative donor (P179). ( D ) Flow cytometric analysis of MPE viability in HPLM medium. Each dot represents an individual donor (n = 5). P-values were calculated using Wilcoxon matched-pairs signed rank test. ( E ) Log2-fold change (Log2FC) in cellular composition of MPEs after 5 days in HPLM medium compared to baseline, analyzed by flow cytometry. Each dot represents an individual donor. Samples from n = 5 donors were measured. To illustrate fold changes, cell fractions below the 2%-detection limit were excluded from analysis. P-values were determined using a one-sample Wilcoxon test against zero. ( F ). As for (E), but for marker expression of cancer cells (PD-L1, Nectin-4, TROP2) and T <t>cells</t> <t>(PD-1).</t> ( G ) Cytokine secretion and immune checkpoint expression of MPEs (n = 5) after 5 days of ex vivo culture. Color scale represents Z-scores normalized across patients for each cytokine or marker. nMFI, mean fluorescence intensity normalized to fluorescence minus one (FMO) control. ( H ) Relative cell loss of two non-adherent cell lines following the optimized IHC liquid handling protocol. Dots represent outliers among technical replicate wells across n = 3 biological replicates (384-well plates). P-values were calculated using a one-sample Wilcoxon test. ( I ) Pseudocolor plot depicting MFIs of CD45 and EpCAM signal for all segmented masks of a spike-in of MCF-7 cells in lymph node cells. Cell populations were classified based on manual gating. ( J ) Number of cancer (left) and immune cells (right) detected using our image analysis pipeline. Box plots represent data of n = 10 technical replicate wells. ( K ) Cancer cell fractions in malignant pleural effusions (MPEs) from NSCLC patients (n = 5), determined by EpCAM-based immunocytochemistry. The dashed line indicates the detection limit (10 cells per well) of the drug response assay.
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    ( A ) Schematic illustration of the drug response assay. Created with BioRender.com. TME, tumor microenvironment; IF, immunofluorescence. ( B ) Cellular composition of malignant pleural effusions (MPEs) from five NSCLC patients as determined by flow cytometry. ( C ) ATP-based viability of a MPE in different culture media. Each dot represents the mean ± standard deviation (shaded envelope) of n = 5 technical replicates from one representative donor (P179). ( D ) Flow cytometric analysis of MPE viability in HPLM medium. Each dot represents an individual donor (n = 5). P-values were calculated using Wilcoxon matched-pairs signed rank test. ( E ) Log2-fold change (Log2FC) in cellular composition of MPEs after 5 days in HPLM medium compared to baseline, analyzed by flow cytometry. Each dot represents an individual donor. Samples from n = 5 donors were measured. To illustrate fold changes, cell fractions below the 2%-detection limit were excluded from analysis. P-values were determined using a one-sample Wilcoxon test against zero. ( F ). As for (E), but for marker expression of cancer cells (PD-L1, Nectin-4, TROP2) and T <t>cells</t> <t>(PD-1).</t> ( G ) Cytokine secretion and immune checkpoint expression of MPEs (n = 5) after 5 days of ex vivo culture. Color scale represents Z-scores normalized across patients for each cytokine or marker. nMFI, mean fluorescence intensity normalized to fluorescence minus one (FMO) control. ( H ) Relative cell loss of two non-adherent cell lines following the optimized IHC liquid handling protocol. Dots represent outliers among technical replicate wells across n = 3 biological replicates (384-well plates). P-values were calculated using a one-sample Wilcoxon test. ( I ) Pseudocolor plot depicting MFIs of CD45 and EpCAM signal for all segmented masks of a spike-in of MCF-7 cells in lymph node cells. Cell populations were classified based on manual gating. ( J ) Number of cancer (left) and immune cells (right) detected using our image analysis pipeline. Box plots represent data of n = 10 technical replicate wells. ( K ) Cancer cell fractions in malignant pleural effusions (MPEs) from NSCLC patients (n = 5), determined by EpCAM-based immunocytochemistry. The dashed line indicates the detection limit (10 cells per well) of the drug response assay.
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    ( A ) Schematic illustration of the drug response assay. Created with BioRender.com. TME, tumor microenvironment; IF, immunofluorescence. ( B ) Cellular composition of malignant pleural effusions (MPEs) from five NSCLC patients as determined by flow cytometry. ( C ) ATP-based viability of a MPE in different culture media. Each dot represents the mean ± standard deviation (shaded envelope) of n = 5 technical replicates from one representative donor (P179). ( D ) Flow cytometric analysis of MPE viability in HPLM medium. Each dot represents an individual donor (n = 5). P-values were calculated using Wilcoxon matched-pairs signed rank test. ( E ) Log2-fold change (Log2FC) in cellular composition of MPEs after 5 days in HPLM medium compared to baseline, analyzed by flow cytometry. Each dot represents an individual donor. Samples from n = 5 donors were measured. To illustrate fold changes, cell fractions below the 2%-detection limit were excluded from analysis. P-values were determined using a one-sample Wilcoxon test against zero. ( F ). As for (E), but for marker expression of cancer cells (PD-L1, Nectin-4, TROP2) and T <t>cells</t> <t>(PD-1).</t> ( G ) Cytokine secretion and immune checkpoint expression of MPEs (n = 5) after 5 days of ex vivo culture. Color scale represents Z-scores normalized across patients for each cytokine or marker. nMFI, mean fluorescence intensity normalized to fluorescence minus one (FMO) control. ( H ) Relative cell loss of two non-adherent cell lines following the optimized IHC liquid handling protocol. Dots represent outliers among technical replicate wells across n = 3 biological replicates (384-well plates). P-values were calculated using a one-sample Wilcoxon test. ( I ) Pseudocolor plot depicting MFIs of CD45 and EpCAM signal for all segmented masks of a spike-in of MCF-7 cells in lymph node cells. Cell populations were classified based on manual gating. ( J ) Number of cancer (left) and immune cells (right) detected using our image analysis pipeline. Box plots represent data of n = 10 technical replicate wells. ( K ) Cancer cell fractions in malignant pleural effusions (MPEs) from NSCLC patients (n = 5), determined by EpCAM-based immunocytochemistry. The dashed line indicates the detection limit (10 cells per well) of the drug response assay.
    Anti Human Pd 1, supplied by Miltenyi Biotec, 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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    ( A ) Schematic illustration of the drug response assay. Created with BioRender.com. TME, tumor microenvironment; IF, immunofluorescence. ( B ) Cellular composition of malignant pleural effusions (MPEs) from five NSCLC patients as determined by flow cytometry. ( C ) ATP-based viability of a MPE in different culture media. Each dot represents the mean ± standard deviation (shaded envelope) of n = 5 technical replicates from one representative donor (P179). ( D ) Flow cytometric analysis of MPE viability in HPLM medium. Each dot represents an individual donor (n = 5). P-values were calculated using Wilcoxon matched-pairs signed rank test. ( E ) Log2-fold change (Log2FC) in cellular composition of MPEs after 5 days in HPLM medium compared to baseline, analyzed by flow cytometry. Each dot represents an individual donor. Samples from n = 5 donors were measured. To illustrate fold changes, cell fractions below the 2%-detection limit were excluded from analysis. P-values were determined using a one-sample Wilcoxon test against zero. ( F ). As for (E), but for marker expression of cancer cells (PD-L1, Nectin-4, TROP2) and T <t>cells</t> <t>(PD-1).</t> ( G ) Cytokine secretion and immune checkpoint expression of MPEs (n = 5) after 5 days of ex vivo culture. Color scale represents Z-scores normalized across patients for each cytokine or marker. nMFI, mean fluorescence intensity normalized to fluorescence minus one (FMO) control. ( H ) Relative cell loss of two non-adherent cell lines following the optimized IHC liquid handling protocol. Dots represent outliers among technical replicate wells across n = 3 biological replicates (384-well plates). P-values were calculated using a one-sample Wilcoxon test. ( I ) Pseudocolor plot depicting MFIs of CD45 and EpCAM signal for all segmented masks of a spike-in of MCF-7 cells in lymph node cells. Cell populations were classified based on manual gating. ( J ) Number of cancer (left) and immune cells (right) detected using our image analysis pipeline. Box plots represent data of n = 10 technical replicate wells. ( K ) Cancer cell fractions in malignant pleural effusions (MPEs) from NSCLC patients (n = 5), determined by EpCAM-based immunocytochemistry. The dashed line indicates the detection limit (10 cells per well) of the drug response assay.
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    ( A ) Schematic illustration of the drug response assay. Created with BioRender.com. TME, tumor microenvironment; IF, immunofluorescence. ( B ) Cellular composition of malignant pleural effusions (MPEs) from five NSCLC patients as determined by flow cytometry. ( C ) ATP-based viability of a MPE in different culture media. Each dot represents the mean ± standard deviation (shaded envelope) of n = 5 technical replicates from one representative donor (P179). ( D ) Flow cytometric analysis of MPE viability in HPLM medium. Each dot represents an individual donor (n = 5). P-values were calculated using Wilcoxon matched-pairs signed rank test. ( E ) Log2-fold change (Log2FC) in cellular composition of MPEs after 5 days in HPLM medium compared to baseline, analyzed by flow cytometry. Each dot represents an individual donor. Samples from n = 5 donors were measured. To illustrate fold changes, cell fractions below the 2%-detection limit were excluded from analysis. P-values were determined using a one-sample Wilcoxon test against zero. ( F ). As for (E), but for marker expression of cancer cells (PD-L1, Nectin-4, TROP2) and T <t>cells</t> <t>(PD-1).</t> ( G ) Cytokine secretion and immune checkpoint expression of MPEs (n = 5) after 5 days of ex vivo culture. Color scale represents Z-scores normalized across patients for each cytokine or marker. nMFI, mean fluorescence intensity normalized to fluorescence minus one (FMO) control. ( H ) Relative cell loss of two non-adherent cell lines following the optimized IHC liquid handling protocol. Dots represent outliers among technical replicate wells across n = 3 biological replicates (384-well plates). P-values were calculated using a one-sample Wilcoxon test. ( I ) Pseudocolor plot depicting MFIs of CD45 and EpCAM signal for all segmented masks of a spike-in of MCF-7 cells in lymph node cells. Cell populations were classified based on manual gating. ( J ) Number of cancer (left) and immune cells (right) detected using our image analysis pipeline. Box plots represent data of n = 10 technical replicate wells. ( K ) Cancer cell fractions in malignant pleural effusions (MPEs) from NSCLC patients (n = 5), determined by EpCAM-based immunocytochemistry. The dashed line indicates the detection limit (10 cells per well) of the drug response assay.
    Pd 1 Pe Cy7 Clone Ebio J105 Antibody, supplied by Thermo Fisher, 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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    Image Search Results


    Low-affinity CD5 CAR-T cells exhibit reduced fratricide and exhaustion phenotypes (A) Viability of CAR-T cells measured on day 3 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (B) Culture supernatants were collected on day 3 after cell seeding. IFN-γ and TNF-α levels secreted by CAR -T cells were measured by cytometric bead array. Data are presented as mean ± SD from multiple donors ( n = 3). (C) CD69 expression level of CAR-T cells on day 10 after seeding. Fluorescence intensity was quantified by flow cytometry. Data are presented as mean ± SD from multiple donors ( n = 3). (D) Total T cell number harvested on day 10 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (E) Expression levels of PD-1 and LAG-3 (surface markers), and TOX (intracellular marker) in CAR-T cells on day 10 after seeding. Surface markers were analyzed by flow cytometry, and TOX expression was assessed via intracellular staining following fixation and permeabilization. Data are presented as mean ± SD from multiple donors ( n = 3). All statistical significance was assessed using a linear mixed-effects model with donor as a random effect and Tukey’s test.

    Journal: Molecular Therapy Oncology

    Article Title: Antigen-binding affinity is a key determinant of the durable antitumor activity of CD5 CAR-T cells

    doi: 10.1016/j.omton.2026.201158

    Figure Lengend Snippet: Low-affinity CD5 CAR-T cells exhibit reduced fratricide and exhaustion phenotypes (A) Viability of CAR-T cells measured on day 3 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (B) Culture supernatants were collected on day 3 after cell seeding. IFN-γ and TNF-α levels secreted by CAR -T cells were measured by cytometric bead array. Data are presented as mean ± SD from multiple donors ( n = 3). (C) CD69 expression level of CAR-T cells on day 10 after seeding. Fluorescence intensity was quantified by flow cytometry. Data are presented as mean ± SD from multiple donors ( n = 3). (D) Total T cell number harvested on day 10 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (E) Expression levels of PD-1 and LAG-3 (surface markers), and TOX (intracellular marker) in CAR-T cells on day 10 after seeding. Surface markers were analyzed by flow cytometry, and TOX expression was assessed via intracellular staining following fixation and permeabilization. Data are presented as mean ± SD from multiple donors ( n = 3). All statistical significance was assessed using a linear mixed-effects model with donor as a random effect and Tukey’s test.

    Article Snippet: The following antibodies were used: BioLegend, CD5-PE (clone UCHT2), CD69-PE (clone FN50), LAG3-FITC (Clone 7H2C65), mIgG2a-AF647 (clone RMG2a-62), and streptavidin-AF647; BD Biosciences, CD4-V500 (clone RPA-T4), CD8-V450 (clone RPA-T8), αβ TCR-PE (clone IP26), and γδ TCR-BV421 (clone 11F2); Thermo Fisher Scientific, PD-1-PE (clone J105) and CD27-PE (clone O323); Miltenyi Biotec, TOX-APC (clone REA473), Vδ1-PE-Cy7 (clone REA173), and Vδ2-V500 (clone 123R3); Cell Signaling Technology, Myc-AF647 or PE (clone 9B11).

    Techniques: Expressing, Fluorescence, Flow Cytometry, Marker, Staining

    Affinity-tuned A2 variants provide functional evidence that antigen-binding affinity plays a key role in regulating fratricide and T cell exhaustion (A) Binding level of recombinant anti-CD5 scFvs to CD5-positive and CD5-negative cell lines, as measured by flow cytometry. Data are presented as mean ± SD from technical replicates ( n = 3). (B) Affinity properties of anti-CD5 scFvs as determined by biolayer interferometry using Octet system. A2 scFv was used as controls. (For definitions of K D , K a , K dis , and curve fit parameters, refer to legend.) (C) Viability of CAR-T cells measured on day 3 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (D) Culture supernatants were collected on day 3 to assess IFN-γ and TNF-α secretion, measured using cytometric bead array. Data are presented as mean ± SD from technical replicates ( n = 3). (E) Total T cell number harvested on day 10 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (F) CD69 expression levels in CAR-T cells on day 10 after cell seeding, measured by surface staining and flow cytometry. Data are presented as mean ± SD from multiple donors ( n = 3). (G) Expression levels of PD-1 and LAG-3 (surface markers) and TOX (intracellular) in CAR-T cells on day 10 after seeding. Surface markers were analyzed by flow cytometry, and TOX expression was assessed via intracellular staining. Data are presented as mean ± SD from multiple donors ( n = 3). (H) 3 × 10 5 Myc + CAR-T cells were co-cultured with 1 × 10 5 Jurkat cells every 3–4 days for repeated antigen stimulation. Expansion of Myc + CAR-T cells was measured weekly by flow cytometry. Data are presented as mean ± SD from technical replicates ( n = 3). Statistical analyses were performed using one-way ANOVA with Tukey’s multiple comparisons test for (A, D, and H) and a linear mixed-effects model with donor as a random effect followed by Tukey’s test for (C–G).

    Journal: Molecular Therapy Oncology

    Article Title: Antigen-binding affinity is a key determinant of the durable antitumor activity of CD5 CAR-T cells

    doi: 10.1016/j.omton.2026.201158

    Figure Lengend Snippet: Affinity-tuned A2 variants provide functional evidence that antigen-binding affinity plays a key role in regulating fratricide and T cell exhaustion (A) Binding level of recombinant anti-CD5 scFvs to CD5-positive and CD5-negative cell lines, as measured by flow cytometry. Data are presented as mean ± SD from technical replicates ( n = 3). (B) Affinity properties of anti-CD5 scFvs as determined by biolayer interferometry using Octet system. A2 scFv was used as controls. (For definitions of K D , K a , K dis , and curve fit parameters, refer to legend.) (C) Viability of CAR-T cells measured on day 3 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (D) Culture supernatants were collected on day 3 to assess IFN-γ and TNF-α secretion, measured using cytometric bead array. Data are presented as mean ± SD from technical replicates ( n = 3). (E) Total T cell number harvested on day 10 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (F) CD69 expression levels in CAR-T cells on day 10 after cell seeding, measured by surface staining and flow cytometry. Data are presented as mean ± SD from multiple donors ( n = 3). (G) Expression levels of PD-1 and LAG-3 (surface markers) and TOX (intracellular) in CAR-T cells on day 10 after seeding. Surface markers were analyzed by flow cytometry, and TOX expression was assessed via intracellular staining. Data are presented as mean ± SD from multiple donors ( n = 3). (H) 3 × 10 5 Myc + CAR-T cells were co-cultured with 1 × 10 5 Jurkat cells every 3–4 days for repeated antigen stimulation. Expansion of Myc + CAR-T cells was measured weekly by flow cytometry. Data are presented as mean ± SD from technical replicates ( n = 3). Statistical analyses were performed using one-way ANOVA with Tukey’s multiple comparisons test for (A, D, and H) and a linear mixed-effects model with donor as a random effect followed by Tukey’s test for (C–G).

    Article Snippet: The following antibodies were used: BioLegend, CD5-PE (clone UCHT2), CD69-PE (clone FN50), LAG3-FITC (Clone 7H2C65), mIgG2a-AF647 (clone RMG2a-62), and streptavidin-AF647; BD Biosciences, CD4-V500 (clone RPA-T4), CD8-V450 (clone RPA-T8), αβ TCR-PE (clone IP26), and γδ TCR-BV421 (clone 11F2); Thermo Fisher Scientific, PD-1-PE (clone J105) and CD27-PE (clone O323); Miltenyi Biotec, TOX-APC (clone REA473), Vδ1-PE-Cy7 (clone REA173), and Vδ2-V500 (clone 123R3); Cell Signaling Technology, Myc-AF647 or PE (clone 9B11).

    Techniques: Functional Assay, Binding Assay, Recombinant, Flow Cytometry, Expressing, Staining, Cell Culture

    High-affinity C7 variant-based CAR5 exhibited increased levels of both fratricide and T cell exhaustion compared to the C7 wild-type CAR5 (A) Binding level recombinant anti-CD5 scFvs to CD5-positive and CD5-negative cell lines, as measured by flow cytometry. Data are presented as pooled mean ± SD from technical replicates ( n = 3). (B) Affinity properties of anti-CD5 scFvs as determined by biolayer interferometry using Octet system. C7 scFv was used as controls. (For definitions of K D , K a , K dis , and curve fit parameters, refer to legend.) (C) Viability of CAR-T cells measured on day 3 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (D) Culture supernatants were collected on day 3 to assess IFN-γ and TNF-α secretion, measured using cytometric bead array. Data are presented as mean ± SD from technical replicates ( n = 3). (E) Total T cell number harvested on day 10 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (F) CD69 expression levels in CAR-T cells on day 10 after cell seeding, measured by surface staining and flow cytometry. Data are presented as mean ± SD from multiple donors ( n = 3). (G) Expression levels of PD-1 and LAG-3 (surface markers) and TOX (intracellular) in CAR-T cells on day 10 after seeding. Surface markers were analyzed by flow cytometry, and TOX expression was assessed via intracellular staining. Data are presented as mean ± SD from multiple donors ( n = 3). (H) 3 × 10 5 Myc + CAR-T cells were co-cultured with 1 × 10 5 Jurkat cells every 3–4 days for repeated antigen stimulation. Expansion of Myc + CAR-T cells was measured weekly by flow cytometry. Data are presented as mean ± SD from technical replicates ( n = 3). Statistical analyses were performed using one-way ANOVA with Tukey’s multiple comparisons test for (A, D, and H) and a linear mixed-effects model with donor as a random effect followed by Tukey’s test for (C–G).

    Journal: Molecular Therapy Oncology

    Article Title: Antigen-binding affinity is a key determinant of the durable antitumor activity of CD5 CAR-T cells

    doi: 10.1016/j.omton.2026.201158

    Figure Lengend Snippet: High-affinity C7 variant-based CAR5 exhibited increased levels of both fratricide and T cell exhaustion compared to the C7 wild-type CAR5 (A) Binding level recombinant anti-CD5 scFvs to CD5-positive and CD5-negative cell lines, as measured by flow cytometry. Data are presented as pooled mean ± SD from technical replicates ( n = 3). (B) Affinity properties of anti-CD5 scFvs as determined by biolayer interferometry using Octet system. C7 scFv was used as controls. (For definitions of K D , K a , K dis , and curve fit parameters, refer to legend.) (C) Viability of CAR-T cells measured on day 3 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (D) Culture supernatants were collected on day 3 to assess IFN-γ and TNF-α secretion, measured using cytometric bead array. Data are presented as mean ± SD from technical replicates ( n = 3). (E) Total T cell number harvested on day 10 after cell seeding. Data are presented as mean ± SD from multiple donors ( n = 3). (F) CD69 expression levels in CAR-T cells on day 10 after cell seeding, measured by surface staining and flow cytometry. Data are presented as mean ± SD from multiple donors ( n = 3). (G) Expression levels of PD-1 and LAG-3 (surface markers) and TOX (intracellular) in CAR-T cells on day 10 after seeding. Surface markers were analyzed by flow cytometry, and TOX expression was assessed via intracellular staining. Data are presented as mean ± SD from multiple donors ( n = 3). (H) 3 × 10 5 Myc + CAR-T cells were co-cultured with 1 × 10 5 Jurkat cells every 3–4 days for repeated antigen stimulation. Expansion of Myc + CAR-T cells was measured weekly by flow cytometry. Data are presented as mean ± SD from technical replicates ( n = 3). Statistical analyses were performed using one-way ANOVA with Tukey’s multiple comparisons test for (A, D, and H) and a linear mixed-effects model with donor as a random effect followed by Tukey’s test for (C–G).

    Article Snippet: The following antibodies were used: BioLegend, CD5-PE (clone UCHT2), CD69-PE (clone FN50), LAG3-FITC (Clone 7H2C65), mIgG2a-AF647 (clone RMG2a-62), and streptavidin-AF647; BD Biosciences, CD4-V500 (clone RPA-T4), CD8-V450 (clone RPA-T8), αβ TCR-PE (clone IP26), and γδ TCR-BV421 (clone 11F2); Thermo Fisher Scientific, PD-1-PE (clone J105) and CD27-PE (clone O323); Miltenyi Biotec, TOX-APC (clone REA473), Vδ1-PE-Cy7 (clone REA173), and Vδ2-V500 (clone 123R3); Cell Signaling Technology, Myc-AF647 or PE (clone 9B11).

    Techniques: Variant Assay, Binding Assay, Recombinant, Flow Cytometry, Expressing, Staining, Cell Culture

    ( A ) Schematic illustration of the drug response assay. Created with BioRender.com. TME, tumor microenvironment; IF, immunofluorescence. ( B ) Cellular composition of malignant pleural effusions (MPEs) from five NSCLC patients as determined by flow cytometry. ( C ) ATP-based viability of a MPE in different culture media. Each dot represents the mean ± standard deviation (shaded envelope) of n = 5 technical replicates from one representative donor (P179). ( D ) Flow cytometric analysis of MPE viability in HPLM medium. Each dot represents an individual donor (n = 5). P-values were calculated using Wilcoxon matched-pairs signed rank test. ( E ) Log2-fold change (Log2FC) in cellular composition of MPEs after 5 days in HPLM medium compared to baseline, analyzed by flow cytometry. Each dot represents an individual donor. Samples from n = 5 donors were measured. To illustrate fold changes, cell fractions below the 2%-detection limit were excluded from analysis. P-values were determined using a one-sample Wilcoxon test against zero. ( F ). As for (E), but for marker expression of cancer cells (PD-L1, Nectin-4, TROP2) and T cells (PD-1). ( G ) Cytokine secretion and immune checkpoint expression of MPEs (n = 5) after 5 days of ex vivo culture. Color scale represents Z-scores normalized across patients for each cytokine or marker. nMFI, mean fluorescence intensity normalized to fluorescence minus one (FMO) control. ( H ) Relative cell loss of two non-adherent cell lines following the optimized IHC liquid handling protocol. Dots represent outliers among technical replicate wells across n = 3 biological replicates (384-well plates). P-values were calculated using a one-sample Wilcoxon test. ( I ) Pseudocolor plot depicting MFIs of CD45 and EpCAM signal for all segmented masks of a spike-in of MCF-7 cells in lymph node cells. Cell populations were classified based on manual gating. ( J ) Number of cancer (left) and immune cells (right) detected using our image analysis pipeline. Box plots represent data of n = 10 technical replicate wells. ( K ) Cancer cell fractions in malignant pleural effusions (MPEs) from NSCLC patients (n = 5), determined by EpCAM-based immunocytochemistry. The dashed line indicates the detection limit (10 cells per well) of the drug response assay.

    Journal: bioRxiv

    Article Title: Ex vivo drug testing in metastatic biopsies reveals patient-specific vulnerabilities to cancer targeting and immune activating drugs

    doi: 10.64898/2026.02.06.704037

    Figure Lengend Snippet: ( A ) Schematic illustration of the drug response assay. Created with BioRender.com. TME, tumor microenvironment; IF, immunofluorescence. ( B ) Cellular composition of malignant pleural effusions (MPEs) from five NSCLC patients as determined by flow cytometry. ( C ) ATP-based viability of a MPE in different culture media. Each dot represents the mean ± standard deviation (shaded envelope) of n = 5 technical replicates from one representative donor (P179). ( D ) Flow cytometric analysis of MPE viability in HPLM medium. Each dot represents an individual donor (n = 5). P-values were calculated using Wilcoxon matched-pairs signed rank test. ( E ) Log2-fold change (Log2FC) in cellular composition of MPEs after 5 days in HPLM medium compared to baseline, analyzed by flow cytometry. Each dot represents an individual donor. Samples from n = 5 donors were measured. To illustrate fold changes, cell fractions below the 2%-detection limit were excluded from analysis. P-values were determined using a one-sample Wilcoxon test against zero. ( F ). As for (E), but for marker expression of cancer cells (PD-L1, Nectin-4, TROP2) and T cells (PD-1). ( G ) Cytokine secretion and immune checkpoint expression of MPEs (n = 5) after 5 days of ex vivo culture. Color scale represents Z-scores normalized across patients for each cytokine or marker. nMFI, mean fluorescence intensity normalized to fluorescence minus one (FMO) control. ( H ) Relative cell loss of two non-adherent cell lines following the optimized IHC liquid handling protocol. Dots represent outliers among technical replicate wells across n = 3 biological replicates (384-well plates). P-values were calculated using a one-sample Wilcoxon test. ( I ) Pseudocolor plot depicting MFIs of CD45 and EpCAM signal for all segmented masks of a spike-in of MCF-7 cells in lymph node cells. Cell populations were classified based on manual gating. ( J ) Number of cancer (left) and immune cells (right) detected using our image analysis pipeline. Box plots represent data of n = 10 technical replicate wells. ( K ) Cancer cell fractions in malignant pleural effusions (MPEs) from NSCLC patients (n = 5), determined by EpCAM-based immunocytochemistry. The dashed line indicates the detection limit (10 cells per well) of the drug response assay.

    Article Snippet: Cells were resuspended in 100 μL of FACS buffer (1% (w/v) BSA, 2 mM EDTA in DPBS) per 1 x 10 6 cells and stained using the following antibodies: Alexa Fluor® 488 anti-human CD3, clone HIT3a (BioLegend, #300319, RRID:AB_493690), PerCP/Cyanine5.5 anti-human CD14, clone HCD14 (BioLegend, # 325621, RRID:AB_893252), PE anti-human CD279 (PD-1), clone EH12.2H7 (BioLegend, # 329905, RRID:AB_940481), PE/Cyanine7anti-human CD11c, clone Bu15 (BioLegend, # 337215, RRID:AB_2129791), APC-Vio770 anti-human CD19, clone LT19 (1:50; Miltenyi Biotec, # 130-098-073, RRID:AB_2661296), Brilliant VioletTM 421 anti-human CD45, clone 2D1 (BioLegend, # 368522, RRID:AB_2687375), Brilliant VioletTM 605 anti-human HLA-DR, clone L243 (BioLegend, # 307639, RRID:AB_11219187), Brilliant VioletTM 785 anti-human CD56 (NCAM), clone 167 (BioLegend, # 362549, RRID:AB_2566058), Alexa Fluor® 488 anti-human CD326 (EpCAM), clone Co17-1A (BioLegend, # 369808, RRID:AB_2650905), PE anti-human TROP2, REAfinityTM (1:50; Miltenyi Biotec, # 130-115-097, RRID:AB_2726914), APC anti-human Nectin-4, REAfinityTM (1:50; Miltenyi Biotec, # 130-116-103, RRID:AB_2727350), Brilliant VioletTM 421 anti-human CD274 (B7-H1, PD-L1), clone 29E.2A3 (BioLegend, # 329714, RRID:AB_2563852), Brilliant VioletTM 785 anti-human CD45, clone HI30 (BioLegend, # 304048, RRID:AB_2563129), Zombie AquaTM (1:1,000; BioLegend, # 423102), Zombie NIRTM (1:500; BioLegend, # 423106).

    Techniques: Immunofluorescence, Flow Cytometry, Standard Deviation, Marker, Expressing, Ex Vivo, Fluorescence, Control, Immunocytochemistry