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5 fu  (MedChemExpress)


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    Structured Review

    MedChemExpress 5 fu
    5 Fu, supplied by MedChemExpress, used in various techniques. Bioz Stars score: 99/100, based on 387 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/5+fluorouracil/pm42020360-190-6-16?v=MedChemExpress
    Average 99 stars, based on 387 article reviews
    5 fu - by Bioz Stars, 2026-08
    99/100 stars

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    scRNA-seq reveals differential immune infiltration in αOX40-treated tumors based on response (A) Schematic of the bilateral <t>MC38</t> tumor model assessing αOX40 response. Humanized OX40 mice received three doses of αOX40, followed by resection of the left tumor for scRNA-seq and flow cytometry analysis. Contralateral tumor dynamics and survival were monitored longitudinally. (B) UMAP visualization of scRNA-seq data from immune cells in MC38-bearing mice following αOX40 treatment. Cells are color-coded by annotated cell type. (C) Heatmap depicting nine transcriptionally distinct immune cell subpopulations. (D) Pie chart shows the relative abundance of nine immune cell clusters in αOX40 responders and nonresponders. (E) Flow cytometry analysis of tumor-infiltrating immune cell frequencies in αOX40-treated MC38-bearing mice. Frequencies of CD4 + T cells, CD8 + T cells, and macrophages were quantified after the third αOX40 dose (control, n = 5 mice; mice with a robust therapeutic response named as responder, n = 4 mice; mice with minimal to no response named as nonresponder, n = 4 mice). Data represent mean ± SD from one of two independent experiments (E). Statistical significance was determined using one-way ANOVA with multiple comparisons. ∗∗ p < 0.01.
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    scRNA-seq reveals differential immune infiltration in αOX40-treated tumors based on response (A) Schematic of the bilateral <t>MC38</t> tumor model assessing αOX40 response. Humanized OX40 mice received three doses of αOX40, followed by resection of the left tumor for scRNA-seq and flow cytometry analysis. Contralateral tumor dynamics and survival were monitored longitudinally. (B) UMAP visualization of scRNA-seq data from immune cells in MC38-bearing mice following αOX40 treatment. Cells are color-coded by annotated cell type. (C) Heatmap depicting nine transcriptionally distinct immune cell subpopulations. (D) Pie chart shows the relative abundance of nine immune cell clusters in αOX40 responders and nonresponders. (E) Flow cytometry analysis of tumor-infiltrating immune cell frequencies in αOX40-treated MC38-bearing mice. Frequencies of CD4 + T cells, CD8 + T cells, and macrophages were quantified after the third αOX40 dose (control, n = 5 mice; mice with a robust therapeutic response named as responder, n = 4 mice; mice with minimal to no response named as nonresponder, n = 4 mice). Data represent mean ± SD from one of two independent experiments (E). Statistical significance was determined using one-way ANOVA with multiple comparisons. ∗∗ p < 0.01.
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    Image Search Results


    Agrimol B sensitizes PDAC cells to first-line chemotherapy drugs. (A) Schematic overview of PDAC PDO establishment and drug assessment. (B, C) Brightfield images of organoids treated with the indicated concentrations of Agrimol B. Scale bars, 10 μm. (D) Chemical structures of nab-paclitaxel (Paclitaxel), irinotecan, 5-fluorouracil, oxaliplatin, and gemcitabine. (E–H) Brightfield images of organoids treated with or without Agrimol B in the presence or absence of nab-paclitaxel, irinotecan, 5-fluorouracil, oxaliplatin, or gemcitabine. Scale bars, 10 μm.

    Journal: Precision Clinical Medicine

    Article Title: Agrimol B inhibits pancreatic ductal adenocarcinoma by induction of lethal mitophagy through decreasing mitochondrial transcription termination factor 3

    doi: 10.1093/pcmedi/pbag009

    Figure Lengend Snippet: Agrimol B sensitizes PDAC cells to first-line chemotherapy drugs. (A) Schematic overview of PDAC PDO establishment and drug assessment. (B, C) Brightfield images of organoids treated with the indicated concentrations of Agrimol B. Scale bars, 10 μm. (D) Chemical structures of nab-paclitaxel (Paclitaxel), irinotecan, 5-fluorouracil, oxaliplatin, and gemcitabine. (E–H) Brightfield images of organoids treated with or without Agrimol B in the presence or absence of nab-paclitaxel, irinotecan, 5-fluorouracil, oxaliplatin, or gemcitabine. Scale bars, 10 μm.

    Article Snippet: Hydroxychloroquine (HCQ) (HY-W031727), wortmannin (WORT) (HY-10197), Mdivi-1 (HY-15886), N-acetylcysteine (HY-B0215), Nab-Paclitaxel (HY-P99974), irinotecan (HY-16562), 5-fluorouracil (5-FU) (HY-107856), and oxaliplatin (HY-17371) were purchased from MedChem Express.

    Techniques:

    (a) Synthesis of β-CD@5-Fu; (b) preparation process of β-CD@5-Fu/CMCS/CMCNa/SA hydrogel beads; (c) in vitro release mechanism of β-CD@5-Fu/CMCS/CMCNa/SA hydrogel beads.

    Journal: RSC Advances

    Article Title: pH-responsive sodium alginate/CMCS/CMCNa composite hydrogel beads for sustained delivery of 5-fluorouracil-β-cyclodextrin inclusion complexes

    doi: 10.1039/d6ra00194g

    Figure Lengend Snippet: (a) Synthesis of β-CD@5-Fu; (b) preparation process of β-CD@5-Fu/CMCS/CMCNa/SA hydrogel beads; (c) in vitro release mechanism of β-CD@5-Fu/CMCS/CMCNa/SA hydrogel beads.

    Article Snippet: β-Cyclodextrin (β-CD) and sodium alginate (SA) were purchased from Shanghai Aladdin Biochemical Technology, Carboxymethyl chitosan (CMCS), carboxymethyl cellulose sodium (CMCNa), calcium chloride (CaCl 2 ), and sodium chloride (NaCl) were obtained from Sinopharm Chemical Reagent, 5-fluorouracil (5-Fu) was acquired from Shanghai Macklin Biochemical Technology.

    Techniques: In Vitro

    Characterization of β-CD@5-Fu inclusion complex and drug-loaded hydrogels: (a) UV-Vis spectra of 5-Fu, β-CD, and β-CD@5-Fu; (b) FTIR spectra of 5-Fu, β-CD, and β-CD@5-Fu; (c) XRD patterns of 5-Fu, β-CD, and β-CD@5-Fu; (d) UV-Vis calibration curves of 5-Fu at different concentrations; (e) linear regression of 5-Fu concentration versus absorbance; (f) encapsulation efficiency (EE) and drug loading (DL) capacity of β-CD@5-Fu; (g) absorbance comparison of β-CD@5-Fu in water versus PBS; (h and i) EE and DL of hydrogel beads with different drug-carrier ratios (w/w).

    Journal: RSC Advances

    Article Title: pH-responsive sodium alginate/CMCS/CMCNa composite hydrogel beads for sustained delivery of 5-fluorouracil-β-cyclodextrin inclusion complexes

    doi: 10.1039/d6ra00194g

    Figure Lengend Snippet: Characterization of β-CD@5-Fu inclusion complex and drug-loaded hydrogels: (a) UV-Vis spectra of 5-Fu, β-CD, and β-CD@5-Fu; (b) FTIR spectra of 5-Fu, β-CD, and β-CD@5-Fu; (c) XRD patterns of 5-Fu, β-CD, and β-CD@5-Fu; (d) UV-Vis calibration curves of 5-Fu at different concentrations; (e) linear regression of 5-Fu concentration versus absorbance; (f) encapsulation efficiency (EE) and drug loading (DL) capacity of β-CD@5-Fu; (g) absorbance comparison of β-CD@5-Fu in water versus PBS; (h and i) EE and DL of hydrogel beads with different drug-carrier ratios (w/w).

    Article Snippet: β-Cyclodextrin (β-CD) and sodium alginate (SA) were purchased from Shanghai Aladdin Biochemical Technology, Carboxymethyl chitosan (CMCS), carboxymethyl cellulose sodium (CMCNa), calcium chloride (CaCl 2 ), and sodium chloride (NaCl) were obtained from Sinopharm Chemical Reagent, 5-fluorouracil (5-Fu) was acquired from Shanghai Macklin Biochemical Technology.

    Techniques: Concentration Assay, Encapsulation, Comparison

    Simultaneous thermogravimetry-differential scanning calorimetry (TG-DSC) curves of 5-Fu (a), β-CD (b), physical mixture of 5-Fu and β-CD (c), β-CD@5-Fu inclusion complex (d), CMCS/CMCNa/SA hydrogel beads (e), and β-CD@5-Fu/CMCS/CMCNa/SA (f).

    Journal: RSC Advances

    Article Title: pH-responsive sodium alginate/CMCS/CMCNa composite hydrogel beads for sustained delivery of 5-fluorouracil-β-cyclodextrin inclusion complexes

    doi: 10.1039/d6ra00194g

    Figure Lengend Snippet: Simultaneous thermogravimetry-differential scanning calorimetry (TG-DSC) curves of 5-Fu (a), β-CD (b), physical mixture of 5-Fu and β-CD (c), β-CD@5-Fu inclusion complex (d), CMCS/CMCNa/SA hydrogel beads (e), and β-CD@5-Fu/CMCS/CMCNa/SA (f).

    Article Snippet: β-Cyclodextrin (β-CD) and sodium alginate (SA) were purchased from Shanghai Aladdin Biochemical Technology, Carboxymethyl chitosan (CMCS), carboxymethyl cellulose sodium (CMCNa), calcium chloride (CaCl 2 ), and sodium chloride (NaCl) were obtained from Sinopharm Chemical Reagent, 5-fluorouracil (5-Fu) was acquired from Shanghai Macklin Biochemical Technology.

    Techniques: Differential Scanning Calorimetry

    (a) FTIR spectra of raw materials; (b) FTIR spectra of six hydrogel bead formulations; swelling ratio of β-CD@5-Fu/CMCS/CMCNa/SA hydrogel dried beads (c) and swollen beads (d) in purified water and under different pH conditions (pH 1.2; pH 6.8 with and without phosphate; pH 7.4 with and without phosphate) at 37 °C for 24 h.

    Journal: RSC Advances

    Article Title: pH-responsive sodium alginate/CMCS/CMCNa composite hydrogel beads for sustained delivery of 5-fluorouracil-β-cyclodextrin inclusion complexes

    doi: 10.1039/d6ra00194g

    Figure Lengend Snippet: (a) FTIR spectra of raw materials; (b) FTIR spectra of six hydrogel bead formulations; swelling ratio of β-CD@5-Fu/CMCS/CMCNa/SA hydrogel dried beads (c) and swollen beads (d) in purified water and under different pH conditions (pH 1.2; pH 6.8 with and without phosphate; pH 7.4 with and without phosphate) at 37 °C for 24 h.

    Article Snippet: β-Cyclodextrin (β-CD) and sodium alginate (SA) were purchased from Shanghai Aladdin Biochemical Technology, Carboxymethyl chitosan (CMCS), carboxymethyl cellulose sodium (CMCNa), calcium chloride (CaCl 2 ), and sodium chloride (NaCl) were obtained from Sinopharm Chemical Reagent, 5-fluorouracil (5-Fu) was acquired from Shanghai Macklin Biochemical Technology.

    Techniques: Purification

    Scanning electron microscopy (SEM) images of hydrogel beads with different formulations: (a–f) β-CD@5-Fu-loaded hydrogel beads with varying mass ratios of β-CD@5-Fu to CCS: (a and b) 20 : 30, (c and d) 15 : 35, and (e and f) 10 : 40. (g–l) 5-Fu-incorporated hydrogel beads (without β-CD) at corresponding ratios: (g and h) 20 : 30, (i and j) 15 : 35, and (k and l) 10 : 40. (m–p) Control groups: (m and n) pure SA hydrogel beads and (o and p) CMCS/CMC-Na/SA ternary hydrogel beads (without drugs).

    Journal: RSC Advances

    Article Title: pH-responsive sodium alginate/CMCS/CMCNa composite hydrogel beads for sustained delivery of 5-fluorouracil-β-cyclodextrin inclusion complexes

    doi: 10.1039/d6ra00194g

    Figure Lengend Snippet: Scanning electron microscopy (SEM) images of hydrogel beads with different formulations: (a–f) β-CD@5-Fu-loaded hydrogel beads with varying mass ratios of β-CD@5-Fu to CCS: (a and b) 20 : 30, (c and d) 15 : 35, and (e and f) 10 : 40. (g–l) 5-Fu-incorporated hydrogel beads (without β-CD) at corresponding ratios: (g and h) 20 : 30, (i and j) 15 : 35, and (k and l) 10 : 40. (m–p) Control groups: (m and n) pure SA hydrogel beads and (o and p) CMCS/CMC-Na/SA ternary hydrogel beads (without drugs).

    Article Snippet: β-Cyclodextrin (β-CD) and sodium alginate (SA) were purchased from Shanghai Aladdin Biochemical Technology, Carboxymethyl chitosan (CMCS), carboxymethyl cellulose sodium (CMCNa), calcium chloride (CaCl 2 ), and sodium chloride (NaCl) were obtained from Sinopharm Chemical Reagent, 5-fluorouracil (5-Fu) was acquired from Shanghai Macklin Biochemical Technology.

    Techniques: Electron Microscopy, Control

    Drug release performance: (a) release kinetics; (b) shows the comparison results of the cumulative release rate (CFR) of six different hydrogel beads; (c and d) in vitro release of β-CD@5-Fu and 5-Fu loaded hydrogels at different ratios (the error bars represent the standard deviation of three replicate experiments); (e) structural stability in SGF (0–2 h) and SIF (0–12 h); (f) schematic diagram of the drug release mechanism from hydrogel beads.

    Journal: RSC Advances

    Article Title: pH-responsive sodium alginate/CMCS/CMCNa composite hydrogel beads for sustained delivery of 5-fluorouracil-β-cyclodextrin inclusion complexes

    doi: 10.1039/d6ra00194g

    Figure Lengend Snippet: Drug release performance: (a) release kinetics; (b) shows the comparison results of the cumulative release rate (CFR) of six different hydrogel beads; (c and d) in vitro release of β-CD@5-Fu and 5-Fu loaded hydrogels at different ratios (the error bars represent the standard deviation of three replicate experiments); (e) structural stability in SGF (0–2 h) and SIF (0–12 h); (f) schematic diagram of the drug release mechanism from hydrogel beads.

    Article Snippet: β-Cyclodextrin (β-CD) and sodium alginate (SA) were purchased from Shanghai Aladdin Biochemical Technology, Carboxymethyl chitosan (CMCS), carboxymethyl cellulose sodium (CMCNa), calcium chloride (CaCl 2 ), and sodium chloride (NaCl) were obtained from Sinopharm Chemical Reagent, 5-fluorouracil (5-Fu) was acquired from Shanghai Macklin Biochemical Technology.

    Techniques: Comparison, In Vitro, Standard Deviation

    scRNA-seq reveals differential immune infiltration in αOX40-treated tumors based on response (A) Schematic of the bilateral MC38 tumor model assessing αOX40 response. Humanized OX40 mice received three doses of αOX40, followed by resection of the left tumor for scRNA-seq and flow cytometry analysis. Contralateral tumor dynamics and survival were monitored longitudinally. (B) UMAP visualization of scRNA-seq data from immune cells in MC38-bearing mice following αOX40 treatment. Cells are color-coded by annotated cell type. (C) Heatmap depicting nine transcriptionally distinct immune cell subpopulations. (D) Pie chart shows the relative abundance of nine immune cell clusters in αOX40 responders and nonresponders. (E) Flow cytometry analysis of tumor-infiltrating immune cell frequencies in αOX40-treated MC38-bearing mice. Frequencies of CD4 + T cells, CD8 + T cells, and macrophages were quantified after the third αOX40 dose (control, n = 5 mice; mice with a robust therapeutic response named as responder, n = 4 mice; mice with minimal to no response named as nonresponder, n = 4 mice). Data represent mean ± SD from one of two independent experiments (E). Statistical significance was determined using one-way ANOVA with multiple comparisons. ∗∗ p < 0.01.

    Journal: Cell Reports Medicine

    Article Title: Immunogenic tumor cell death and T-cell-derived IFN-γ elicit tumoricidal macrophages to potentiate OX40 immunotherapy

    doi: 10.1016/j.xcrm.2026.102699

    Figure Lengend Snippet: scRNA-seq reveals differential immune infiltration in αOX40-treated tumors based on response (A) Schematic of the bilateral MC38 tumor model assessing αOX40 response. Humanized OX40 mice received three doses of αOX40, followed by resection of the left tumor for scRNA-seq and flow cytometry analysis. Contralateral tumor dynamics and survival were monitored longitudinally. (B) UMAP visualization of scRNA-seq data from immune cells in MC38-bearing mice following αOX40 treatment. Cells are color-coded by annotated cell type. (C) Heatmap depicting nine transcriptionally distinct immune cell subpopulations. (D) Pie chart shows the relative abundance of nine immune cell clusters in αOX40 responders and nonresponders. (E) Flow cytometry analysis of tumor-infiltrating immune cell frequencies in αOX40-treated MC38-bearing mice. Frequencies of CD4 + T cells, CD8 + T cells, and macrophages were quantified after the third αOX40 dose (control, n = 5 mice; mice with a robust therapeutic response named as responder, n = 4 mice; mice with minimal to no response named as nonresponder, n = 4 mice). Data represent mean ± SD from one of two independent experiments (E). Statistical significance was determined using one-way ANOVA with multiple comparisons. ∗∗ p < 0.01.

    Article Snippet: To investigate the impact of chemotherapy on the efficacy of OX40 agonist antibodies, MC38 tumor-bearing mice were given intraperitoneal injections of 20 mg/kg 5-fluorouracil (5-FU, HY-90006, MCE) or 100 mg/kg cyclophosphamide (CTX, HY-7420, MCE) when tumor volumes reached 50–100 mm 3 .

    Techniques: Flow Cytometry, Control, Clinical Proteomics

    NOS2-expressing macrophages is associated with response to αOX40 therapy (A) UMAP of monocytes/macrophages subclusters from scRNA-seq data in αOX40-treated MC38-bearing mice. (B) Representative marker genes in the monocyte/macrophage subclusters. (C) Pie chart showing the proportional distribution of monocyte/macrophage subsets of responders and nonresponders. (D) QuSAGE pathway analysis demonstrated enrichment of innate immune and phagocytic signaling pathways in distinct monocyte/macrophage subsets. (E) UMAP showing Mac_C1 signature genes and a heatmap of immune-related gene expression across TAM subclusters ( Z score normalized). (F) Violin plots comparing Nos2 expression levels in Mac_C1 subset between responsive and nonresponsive. (G) Flow cytometry analysis shows the percentage of M1-like (F4/80 + NOS2 + ) and M2-like (F4/80 + CD206 + ) macrophages in tumor tissues of control ( n = 5 mice), nonresponders (with minimal to no response, n = 4 mice), and responders (with a robust therapeutic response, n = 4 mice). (H and I) Comparison of Nos2 expression levels in responders versus nonresponders pre- or post-αOX40 treatment. Bilateral-MC38-bearing mice were treated with αOX40, and tumors from one side were analyzed by RNA-seq prior to (H) or following αOX40 treatment (I). The Nos2 expression was analyzed from RNA-seq data (left) and validated by RT-qPCR (right) ( n = 5 biological replicates). (J) NOS2 expression in tumor biopsies post-treatment determined by RNA-seq. Patients with advanced solid tumors and >1 prior therapy received HFB301001 monotherapy. Tumor biopsy samples were obtained on day 8 of cycle 2 for subsequent RNA-seq analysis. NOS2 expression were compared between patients achieving stable disease (SD, n = 3) and those with progressive disease (PD, n = 3). (K) GO enrichment analysis of upregulated genes in Mac_C1 of responders. (L) Calreticulin expression was quantified by flow cytometry in different response groups following αOX40 treatment ( n = 3 mice per group). (M) NOS2 expression in BMDMs was analyzed by flow cytometry after stimulation with CD8 + T cell supernatant and MC38 lysate, combined with TLR inhibition and IFN-γ blockade ( n = 5 biological replicates). (N) Quantification of Nos2 expression in BMDM by RT-qPCR after 24-h stimulation with MPLA (TLR4 agonist, 100 ng/mL), IFN-γ (20 ng/mL), or both. Data normalized to Gapdh and presented as fold-change relative to unstimulated controls ( n = 4 biological replicates). Data are shown as means ± SD from one of two independent experiments (G, H, I, L, M, and N). Statistical significance was determined using one-way ANOVA with multiple comparisons (G, L, M, and N) or using an unpaired two-tailed t test (H, I, and J). n.s., not significant; ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001; VST, variance stabilized transformation; sup., supernatant; lys., tumor lysate; inh., inhibitor.

    Journal: Cell Reports Medicine

    Article Title: Immunogenic tumor cell death and T-cell-derived IFN-γ elicit tumoricidal macrophages to potentiate OX40 immunotherapy

    doi: 10.1016/j.xcrm.2026.102699

    Figure Lengend Snippet: NOS2-expressing macrophages is associated with response to αOX40 therapy (A) UMAP of monocytes/macrophages subclusters from scRNA-seq data in αOX40-treated MC38-bearing mice. (B) Representative marker genes in the monocyte/macrophage subclusters. (C) Pie chart showing the proportional distribution of monocyte/macrophage subsets of responders and nonresponders. (D) QuSAGE pathway analysis demonstrated enrichment of innate immune and phagocytic signaling pathways in distinct monocyte/macrophage subsets. (E) UMAP showing Mac_C1 signature genes and a heatmap of immune-related gene expression across TAM subclusters ( Z score normalized). (F) Violin plots comparing Nos2 expression levels in Mac_C1 subset between responsive and nonresponsive. (G) Flow cytometry analysis shows the percentage of M1-like (F4/80 + NOS2 + ) and M2-like (F4/80 + CD206 + ) macrophages in tumor tissues of control ( n = 5 mice), nonresponders (with minimal to no response, n = 4 mice), and responders (with a robust therapeutic response, n = 4 mice). (H and I) Comparison of Nos2 expression levels in responders versus nonresponders pre- or post-αOX40 treatment. Bilateral-MC38-bearing mice were treated with αOX40, and tumors from one side were analyzed by RNA-seq prior to (H) or following αOX40 treatment (I). The Nos2 expression was analyzed from RNA-seq data (left) and validated by RT-qPCR (right) ( n = 5 biological replicates). (J) NOS2 expression in tumor biopsies post-treatment determined by RNA-seq. Patients with advanced solid tumors and >1 prior therapy received HFB301001 monotherapy. Tumor biopsy samples were obtained on day 8 of cycle 2 for subsequent RNA-seq analysis. NOS2 expression were compared between patients achieving stable disease (SD, n = 3) and those with progressive disease (PD, n = 3). (K) GO enrichment analysis of upregulated genes in Mac_C1 of responders. (L) Calreticulin expression was quantified by flow cytometry in different response groups following αOX40 treatment ( n = 3 mice per group). (M) NOS2 expression in BMDMs was analyzed by flow cytometry after stimulation with CD8 + T cell supernatant and MC38 lysate, combined with TLR inhibition and IFN-γ blockade ( n = 5 biological replicates). (N) Quantification of Nos2 expression in BMDM by RT-qPCR after 24-h stimulation with MPLA (TLR4 agonist, 100 ng/mL), IFN-γ (20 ng/mL), or both. Data normalized to Gapdh and presented as fold-change relative to unstimulated controls ( n = 4 biological replicates). Data are shown as means ± SD from one of two independent experiments (G, H, I, L, M, and N). Statistical significance was determined using one-way ANOVA with multiple comparisons (G, L, M, and N) or using an unpaired two-tailed t test (H, I, and J). n.s., not significant; ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001; VST, variance stabilized transformation; sup., supernatant; lys., tumor lysate; inh., inhibitor.

    Article Snippet: To investigate the impact of chemotherapy on the efficacy of OX40 agonist antibodies, MC38 tumor-bearing mice were given intraperitoneal injections of 20 mg/kg 5-fluorouracil (5-FU, HY-90006, MCE) or 100 mg/kg cyclophosphamide (CTX, HY-7420, MCE) when tumor volumes reached 50–100 mm 3 .

    Techniques: Expressing, Marker, Protein-Protein interactions, Gene Expression, Flow Cytometry, Control, Clinical Proteomics, Comparison, RNA Sequencing, Quantitative RT-PCR, Inhibition, Two Tailed Test, Transformation Assay

    Rational modulation of tumor microenvironment enhances therapeutic responsiveness to αOX40-based immunotherapy (A–D) OX40-humanized mice bearing subcutaneous MC38 (A), B16 (B), E.G7 (C), or KPC (D) tumors ( n = 5–7 mice per group). Tumor growth curves (numbers indicate complete cures) and Kaplan-Meier survival for each model. Treatments: MPLA+IFN-γ ( i.t. , intratumoral); Combo: MPLA+IFN-γ ( i.t. , intratumoral) + αOX40 ( i.p. , intraperitoneal). (E) Study schema of secondary tumor challenge in MC38 model treated with Combo. (F) Tumor progression and survival outcomes following secondary tumor challenge. Growth kinetics of re-implanted tumors in tumor-cleared mice (previously cured by therapy) versus treatment-naive wild-type controls (left). Kaplan-Meier survival plot (right) ( n = 13 mice per group). (G) Systemic immunity evaluation schema with bilateral MC38 bearing mice were treated with Combo, αOX40, and control. (H) Tumor growth curves and survival plots of (G) ( n = 6–7 mice per group). Data are shown as means ± SD from one of two independent experiments (A–D, F, and H). Statistical significance was determined using log rank test (A–H). n.s., not significant; ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001.

    Journal: Cell Reports Medicine

    Article Title: Immunogenic tumor cell death and T-cell-derived IFN-γ elicit tumoricidal macrophages to potentiate OX40 immunotherapy

    doi: 10.1016/j.xcrm.2026.102699

    Figure Lengend Snippet: Rational modulation of tumor microenvironment enhances therapeutic responsiveness to αOX40-based immunotherapy (A–D) OX40-humanized mice bearing subcutaneous MC38 (A), B16 (B), E.G7 (C), or KPC (D) tumors ( n = 5–7 mice per group). Tumor growth curves (numbers indicate complete cures) and Kaplan-Meier survival for each model. Treatments: MPLA+IFN-γ ( i.t. , intratumoral); Combo: MPLA+IFN-γ ( i.t. , intratumoral) + αOX40 ( i.p. , intraperitoneal). (E) Study schema of secondary tumor challenge in MC38 model treated with Combo. (F) Tumor progression and survival outcomes following secondary tumor challenge. Growth kinetics of re-implanted tumors in tumor-cleared mice (previously cured by therapy) versus treatment-naive wild-type controls (left). Kaplan-Meier survival plot (right) ( n = 13 mice per group). (G) Systemic immunity evaluation schema with bilateral MC38 bearing mice were treated with Combo, αOX40, and control. (H) Tumor growth curves and survival plots of (G) ( n = 6–7 mice per group). Data are shown as means ± SD from one of two independent experiments (A–D, F, and H). Statistical significance was determined using log rank test (A–H). n.s., not significant; ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001.

    Article Snippet: To investigate the impact of chemotherapy on the efficacy of OX40 agonist antibodies, MC38 tumor-bearing mice were given intraperitoneal injections of 20 mg/kg 5-fluorouracil (5-FU, HY-90006, MCE) or 100 mg/kg cyclophosphamide (CTX, HY-7420, MCE) when tumor volumes reached 50–100 mm 3 .

    Techniques: Control

    The antitumor efficacy of the Combo therapy is contingent upon CD8 + T cells and macrophages (A) UMAP of scRNA-seq data from tumor-infiltrating immune cells in OX40-humanized MC38-bearing mice treated with MPLA, IFN-γ, αOX40, or Combo. Cells are color-coded by annotated cell type. (B) Bubble chart showing the top variable marker genes for identified immune cell types. (C) Pie chart shows the relative abundance of 11 immune cell clusters in control, αOX40, MPLA+IFN-γ, or Combo. (D) Macrophage frequency and absolute count in tumors of MC38-bearing mice after two and three treatment cycles with MPLA, IFN-γ, αOX40, or Combo, analyzed by flow cytometry ( n = 5 mice per group). (E) Schematic of CD8 + T cell depletion assay. (F) Tumor volume and survival were monitored. Kaplan-Meier survival analysis corresponding to the depletion study of CD8 + T cell ( n = 6 mice per group). (G) Schematic of macrophage depletion assay in early and late stage. (H and I) Tumor volume and survival were monitored. Kaplan-Meier survival analysis corresponding to the depletion study in (G) ( n = 6–10 mice per group). Data are shown as means ± SD from one of two independent experiments (D, F, H, and I). Statistical significance was determined using one-way ANOVA with Tukey’s multiple comparisons test (D). Log rank test was used (F, H, and I) for statistical comparison. n.s., not significant; ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001.

    Journal: Cell Reports Medicine

    Article Title: Immunogenic tumor cell death and T-cell-derived IFN-γ elicit tumoricidal macrophages to potentiate OX40 immunotherapy

    doi: 10.1016/j.xcrm.2026.102699

    Figure Lengend Snippet: The antitumor efficacy of the Combo therapy is contingent upon CD8 + T cells and macrophages (A) UMAP of scRNA-seq data from tumor-infiltrating immune cells in OX40-humanized MC38-bearing mice treated with MPLA, IFN-γ, αOX40, or Combo. Cells are color-coded by annotated cell type. (B) Bubble chart showing the top variable marker genes for identified immune cell types. (C) Pie chart shows the relative abundance of 11 immune cell clusters in control, αOX40, MPLA+IFN-γ, or Combo. (D) Macrophage frequency and absolute count in tumors of MC38-bearing mice after two and three treatment cycles with MPLA, IFN-γ, αOX40, or Combo, analyzed by flow cytometry ( n = 5 mice per group). (E) Schematic of CD8 + T cell depletion assay. (F) Tumor volume and survival were monitored. Kaplan-Meier survival analysis corresponding to the depletion study of CD8 + T cell ( n = 6 mice per group). (G) Schematic of macrophage depletion assay in early and late stage. (H and I) Tumor volume and survival were monitored. Kaplan-Meier survival analysis corresponding to the depletion study in (G) ( n = 6–10 mice per group). Data are shown as means ± SD from one of two independent experiments (D, F, H, and I). Statistical significance was determined using one-way ANOVA with Tukey’s multiple comparisons test (D). Log rank test was used (F, H, and I) for statistical comparison. n.s., not significant; ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001.

    Article Snippet: To investigate the impact of chemotherapy on the efficacy of OX40 agonist antibodies, MC38 tumor-bearing mice were given intraperitoneal injections of 20 mg/kg 5-fluorouracil (5-FU, HY-90006, MCE) or 100 mg/kg cyclophosphamide (CTX, HY-7420, MCE) when tumor volumes reached 50–100 mm 3 .

    Techniques: Marker, Control, Flow Cytometry, Depletion Assay, Comparison

    NOS2-high macrophages are significantly associated with Combo treatment efficacy (A) UMAP of macrophage subclusters from scRNA-seq data of MC38-bearing mice treated with control, MPLA+IFN-γ, αOX40, or Combo. Cells are color-coded by annotated subtype. (B) Bubble chart showing the top variable marker genes for identified macrophage subclusters. (C) Pie chart shows the relative abundance of four macrophage subclusters in control, αOX40, MPLA+IFN-γ, or Combo. (D) GO pathway analysis identifying significantly enriched signaling pathways in the Mac_S2 subcluster compared to other macrophage subpopulations. (E) Violin plots showing Nos2 expression levels across macrophage subclusters. (F) Violin plots comparing Nos2 and Cd206 expression levels among different treatment groups. (G) Frequency of M1-like, M2-like, or the ratio of M1/M2-like macrophage cells in tumor tissues from control, αOX40, MPLA+IFN-γ, and Combo groups with two time points, as determined by flow cytometry ( n = 5–10 mice per group). (H) Multiple immunofluorescence signal intensities of NOS2 + F4/80 + and CD206 + F4/80 + cells in the TME of control, αOX40, MPLA+IFN-γ, and Combo groups. Scale bars, 20 μm. Data are shown as means ± SD from one of two independent experiments (G and H). Statistical significance was determined using one-way ANOVA with Tukey’s multiple comparisons test (G). n.s., not significant; ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001.

    Journal: Cell Reports Medicine

    Article Title: Immunogenic tumor cell death and T-cell-derived IFN-γ elicit tumoricidal macrophages to potentiate OX40 immunotherapy

    doi: 10.1016/j.xcrm.2026.102699

    Figure Lengend Snippet: NOS2-high macrophages are significantly associated with Combo treatment efficacy (A) UMAP of macrophage subclusters from scRNA-seq data of MC38-bearing mice treated with control, MPLA+IFN-γ, αOX40, or Combo. Cells are color-coded by annotated subtype. (B) Bubble chart showing the top variable marker genes for identified macrophage subclusters. (C) Pie chart shows the relative abundance of four macrophage subclusters in control, αOX40, MPLA+IFN-γ, or Combo. (D) GO pathway analysis identifying significantly enriched signaling pathways in the Mac_S2 subcluster compared to other macrophage subpopulations. (E) Violin plots showing Nos2 expression levels across macrophage subclusters. (F) Violin plots comparing Nos2 and Cd206 expression levels among different treatment groups. (G) Frequency of M1-like, M2-like, or the ratio of M1/M2-like macrophage cells in tumor tissues from control, αOX40, MPLA+IFN-γ, and Combo groups with two time points, as determined by flow cytometry ( n = 5–10 mice per group). (H) Multiple immunofluorescence signal intensities of NOS2 + F4/80 + and CD206 + F4/80 + cells in the TME of control, αOX40, MPLA+IFN-γ, and Combo groups. Scale bars, 20 μm. Data are shown as means ± SD from one of two independent experiments (G and H). Statistical significance was determined using one-way ANOVA with Tukey’s multiple comparisons test (G). n.s., not significant; ∗ p < 0.05, ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001.

    Article Snippet: To investigate the impact of chemotherapy on the efficacy of OX40 agonist antibodies, MC38 tumor-bearing mice were given intraperitoneal injections of 20 mg/kg 5-fluorouracil (5-FU, HY-90006, MCE) or 100 mg/kg cyclophosphamide (CTX, HY-7420, MCE) when tumor volumes reached 50–100 mm 3 .

    Techniques: Control, Marker, Protein-Protein interactions, Expressing, Flow Cytometry, Immunofluorescence

    NOS2-dependent direct tumor cell killing by macrophages in Combo therapy (A) Schematic of co-culture using CFSE-labeled MC38 cells with tumor- or spleen-derived macrophages, with/without NIL treatment. (B) Flow cytometry quantification of 7-AAD + MC38 cells after 48 h co-culture with tumor-(right) or spleen (left)-derived macrophages ( n = 3 biological replicates). (C) Quantification of 7-AAD + MC38 cells after 48 h in vitro co-culture with or without NIL treatment ( n = 3 biological replicates). (D) Treatment schedule for MC38- or B16-tumor-bearing Nos2 KOor WT mice treated with Combo ( n = 6 mice per group). (E and F) Survival curves of MC38-bearing (E) and B16-bearing mice (F) were analyzed using the log rank test. (G) Flow cytometry analysis of 7-AAD + MC38 cells after 48-h co-culture with CFSE-labeled MC38 cells and BMDMs from Nos2 KO mice ( n = 5 biological replicates). (H) Phagocytosis rate of MC38 cells engulfed by BMDMs was assessed by flow cytometry ( n = 3 biological replicates). (I) Surface expression of CRT on MC38 cells was assessed by flow cytometry after co-culture with MPLA- and IFN-γ-polarized BMDMs in vitro ( n = 3 biological replicates). (J) Analysis of CALR + MC38 cells from MC38-tumor-bearing mice following final treatment with control or Combo, assessed by flow cytometry ( n = 5 biological replicates). Data are shown as means ± SD from one of two independent experiments (B, C, E, F, G, H, I, and J). Statistical significance was determined using one-way ANOVA with Tukey’s multiple comparisons (B, C, and I) or using unpaired Student’s t test (G, H, and J). Log rank tests (E and F) were also used for statistical analysis. n.s., not significant; ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001. Combo, MPLA, and IFN-γ combined with αOX86 (E and F).

    Journal: Cell Reports Medicine

    Article Title: Immunogenic tumor cell death and T-cell-derived IFN-γ elicit tumoricidal macrophages to potentiate OX40 immunotherapy

    doi: 10.1016/j.xcrm.2026.102699

    Figure Lengend Snippet: NOS2-dependent direct tumor cell killing by macrophages in Combo therapy (A) Schematic of co-culture using CFSE-labeled MC38 cells with tumor- or spleen-derived macrophages, with/without NIL treatment. (B) Flow cytometry quantification of 7-AAD + MC38 cells after 48 h co-culture with tumor-(right) or spleen (left)-derived macrophages ( n = 3 biological replicates). (C) Quantification of 7-AAD + MC38 cells after 48 h in vitro co-culture with or without NIL treatment ( n = 3 biological replicates). (D) Treatment schedule for MC38- or B16-tumor-bearing Nos2 KOor WT mice treated with Combo ( n = 6 mice per group). (E and F) Survival curves of MC38-bearing (E) and B16-bearing mice (F) were analyzed using the log rank test. (G) Flow cytometry analysis of 7-AAD + MC38 cells after 48-h co-culture with CFSE-labeled MC38 cells and BMDMs from Nos2 KO mice ( n = 5 biological replicates). (H) Phagocytosis rate of MC38 cells engulfed by BMDMs was assessed by flow cytometry ( n = 3 biological replicates). (I) Surface expression of CRT on MC38 cells was assessed by flow cytometry after co-culture with MPLA- and IFN-γ-polarized BMDMs in vitro ( n = 3 biological replicates). (J) Analysis of CALR + MC38 cells from MC38-tumor-bearing mice following final treatment with control or Combo, assessed by flow cytometry ( n = 5 biological replicates). Data are shown as means ± SD from one of two independent experiments (B, C, E, F, G, H, I, and J). Statistical significance was determined using one-way ANOVA with Tukey’s multiple comparisons (B, C, and I) or using unpaired Student’s t test (G, H, and J). Log rank tests (E and F) were also used for statistical analysis. n.s., not significant; ∗∗ p < 0.01, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001. Combo, MPLA, and IFN-γ combined with αOX86 (E and F).

    Article Snippet: To investigate the impact of chemotherapy on the efficacy of OX40 agonist antibodies, MC38 tumor-bearing mice were given intraperitoneal injections of 20 mg/kg 5-fluorouracil (5-FU, HY-90006, MCE) or 100 mg/kg cyclophosphamide (CTX, HY-7420, MCE) when tumor volumes reached 50–100 mm 3 .

    Techniques: Co-Culture Assay, Labeling, Derivative Assay, Flow Cytometry, In Vitro, Expressing, Control

    Foxp3 + Treg depletion and macrophage reprogramming are involved in the anti-tumor effect of Combo (A) Flow cytometry analysis of TME. MC38-tumor-bearing mice were treated with control, αOX40, MPLA+IFN-γ, or Combo for two and three doses, and tumors were analyzed by flow cytometry. (B) Frequency and absolute count of CD25 + FOXP3 + cells in tumor tissues from control, αOX40, MPLA+IFN-γ, and Combo groups with two time points, as determined by flow cytometry ( n = 5 mice per group). (C) Treatment schedule for MC38-tumor-bearing Fcer1g KO or FcγRIIb KO mice. Mice were treated with Control, αOX40, MPLA+IFN-γ, and Combo every 3 days for a total of four doses. (D and E) Survival curves of Fcgr1g KO (D) and FcgrIIb KO (E) mice following treatment ( n = 5–6 mice per group) were monitored. (F) Treatment schedule. MC38-tumor-bearing mice were treated with MPLA and IFN-γ in combination with either OX40-mIgG2a or OX40-hIgG1 agonist antibodies (top), and the corresponding survival curves are shown (bottom) ( n = 5–7 mice per group). (G) Schematic of the co-culture experiment involving BMDMs and Tregs at a ratio of 1:4 (BMDM:Treg); Nos2 expression was measured by RT-qPCR. (H) Relative expression of Nos2 following the co-culture ( n = 4 biological replicates). (I) Multiple immunofluorescence (mIF) staining of MC38 tumors from mice treated with control, αOX40, MPLA+IFN-γ, or Combo, showing FOXP3 and NOS2 expression in border or intra-tumoral. Scale bars, 50 μm. (J) Analysis of cell numbers of FOXP3 and NOS2 expression at the border and intra-tumoral. Representative images from five randomly chosen fields were quantified with ImageJ. Data are shown as means ± SD from one of two independent experiments (B, D, E, F, H, and I). Statistical significance was determined using one-way ANOVA with Tukey’s multiple comparisons (B and H). Log rank test was also used (D–F). n.s., not significant; ∗ p < 0.05, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001. Combo, MPLA, and IFN-γ combined with αOX86 (C–E).

    Journal: Cell Reports Medicine

    Article Title: Immunogenic tumor cell death and T-cell-derived IFN-γ elicit tumoricidal macrophages to potentiate OX40 immunotherapy

    doi: 10.1016/j.xcrm.2026.102699

    Figure Lengend Snippet: Foxp3 + Treg depletion and macrophage reprogramming are involved in the anti-tumor effect of Combo (A) Flow cytometry analysis of TME. MC38-tumor-bearing mice were treated with control, αOX40, MPLA+IFN-γ, or Combo for two and three doses, and tumors were analyzed by flow cytometry. (B) Frequency and absolute count of CD25 + FOXP3 + cells in tumor tissues from control, αOX40, MPLA+IFN-γ, and Combo groups with two time points, as determined by flow cytometry ( n = 5 mice per group). (C) Treatment schedule for MC38-tumor-bearing Fcer1g KO or FcγRIIb KO mice. Mice were treated with Control, αOX40, MPLA+IFN-γ, and Combo every 3 days for a total of four doses. (D and E) Survival curves of Fcgr1g KO (D) and FcgrIIb KO (E) mice following treatment ( n = 5–6 mice per group) were monitored. (F) Treatment schedule. MC38-tumor-bearing mice were treated with MPLA and IFN-γ in combination with either OX40-mIgG2a or OX40-hIgG1 agonist antibodies (top), and the corresponding survival curves are shown (bottom) ( n = 5–7 mice per group). (G) Schematic of the co-culture experiment involving BMDMs and Tregs at a ratio of 1:4 (BMDM:Treg); Nos2 expression was measured by RT-qPCR. (H) Relative expression of Nos2 following the co-culture ( n = 4 biological replicates). (I) Multiple immunofluorescence (mIF) staining of MC38 tumors from mice treated with control, αOX40, MPLA+IFN-γ, or Combo, showing FOXP3 and NOS2 expression in border or intra-tumoral. Scale bars, 50 μm. (J) Analysis of cell numbers of FOXP3 and NOS2 expression at the border and intra-tumoral. Representative images from five randomly chosen fields were quantified with ImageJ. Data are shown as means ± SD from one of two independent experiments (B, D, E, F, H, and I). Statistical significance was determined using one-way ANOVA with Tukey’s multiple comparisons (B and H). Log rank test was also used (D–F). n.s., not significant; ∗ p < 0.05, ∗∗∗ p < 0.001, ∗∗∗∗ p < 0.0001. Combo, MPLA, and IFN-γ combined with αOX86 (C–E).

    Article Snippet: To investigate the impact of chemotherapy on the efficacy of OX40 agonist antibodies, MC38 tumor-bearing mice were given intraperitoneal injections of 20 mg/kg 5-fluorouracil (5-FU, HY-90006, MCE) or 100 mg/kg cyclophosphamide (CTX, HY-7420, MCE) when tumor volumes reached 50–100 mm 3 .

    Techniques: Flow Cytometry, Control, Co-Culture Assay, Expressing, Quantitative RT-PCR, Immunofluorescence, Staining