Related Experiment Video
Updated: Dec 29, 2025

Flow Cytometry-Based Isolation and Therapeutic Evaluation of Tumor-Infiltrating Lymphocytes in a Mouse Model of Pancreatic Cancer
Published on: January 17, 2025
B cell-Derived IL35 Drives STAT3-Dependent CD8+ T-cell Exclusion in Pancreatic Cancer
Bhalchandra Mirlekar1, Daniel Michaud2, Samuel J Lee1
1Lineberger Comprehensive Cancer Center, The University of North Carolina at Chapel Hill School of Medicine, Chapel Hill, North Carolina.
Abstract:
Pancreatic ductal adenocarcinoma (PDA) is an aggressive malignancy characterized by a paucity of tumor-proximal CD8+ T cells and resistance to immunotherapeutic interventions. Cancer-associated mechanisms that elicit CD8+ T-cell exclusion and resistance to immunotherapy are not well-known. Here, using a Kras- and p53-driven model of PDA, we describe a mechanism of action for the protumorigenic cytokine IL35 through STAT3 activation in CD8+ T cells. Distinct from its action on CD4+ T cells, IL35 signaling in gp130+CD8+ T cells activated the transcription factor STAT3, which antagonized intratumoral infiltration and effector function of CD8+ T cells via suppression of CXCR3, CCR5, and IFNγ expression. Inhibition of STAT3 signaling in tumor-educated CD8+ T cells improved PDA growth control upon adoptive transfer to tumor-bearing mice. We showed that activation of STAT3 in CD8+ T cells was driven by B cell- but not regulatory T cell-specific production of IL35. We also demonstrated that B cell-specific deletion of IL35 facilitated CD8+ T-cell activation independently of effector or regulatory CD4+ T cells and was sufficient to phenocopy therapeutic anti-IL35 blockade in overcoming resistance to anti-PD-1 immunotherapy. Finally, we identified a circulating IL35+ B-cell subset in patients with PDA and demonstrated that the presence of IL35+ cells predicted increased occurrence of phosphorylated (p)Stat3+CXCR3-CD8+ T cells in tumors and inversely correlated with a cytotoxic T-cell signature in patients. Together, these data identified B cell-mediated IL35/gp130/STAT3 signaling as an important direct link to CD8+ T-cell exclusion and immunotherapy resistance in PDA.
Insights
Interleukin-35 (IL35) produced by B cells activates STAT3 in CD8+ T cells, hindering their anti-tumor activity and causing immunotherapy resistance in pancreatic cancer. Inhibiting this pathway enhances anti-PD-1 therapy effectiveness.
Area of Science:
- Immunology
- Oncology
- Molecular Biology
Background:
- Pancreatic ductal adenocarcinoma (PDA) is aggressive, with poor CD8+ T cell infiltration and immunotherapy resistance.
- Mechanisms driving CD8+ T cell exclusion and immunotherapy resistance in PDA are poorly understood.
Purpose of the Study:
- To elucidate the role of Interleukin-35 (IL35) in mediating CD8+ T cell exclusion and immunotherapy resistance in PDA.
- To identify therapeutic strategies targeting the IL35 pathway for PDA treatment.
Main Methods:
- Utilized a Kras- and p53-driven mouse model of PDA.
- Investigated IL35 signaling in CD8+ T cells via STAT3 activation.
- Assessed the impact of STAT3 inhibition and IL35 deletion on tumor growth and T cell function.
- Analyzed patient samples for IL35+ B cells and their correlation with T cell phenotypes in tumors.
Main Results:
- IL35 activates STAT3 in CD8+ T cells, suppressing their infiltration and function by downregulating CXCR3, CCR5, and IFNγ.
- STAT3 inhibition in tumor-educated CD8+ T cells improved PDA growth control.
- B cell-derived IL35, not regulatory T cell-derived IL35, drives STAT3 activation in CD8+ T cells.
- B cell-specific IL35 deletion or anti-IL35 blockade overcame resistance to anti-PD-1 immunotherapy.
- PDA patients exhibit circulating IL35+ B cells, correlating with pStat3+CXCR3-CD8+ T cells and inversely with cytotoxic T cell signatures.
Conclusions:
- B cell-mediated IL35/gp130/STAT3 signaling directly contributes to CD8+ T cell exclusion and immunotherapy resistance in PDA.
- Targeting the IL35-STAT3 axis in CD8+ T cells represents a promising therapeutic strategy for PDA.

