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Open access Aug 2026

Single-cell RNA sequencing uncovers an immunosuppressive program in PDAC mast cells: tumour-driven activation, proliferation, and association with Treg recruitment

Abstract Background Pancreatic ductal adenocarcinoma (PDAC) is characterized by a highly immunosuppressive tumour microenvironment (TME), which contributes to its resistance to immunotherapy. Although mast cells (MCs) have been implicated in PDAC progression, their functional heterogeneity and candidate signaling models of immune modulation remain poorly understood. Methods Through an integrated analysis of multiple single-cell RNA sequencing (scRNA-seq) datasets, we identified a significant enrichment of MCs in PDAC tissues and established a characteristic gene signature (TPSAB1, TPSB2, CPA3, HPGDS, KIT, LTC4S) for their precise identification. Results Single-cell RNA-seq analysis categorized MCs in PDAC into resting, activated, and proliferating subpopulations. To functionally validate these transcriptomic predictions, in vitro co-culture experiments showed that pancreatic cancer cells promote the activation and proliferation of MCs. Cell–cell communication analysis suggested that activated MCs preferentially interact with regulatory T cells (Tregs) via the MIF–(CD74/CXCR4) signaling axis. This interaction was associated with an immunosuppressive T-cell landscape, characterized by an expanded population of Tregs exhibiting a highly activated immunosuppressive phenotype. Spatial transcriptomics and immunofluorescence validated the confirmed the spatial proximity of MCs and Tregs in PDAC tissues. Clinically, high expression of MC-Treg signature genes correlated with poor patient survival. Conclusions Our study suggests that MCs are key orchestrators of immunosuppression in PDAC, predicted to interact with Tregs through the MIF–CD74/CXCR4 axis, offering a novel rationale for targeting the MC–Treg axis in future immunotherapeutic strategies.

Mengli Wu, Xuxia Ye, Qi Yu et al. · 0 citations
Open access Aug 2026

Calycosin targets the MAPK-EGR1 signaling axis to inhibit enterovirus 71 replication in cells and human colonic organoids

ABSTRACT The downstream effectors that mediate the pro‑viral function of the MAPK pathway during enterovirus 71 (EV71) infection remain poorly defined. Here we show that early growth response 1 (EGR1) is independently regulated by each of the three classical MAPK branches including extracellular signal-regulated kinase (ERK), p38 and c-Jun N-terminal kinase (JNK), and serves as a common downstream target of these pathways to promote EV71 replication and virus-induced cell death. Furthermore, we found that the natural isoflavone calycosin (CA) from Astragalus membranaceus acts as a regulatory probe of the MAPK-EGR1 axis. CA suppresses EV71-induced expression and phosphorylation of ERK, p38, and JNK, as well as the subsequent upregulation of EGR1, thereby inhibiting both viral replication and virus-induced cell death in conventional cell lines and human colonic organoid infection models. This pro-viral axis is conserved among several enteroviruses, including coxsackievirus B3 and enterovirus D68, and CA exhibits broad-spectrum activity against multiple enteroviruses by targeting this axis. Collectively, our findings establish the MAPK‑EGR1 axis as a key host‑dependency node for EV71 and other enteroviruses, and identify CA as a valuable chemical probe for interrogating this axis. This work not only deepens our understanding of the interplay between enteroviruses such as EV71 and their host, but also provides a mechanistic basis for host‑directed antiviral strategies.

Yue Liu, Jiale Wang, Xin Chen et al. · 0 citations

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