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Lisong Shen

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Open access Jul 2026

Foxs1-mediated transformation of CD34+ fibroblast to myCAFs promotes tumor growth

Cancer-associated fibroblasts (CAFs) represent a major structural component of solid tumors and play crucial roles in cancer progression and drug resistance. However, their developmental origin, differentiation trajectory, and therapeutic potential remain poorly defined. Using advanced approaches—including inducible genetic lineage tracing, single-cell RNA sequencing, and spatial transcriptomic profiling—we identified a population of Cd34+Pi16+ fibroblast progenitors (Cd34+ CAFs) in both melanoma and gastric cancer. We delineated their differentiation trajectory toward Acta2+ CAFs, driven by the upregulation of the transcription factor Foxs1. This work establishes the developmental origin of Acta2+ CAFs and experimentally validates the Cd34+ to Acta2+ transition. By reverse-matching the transcriptional signatures of Acta2+ CAF differentiation with the CMap/LINCS L1000 drug perturbation database, we identified four small-molecule candidates predicted to inhibit tumor-induced Foxs1 upregulation. These compounds effectively suppressed Cd34+ CAF differentiation, maintaining the progenitor-like Cd34+ state. Collectively, this study proposes a novel antitumor strategy that targets CAF lineage development to restrain tumor progression. A comprehensive atlas of CD34⁺ fibroblast progenitors within the tumor microenvironment was generated using single-cell sequencing and lineage tracing, delineating their differentiation trajectory toward myofibroblasts and identifying potential therapeutic targets to block this transition. In situ sequencing reveals that CD34⁺Pi16⁺ CAFs originate adjacent to blood vessels, suggesting a vascular adventitial progenitor origin. Dual-recombinase lineage tracing combined with diphtheria toxin ablation demonstrates that CD34⁺Pi16⁺ cells are an essential source of tumor myofibroblasts required for tumor growth. Foxs1 directly binds the α-SMA promoter to drive CD34⁺ to Acta2⁺ CAF conversion, and its knockdown suppresses tumor growth in vivo. Machine learning-based screening of CMap/LINCS L1000 identifies disulfiram and three other compounds that block CAF differentiation and restrain tumor progression. Pharmacological intervention preserves the CD34⁺Pi16⁺ progenitor state, with single-cell sequencing confirming that WH-4-023 reverses CAF phenotypic transition. In situ sequencing reveals that CD34⁺Pi16⁺ CAFs originate adjacent to blood vessels, suggesting a vascular adventitial progenitor origin. Dual-recombinase lineage tracing combined with diphtheria toxin ablation demonstrates that CD34⁺Pi16⁺ cells are an essential source of tumor myofibroblasts required for tumor growth. Foxs1 directly binds the α-SMA promoter to drive CD34⁺ to Acta2⁺ CAF conversion, and its knockdown suppresses tumor growth in vivo. Machine learning-based screening of CMap/LINCS L1000 identifies disulfiram and three other compounds that block CAF differentiation and restrain tumor progression. Pharmacological intervention preserves the CD34⁺Pi16⁺ progenitor state, with single-cell sequencing confirming that WH-4-023 reverses CAF phenotypic transition. A comprehensive atlas of CD34⁺ fibroblast progenitors within the tumor microenvironment was generated using single-cell sequencing and lineage tracing, delineating their differentiation trajectory toward myofibroblasts and identifying potential therapeutic targets to block this transition.

Junyao Yang, Ting Chen, Run Zhang et al. · 0 citations
Open access Jul 2026

Single cell transcriptomics analyses reveal functional heterogeneity and anti-tumor role of mast cells in esophageal squamous cell carcinoma

Introduction Mast cells (MCs) play important roles in allergic reactions and tissue homeostasis; however, their functions in esophageal squamous cell carcinoma (ESCC) remain controversial. Understanding the heterogeneity and functional states of MCs in ESCC is essential for elucidating their roles in tumor progression and immune regulation. Methods single-cell RNA sequencing (scRNA-seq) data from 84 ESCC samples across four independent cohorts were analyzed to identify MC subtypes, which were further validated using bulk RNA-seq and immunofluorescence staining. Functional assays were performed to assess the effects of stem cell factor (SCF)-stimulated MCs on ESCC cell proliferation, migration, and apoptosis. Spatial transcriptomics were used to investigate MC interactions within the tumor microenvironment (TME). Results MC abundance was significantly reduced in ESCC tissues compared with normal esophageal tissues, as confirmed by bulk RNA-seq and IHC analyses. scRNA-seq revealed five distinct MC subtypes in ESCC: T-type-activated MC, T-type-resting MC, TC-type-activated MC, TC-type-resting MC and proliferating MC. Resting MCs localized to normal and stromal regions, whereas activated MCs were enriched in stromal and tumor regions, with their proportion significantly elevated in tumor tissues. SCF activated MCs via the c-Kit pathway, promoting TNF-α release and tumor cell apoptosis. Spatial and cell-cell communication analyses revealed extensive MC interactions with stromal and immune cells. Activated MC abundance positively correlated with T-cell infiltration and favorable ESCC prognosis. Conclusions Our findings demonstrate that MCs exhibit distinct functional states in ESCC and regulate tumor progression. T-type-activated MCs, characterized by enhanced TNF-α expression, may contribute to anti-tumor immunity. These findings provide new insights into MC heterogeneity in ESCC and support their potential relevance in immunotherapy.

Yiren Huang, Zheyi Chen, Bingqian Zhou et al. · 0 citations