Stage-spanning single-cell mapping reveals a T1 vascular–immune barrier linked to BCG response in bladder cancer

T1-stage bladder cancer represents a critical transition in disease progression and BCG responsiveness, yet its microenvironmental basis remains poorly defined. We constructed a stage-spanning single-cell atlas of human bladder cancer and integrated tissue validation with an orthotopic rat model. We identify T1 as a vascular–immune transition state characterized by expansion of CXCR4⁺ tip endothelial cells, metabolically activated pericytes, and SPP1-associated macrophages. CXCR4⁺ endothelium showed strong angiogenic activity but low adhesion molecule expression, forming a vascularly restrictive niche associated with reduced T-cell access and supported by VEGF signals from hypoxia-associated MT1X⁺ macrophages. Concurrently, CXCL13⁺ T cells and TLS-associated B-cell programs emerged at T1, but mature TLSs were preferentially enriched in BCG responders, whereas CXCR4⁺ tip endothelial cells were enriched in non-responders. Pharmacologic targeting of VEGFR/PDGFR signaling with sunitinib enhanced BCG efficacy in vivo. Together, this atlas defines a T1-stage vascular–immunosuppressive niche linking vascular remodeling, immune accessibility, TLS maturation, and BCG responsiveness, providing a mechanistic basis for overcoming BCG resistance.

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Journal
Journal of Translational Medicine
Published
2026-09-24
DOI
https://doi.org/10.1186/s12967-026-09023-y
Primary Topic
Single-cell and spatial transcriptomics
Type
article
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article

Stage-spanning single-cell mapping reveals a T1 vascular–immune barrier linked to BCG response in bladder cancer

Zhiqun Shang, Liwei Liu, Hengqing An, Chun Wang et al.
Journal of Translational Medicine
Single-cell and spatial transcriptomics
article

Stage-spanning single-cell mapping reveals a T1 vascular–immune barrier linked to BCG response in bladder cancer

Zhiqun Shang, Liwei Liu, Hengqing An, Chun Wang, Yi Shao, Boyu Yang, Shengju Song, Zhao Yang, Hongli Zhang, Yuanjun Wei, Tao Liu, Jing Tian, Peng Li, Hailong Hu, Songyang Li, Cheng Fang, Yilei Lu
article en

Abstract

T1-stage bladder cancer represents a critical transition in disease progression and BCG responsiveness, yet its microenvironmental basis remains poorly defined. We constructed a stage-spanning single-cell atlas of human bladder cancer and integrated tissue validation with an orthotopic rat model. We identify T1 as a vascular–immune transition state characterized by expansion of CXCR4⁺ tip endothelial cells, metabolically activated pericytes, and SPP1-associated macrophages. CXCR4⁺ endothelium showed strong angiogenic activity but low adhesion molecule expression, forming a vascularly restrictive niche associated with reduced T-cell access and supported by VEGF signals from hypoxia-associated MT1X⁺ macrophages. Concurrently, CXCL13⁺ T cells and TLS-associated B-cell programs emerged at T1, but mature TLSs were preferentially enriched in BCG responders, whereas CXCR4⁺ tip endothelial cells were enriched in non-responders. Pharmacologic targeting of VEGFR/PDGFR signaling with sunitinib enhanced BCG efficacy in vivo. Together, this atlas defines a T1-stage vascular–immunosuppressive niche linking vascular remodeling, immune accessibility, TLS maturation, and BCG responsiveness, providing a mechanistic basis for overcoming BCG resistance.

Journal of Translational Medicine
Xinjiang Medical University (CN), First Affiliated Hospital of Xinjiang Medical University (CN), Second Hospital of Tianjin Medical University (CN), Tianjin Medical University (CN)
Good health and well-being
Openalex Percentile: Top 19%
Single-cell and spatial transcriptomics
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