生物
导管癌
肿瘤微环境
转录组
计算生物学
癌症研究
基因组学
乳腺癌
肿瘤进展
血管生成
重编程
原位癌
癌
乳腺癌
原位
细胞生物学
功能基因组学
肿瘤异质性
癌症
转移
细胞迁移
作者
Di Wang,Qichen Dai,J Z Guo,Dan Li,Changyuan Guo,Peiqing Ma,Feng Wen,Xiangyu Tong,Changhao Gong,H-Y Cheng,Meng Li,Ranjiaxi Wang,Jianlin Liu,Jianlin Liu,Yingying Feng,Si Fan,Xiaoqian Shi,Qi Zhang,Xingmei Shu,Yu Sun
标识
DOI:10.1038/s41467-026-74954-5
摘要
The progression from ductal carcinoma in situ (DCIS) to invasive breast carcinoma (IBC) critically determines patient outcomes, yet its mechanisms remain incompletely understood. Integrating single-cell RNA sequencing, spatial transcriptomics, and genomics across 28 patients with synchronous DCIS and IBC, we delineate the spatial-molecular hierarchy of this transition. Invasion is primarily driven by clonal expansion of pre-existing DCIS subclones, emphasizing transcriptional reprogramming and tumor microenvironment (TME) remodeling over acquisition of additional driver alterations. IBC cells exhibit pronounced epithelial-mesenchymal transition and metabolic reprogramming. We uncover dynamic TME remodeling at the invasive front, identifying key ligand–receptor interactions (e.g., PPIA-BSG, MDK-LRP1, CXCL12-CXCR4) facilitating basement membrane disruption, angiogenesis and immunosuppression. Deconvolution of basement membrane breach reveals four molecularly defined stages (NMFT1–NMFT4) with progressively worsening patient survival. This study establishes a unified spatial-molecular atlas of DCIS-IBC progression, highlighting clonal expansion, transcriptional plasticity and TME remodeling as key drivers of invasion. The progression from ductal carcinoma in situ (DCIS) to invasive breast carcinoma (IBC) is not fully understood yet. Here, the authors integrate single-cell RNA-seq, spatial transcriptomics, and genomics data from patients with synchronous DCIS and IBC; they find clonal expansion, transcriptional plasticity, and tumour microenvironment remodelling as key drivers of DCIS-IBC progression.
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