Distinct tumor architectures and microenvironments for the initiation of breast cancer metastasis in the brain

Published: 12 September 2024| Version 1 | DOI: 10.17632/4nhh9cp6xw.1
Contributors:
Siting Gan, Danilo G. Macalinao, Sayyed Hamed Shahoei, Lin Tian, Xin Jin, Harihar Basnet, Catherine Bibby, James T. Muller, Pranita Atri, Evan Seffar, Walid Chatila, Ali Karacay, Pharto Chanda, Anna-Katerina Hadjantonakis, Nikolaus Schultz, Edi Brogi, Tejus A. Bale, Nelson S. Moss, Rajmohan Murali, Dana Peer, Joan Massague

Description

Original data in the main and supplemental figures of Gan et al., Cancer Cell 2024. Summary of the study: Brain metastasis, a serious complication of cancer, hinges on the initial survival, microenvironment adaptation, and outgrowth of disseminated cancer cells. To understand the early stages of brain colonization, we investigated two prevalent sources of cerebral relapse, triple-negative (TNBC) and HER2+ (HER2BC) breast cancers. Using mouse models and human tissue samples, we found that these tumor types colonize the brain, with a preference for distinctive tumor architectures, stromal interfaces, and autocrine programs. TNBC models tend to form perivascular sheaths with diffusive contact with astrocytes and microglia. In contrast, HER2BC models tend to form compact spheroids driven by autonomous tenascin C production, segregating stromal cells to the periphery. Single-cell transcriptomics of the tumor microenvironment revealed that these architectures evoke differential Alzheimer’s disease-associated microglia (DAM) responses and engagement of the GAS6 receptor AXL. The spatial features of the two modes of brain colonization have relevance for leveraging the stroma to treat brain metastasis.

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Institutions

Memorial Sloan Kettering Cancer Center

Categories

Breast Cancer, Metastasis, Real-Time Polymerase Chain Reaction, Biochemical Assay, Mouse Study, Image Quantification, Cell-Based Assays

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