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bioRxiv · 10.64898/2026.08.31.748298

Highly plastic macrophage niches orchestrate acquired quiescence and reactivation in breast-cancer bone metastasis

Abstract

Recurrence and metastasis remain major causes of cancer mortality, sustained by therapy-resistant micrometastatic cells. Bone is a frequent site of breast-cancer relapse, yet the cues that reawaken disseminated cells remain poorly defined. We identify a previously unrecognized, highly plastic CXCL16 macrophage population that integrates tumor-associated macrophage programs found in distant metastatic sites such as lung and brain with non-tumor disease-associated traits in bone marrow. These CXCL16 macrophages establish a transient niche that restrains disseminated cancer-cell proliferation. Single-cell transcriptomics delineate functional remodeling of myeloid niches within the bone metastatic microenvironment: a CXCL16 macrophage niche that transiently constrains metastatic growth, and G-CSF macrophage and neutrophil niches that reignite tumor outgrowth. In primary tumors, cancer-associated fibroblasts (CAFs) aberrantly secrete G-CSF in response to cancer-cell signals, expanding G-CSF-receptor-positive subset of cancer cells with high metastatic potential. In advanced human bone metastases, CXCL16 macrophages localize to CAF-rich stroma but are excluded from cancer-cell clusters, indicating immune evasion. Together, these findings uncover CAF-bone-marrow cross-talk as a therapeutic target linking stromal inflammation, immune remodeling, and metastatic progression.

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BibTeXRIS

Takeuchi, Y., Zhang, H., Murayama, T., Hongu, T., Ikeda, K., Horie, K., Inoue, S., Yano, M., Tanabe, M., Kurokawa, Y., Terakawa, H., Inaki, N., Tada, K.-i., Susaki, E. A., Hirata, E., Tsukamoto, S.-i., Horie, M., Watarai, H., Okamoto, K., Sato, S., Miyagi, Y., Arai, F., Suda, T., Tojo, A., Clevers, H., Tammela, T., Gotoh, N.. 2026-09-01. Highly plastic macrophage niches orchestrate acquired quiescence and reactivation in breast-cancer bone metastasis. https://doi.org/10.64898/2026.08.31.748298

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