Mitochondria redistribution organizes the immunosuppressive tumor ecosystem
Terasaki, A.; Weiner, A. T.; Tan, Y.; Szeifert, V.; Bhatnagar, K.; Rada, C. C.; Shankar, V.; Kernick, C.; Mahmood, M.; Wiggers, L.; Rodrigues, V. R.; Gammage, P. A.; Roth, T.; Axelrod, J. D.; Engleman, E.; Li, B.; Okwan-Duodu, D.
Show abstract
Hostile conditions in the tumor microenvironment restrict cellular respiration, yet mitochondrial metabolism remains indispensable for tumor growth and the activity of immunosuppressive cells. How tumor ecosystems sustain mitochondrial output has been unclear. Here, we show that cancer cells resolve this paradox by acting as hubs of intercellular mitochondrial redistribution. Using mitochondrial reporter systems, we demonstrate that cancer cells import host-derived mitochondria, integrate them into their endogenous network, and subsequently relay these hybrid organelles to neighboring immune cells. Mitochondria redistribution reprograms recipient neutrophils, macrophages, and CD4+ T cells into highly suppressive states but drives CD8+ T cell exhaustion. Within cancer cells, fusion of incoming mitochondria induces filamentous P5CS assembly, enhances biosynthetic output, and enables the refurbishment of damaged organelles into fully functional units. Disrupting mitochondrial redistribution collapses the immunosuppressive ecosystem and impairs tumor growth. Thus, cancer cells do not hoard resources but orchestrate a redistribution program that fortifies their own metabolic resilience, derails anti-tumor immunity, and sustains immunosuppressive partners. HIGHLIGHTSO_LITumor cells regulate their ecosystem by redistributing mitochondria C_LIO_LIRedistributed mitochondria expand immunosuppressive cells but exhausts CD8+ T cells C_LIO_LIMitochondria fusion within cancer cells, which precedes redistribution, optimizes metabolic output by triggering conformational changes in P5CS C_LIO_LIMitochondria fusion allows cancer cells to incorporate and refurbish seemingly incompetent host-derived mitochondria, improving efficiency in the tumor ecosystem C_LI
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
Similar papers in this journal
- Cancer-associated fibroblast compositions change with breast cancer progression linking S100A4 and PDPN ratios with clinical outcome 97%
- Selenocysteine tRNA methylation promotes oxidative stress resistance in melanoma metastasis 95%
- Cell lineage as a predictor of immune response in neuroblastoma 95%
Similar papers in this journal
- Laterally transferred macrophage mitochondria acts as a signaling source promoting cancer cell proliferation 96%
- Clonal transcriptomics identifies mechanisms of chemoresistance and empowers rational design of combination therapies. 95%
- Secreted antigen A peptidoglycan hydrolase is essential for Enterococcus faecium cell separation and priming of immune checkpoint inhibitor cancer therapy 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.