Mitochondrial transfer in tunneling nanotubes—a new target for cancer therapy

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Abstract

A century ago, the Warburg effect was first proposed, revealing that cancer cells predominantly rely on glycolysis during the process of tumorigenesis, even in the presence of abundant oxygen, shifting the main pathway of energy metabolism from the tricarboxylic acid cycle to aerobic glycolysis. Recent studies have unveiled the dynamic transfer of mitochondria within the tumor microenvironment, not only between tumor cells but also between tumor cells and stromal cells, immune cells, and others. In this review, we explore the pathways and mechanisms of mitochondrial transfer within the tumor microenvironment, as well as how these transfer activities promote tumor aggressiveness, chemotherapy resistance, and immune evasion. Further, we discuss the research progress and potential clinical significance targeting these phenomena. We also highlight the therapeutic potential of targeting intercellular mitochondrial transfer as a future anti-cancer strategy and enhancing cell-mediated immunotherapy. Graphical Abstract: (Figure presented.)

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Guan, F., Wu, X., Zhou, J., Lin, Y., He, Y., Fan, C., … Xiong, W. (2024, December 1). Mitochondrial transfer in tunneling nanotubes—a new target for cancer therapy. Journal of Experimental and Clinical Cancer Research. BioMed Central Ltd. https://doi.org/10.1186/s13046-024-03069-w

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