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Jociles-Ortega, M.

Publications and source records attributed to Jociles-Ortega, M..

2 recordsLinked to original sources

Metabolic buffering suppresses phenotype switching in cancer

The impact of the microenvironment on epigenetically plastic cancer cells underpins phenotypic heterogeneity, a major cause of metastatic dissemination and therapy resistance that together represent the primary cause of cancer-related death. Nutrient limitation is a key microenvironmental stress that can cause a phenotypic transition from proliferation to invasion via activation of the integrated stress response. However, whether and how the capacity to store and mobilize nutrients impacts phenotype-switching through metabolic buffering remains unknown. Here, using melanoma as a model, we reveal that the ability to accumulate and mobilize glycogen, that buffers glucose availability, plays a key role in phenotypic transitions in melanoma. While proliferative phenotype cells exhibit high levels of glycogen, invasion is marked by low glycogen levels. Significantly, an inability to store and metabolize glycogen leads to phenotype instability and a switch to invasion. Accordingly, glycogen levels inversely correlate with Clark levels in primary melanomas, with low expression of the glycogen phosphorylases PYGB/L and phosphoglucomutase 1 (PGM1) being associated with worse overall survival. The importance of metabolic buffering in suppressing phenotypic transitions likely extrapolates to other cancer types. HighlightsO_LIMelanoma phenotypes are distinguished by their ability to store and mobilize glycogen. C_LIO_LIProliferative MITFHigh melanoma cells store glycogen to improve survival under stressful conditions. C_LIO_LIInhibition of glycogen degradation impairs proliferation in MITFHigh melanoma cells. C_LIO_LILack of PGM1 drives invasion and metastatic dissemination. C_LI

cancer biology↗

Phenotype-specific melanoma uptake of fatty acid from human adipocytes activates AXL and CAV1-dependent beta-catenin nuclear accumulation

Phenotypic diversity of cancer cells within tumors generated through bi-directional interactions with the tumor microenvironment has emerged as a major driver of disease progression and therapy resistance. Nutrient availability plays a critical role in determining phenotype, but whether specific nutrients elicit different responses on distinct phenotypes is poorly understood. Here we show, using melanoma as a model, that only MITFLow undifferentiated cells, but not MITFHigh cells, are competent to drive lipolysis in human adipocytes. In contrast to MITFHigh melanomas, adipocyte-derived free fatty acids are taken up by undifferentiated MITFLow cells via a fatty acid transporter (FATP)-independent mechanism. Importantly, oleic acid (OA), a monounsaturated long chain fatty acid abundant in adipose tissue and lymph, reprograms MITFLow undifferentiated melanoma cells to a highly invasive state by ligand-independent activation of AXL, a receptor tyrosine kinase associated with therapy resistance in a wide range of cancers. AXL activation by OA then drives SRC-dependent formation and nuclear translocation of a {beta}-catenin-CAV1 complex. The results highlight how a specific nutritional input drives phenotype-specific activation of a pro-metastasis program with implications for FATP-targeted therapies.

cancer biology↗