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Garcia-Jimenez, C.

Publications and source records attributed to Garcia-Jimenez, C..

3 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↗

Functional specialization of MITF, TFEB and TFE3 drives radically distinct adaptive gene expression programs in melanoma.

Cells can contain multiple related transcription factors targeting the same sequences, leading to potential regulatory cooperativity, redundancy, competition or temporally regulated factor exchange. Yet the differential biological functions of co-targeting transcription factors are poorly understood. In melanoma, three highly related transcription factors are co-expressed: The mTORC1-regulated TFEB and TFE3, key effectors of a wide range of metabolic and microenvironmental cues assumed to perform similar functions; and MITF, that controls melanoma phenotypic identity. Here we reveal the functional specialization of MITF, TFE3 and TFEB and their impact on melanoma progression. Notably, although all bind the same sequences, each regulates different and frequently opposing gene expression programs to coordinate differentiation, metabolism, and protein synthesis, and qualitatively and quantitatively impact tumor immune infiltration. The results uncover a hierarchical cascade whereby microenvironmental stresses, including glucose limitation, lead MITF, TFEB and TFE3 to drive distinct biologically important transcription programs that underpin phenotypic transitions in cancer.

cancer biology↗

SIRT1 mediates the antagonism of Wnt/β-catenin pathway by vitamin D in colon carcinoma cells.

Cancer initiation and progression result from both genetic alterations and epigenetic reprograming caused by environmental or endogenous factors which can lead to aberrant cell signalling. Most colorectal cancers (CRC) are linked to the abnormal activation of the Wnt/ {beta}-catenin pathway, whose key feature is the accumulation of acetylated {beta}-catenin protein within the nucleus of colon epithelial cells. Nuclear {beta}- catenin acts as a transcriptional co-activator that alters the expression of many target genes involved in cell proliferation and invasion. The most active vitamin D metabolite 1,25-dihydroxyvitamin D3 (1,25(OH)2D3, calcitriol) can antagonize the over-activated Wnt/ {beta}-catenin pathway via binding to its high affinity receptor VDR. Here, we show that the activation of the SIRT1 deacetylase by 1,25(OH)2D3-bound VDR promotes deacetylation and nuclear exclusion of {beta}-catenin and, consequently, the downregulation of its pro-tumorigenic target genes and the inhibition of human colon carcinoma cell proliferation. Notably, orthogonal SIRT1 activation systematically drives nuclear exclusion of {beta}-catenin, highlighting the key role of SIRT1 in CRC. Since nuclear localization of {beta}-catenin is a critical driver of CRC initiation and progression that requires its acetylation, our results provide a mechanistic basis for the epidemiological evidence linking vitamin D deficiency and increased CRC risk and mortality.

cancer biology↗