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Biology subjects

Kim, L. C.

Publications and source records attributed to Kim, L. C..

3 recordsLinked to original sources

Mitophagy Inhibition Promotes Survival and Mitochondrial Function in MYC-driven HCC

Hepatocellular carcinomas (HCC) are genetically heterogeneous cancers frequently characterized by MYC gene amplification or hyperactivating {beta}-catenin (CTNNB1) mutations. Analysis of TCGA transcriptomics revealed that MYC-driven HCC tumors have decreased expression of mtDNA-encoded genes, but increased expression of nuclear-encoded mitochondrial genes. To investigate this apparent discrepancy, we generated MYC- and CTNNB1-driven murine HCCs, all of which displayed aberrant mitochondrial metabolism. Notably, MYC-driven tumors exhibited significant reductions in OXPHOS and TCA cycle activity that correlated with increased ROS levels, as well as elevated mitochondrial turnover through mitochondrial fission and mitophagy. MYC induces the expression of nuclear respiratory factor 1 (NRF1), which regulates DRP1 and other genes to promote receptor-mediated mitophagy. Knocking out DRP1 reduced mitophagy and ROS levels and promoted survival of HCC-bearing mice. These results identify elevated mitochondrial turnover as a potential therapeutic target in MYC-driven HCC. SignificanceHepatocellular carcinoma can arise from multiple oncogenes, making targeted therapy more difficult. Here we show that tumors with MYC amplification lose mitochondrial function via fission and mitophagy upregulation. Targeting mitochondrial quality control results in increased survival suggesting a therapeutic window in MYC-driven HCC.

cancer biology↗

Argininosuccinate Synthase 1 links hepatic urea cycle to whole body lipid metabolism

The hepatic urea cycle is consistently suppressed in liver disease and hepatocellular carcinoma (HCC), but whether loss of individual enzymes contributes to disease initiation and progression remains unknown. Using mice with hepatocyte-specific deletion of argininosuccinate synthase 1 (ASS1), the urea cycle enzyme that condenses citrulline and aspartate into argininosuccinate, we investigated the role of ASS1 in diet and carcinogen-induced liver disease progression. We found that complete loss of hepatic Ass1 is lethal, but high fat diet extends lifespan. Unexpectedly, animals with approximately 85% loss of hepatic Ass1 are completed protected from diet-induced obesity, liver steatosis, fibrosis, and HCC. We determined that hepatic Ass1 loss activates fatty acid oxidation in peripheral oxidative tissues leading to increased energy expenditure and protection from disease phenotypes. Moreover, targeting Ass1 after obesity onset promotes weight loss and reverses liver steatosis. These findings implicate hepatic ASS1 as a novel regulator of whole-body lipid metabolism that can be targeted to prevent obesity, liver disease, and HCC.

cancer biology↗

Regulation of fatty acid delivery to metastases by tumor endothelium

Tumor metastasis, the main cause of death in cancer patients, requires outgrowth of tumor cells after their dissemination and residence in microscopic niches. Nutrient sufficiency is a determinant of such outgrowth1. Fatty acids (FA) can be metabolized by cancer cells for their energetic and anabolic needs but impair the cytotoxicity of T cells in the tumor microenvironment (TME)2, 3, thereby supporting metastatic progression. However, despite the important role of FA in metastatic outgrowth, the regulation of intratumoral FA is poorly understood. In this report, we show that tumor endothelium actively promotes tumor growth and restricts anti-tumor cytolysis by transferring FA into developing metastatic tumors. This process uses transendothelial fatty acid transport via endosome cargo trafficking in a mechanism that requires mTORC1 activity. Thus, tumor burden was significantly reduced upon endothelial-specific targeted deletion of Raptor, a unique component of the mTORC1 complex (RptorECKO). In vivo trafficking of a fluorescent palmitic acid analog to tumor cells and T cells was reduced in RptorECKO lung metastatic tumors, which correlated with improved markers of T cell cytotoxicity. Combination of anti-PD1 with RAD001/everolimus, at a low dose that selectively inhibits mTORC1 in endothelial cells4, impaired FA uptake in T cells and reduced metastatic disease, corresponding to improved anti-tumor immunity. These findings describe a novel mechanism of transendothelial fatty acid transfer into the TME during metastatic outgrowth and highlight a target for future development of therapeutic strategies.

cancer biology↗