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Fatty Acid Oxidation Mediated by Malonyl-CoA Decarboxylase Represses Renal Cell Carcinoma Progression

Fatty acid metabolism reprogramming is a prominent feature of clear cell renal cell carcinoma (ccRCC). Increased lipid storage supports ccRCC progression, highlighting the importance of understanding the molecular mechanisms driving altered fatty acid synthesis in tumors. Here, we identified that ma...

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Autores principales: Zhou, Lijie, Luo, Yongbo, Liu, Yuenan, Zeng, Youmiao, Tong, Junwei, Li, Mengting, Hou, Yaxin, Du, Kaixuan, Qi, Yabin, Pan, Wenbang, Liu, Yuanhao, Wang, Rongli, Tian, Fengyan, Gu, Chaohui, Chen, Ke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for Cancer Research 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10690093/
https://www.ncbi.nlm.nih.gov/pubmed/37729394
http://dx.doi.org/10.1158/0008-5472.CAN-23-0969
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author Zhou, Lijie
Luo, Yongbo
Liu, Yuenan
Zeng, Youmiao
Tong, Junwei
Li, Mengting
Hou, Yaxin
Du, Kaixuan
Qi, Yabin
Pan, Wenbang
Liu, Yuanhao
Wang, Rongli
Tian, Fengyan
Gu, Chaohui
Chen, Ke
author_facet Zhou, Lijie
Luo, Yongbo
Liu, Yuenan
Zeng, Youmiao
Tong, Junwei
Li, Mengting
Hou, Yaxin
Du, Kaixuan
Qi, Yabin
Pan, Wenbang
Liu, Yuanhao
Wang, Rongli
Tian, Fengyan
Gu, Chaohui
Chen, Ke
author_sort Zhou, Lijie
collection PubMed
description Fatty acid metabolism reprogramming is a prominent feature of clear cell renal cell carcinoma (ccRCC). Increased lipid storage supports ccRCC progression, highlighting the importance of understanding the molecular mechanisms driving altered fatty acid synthesis in tumors. Here, we identified that malonyl-CoA decarboxylase (MLYCD), a key regulator of fatty acid anabolism, was downregulated in ccRCC, and low expression correlated with poor prognosis in patients. Restoring MLYCD expression in ccRCC cells decreased the content of malonyl CoA, which blocked de novo fatty acid synthesis and promoted fatty acid translocation into mitochondria for oxidation. Inhibition of lipid droplet accumulation induced by MLYCD-mediated fatty acid oxidation disrupted endoplasmic reticulum and mitochondrial homeostasis, increased reactive oxygen species levels, and induced ferroptosis. Moreover, overexpressing MLYCD reduced tumor growth and reversed resistance to sunitinib in vitro and in vivo. Mechanistically, HIF2α inhibited MLYCD translation by upregulating expression of eIF4G3 microexons. Together, this study demonstrates that fatty acid catabolism mediated by MLYCD disrupts lipid homeostasis to repress ccRCC progression. Activating MLYCD-mediated fatty acid metabolism could be a promising therapeutic strategy for treating ccRCC. SIGNIFICANCE: MLYCD deficiency facilitates fatty acid synthesis and lipid droplet accumulation to drive progression of renal cell carcinoma, indicating inducing MYLCD as a potential approach to reprogram fatty acid metabolism in kidney cancer.
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spelling pubmed-106900932023-12-02 Fatty Acid Oxidation Mediated by Malonyl-CoA Decarboxylase Represses Renal Cell Carcinoma Progression Zhou, Lijie Luo, Yongbo Liu, Yuenan Zeng, Youmiao Tong, Junwei Li, Mengting Hou, Yaxin Du, Kaixuan Qi, Yabin Pan, Wenbang Liu, Yuanhao Wang, Rongli Tian, Fengyan Gu, Chaohui Chen, Ke Cancer Res Cancer Metabolism and Molecular Mechanisms Fatty acid metabolism reprogramming is a prominent feature of clear cell renal cell carcinoma (ccRCC). Increased lipid storage supports ccRCC progression, highlighting the importance of understanding the molecular mechanisms driving altered fatty acid synthesis in tumors. Here, we identified that malonyl-CoA decarboxylase (MLYCD), a key regulator of fatty acid anabolism, was downregulated in ccRCC, and low expression correlated with poor prognosis in patients. Restoring MLYCD expression in ccRCC cells decreased the content of malonyl CoA, which blocked de novo fatty acid synthesis and promoted fatty acid translocation into mitochondria for oxidation. Inhibition of lipid droplet accumulation induced by MLYCD-mediated fatty acid oxidation disrupted endoplasmic reticulum and mitochondrial homeostasis, increased reactive oxygen species levels, and induced ferroptosis. Moreover, overexpressing MLYCD reduced tumor growth and reversed resistance to sunitinib in vitro and in vivo. Mechanistically, HIF2α inhibited MLYCD translation by upregulating expression of eIF4G3 microexons. Together, this study demonstrates that fatty acid catabolism mediated by MLYCD disrupts lipid homeostasis to repress ccRCC progression. Activating MLYCD-mediated fatty acid metabolism could be a promising therapeutic strategy for treating ccRCC. SIGNIFICANCE: MLYCD deficiency facilitates fatty acid synthesis and lipid droplet accumulation to drive progression of renal cell carcinoma, indicating inducing MYLCD as a potential approach to reprogram fatty acid metabolism in kidney cancer. American Association for Cancer Research 2023-12-01 2023-09-20 /pmc/articles/PMC10690093/ /pubmed/37729394 http://dx.doi.org/10.1158/0008-5472.CAN-23-0969 Text en ©2023 The Authors; Published by the American Association for Cancer Research https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0) license.
spellingShingle Cancer Metabolism and Molecular Mechanisms
Zhou, Lijie
Luo, Yongbo
Liu, Yuenan
Zeng, Youmiao
Tong, Junwei
Li, Mengting
Hou, Yaxin
Du, Kaixuan
Qi, Yabin
Pan, Wenbang
Liu, Yuanhao
Wang, Rongli
Tian, Fengyan
Gu, Chaohui
Chen, Ke
Fatty Acid Oxidation Mediated by Malonyl-CoA Decarboxylase Represses Renal Cell Carcinoma Progression
title Fatty Acid Oxidation Mediated by Malonyl-CoA Decarboxylase Represses Renal Cell Carcinoma Progression
title_full Fatty Acid Oxidation Mediated by Malonyl-CoA Decarboxylase Represses Renal Cell Carcinoma Progression
title_fullStr Fatty Acid Oxidation Mediated by Malonyl-CoA Decarboxylase Represses Renal Cell Carcinoma Progression
title_full_unstemmed Fatty Acid Oxidation Mediated by Malonyl-CoA Decarboxylase Represses Renal Cell Carcinoma Progression
title_short Fatty Acid Oxidation Mediated by Malonyl-CoA Decarboxylase Represses Renal Cell Carcinoma Progression
title_sort fatty acid oxidation mediated by malonyl-coa decarboxylase represses renal cell carcinoma progression
topic Cancer Metabolism and Molecular Mechanisms
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10690093/
https://www.ncbi.nlm.nih.gov/pubmed/37729394
http://dx.doi.org/10.1158/0008-5472.CAN-23-0969
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