Emerging roles for fatty acid oxidation in cancer

被引:1
作者
Ma, Jialin [1 ,2 ]
Wang, Shuxian [1 ]
Zhang, Pingfeng [1 ]
Zheng, Sihao [1 ]
Li, Xiangpan [1 ]
Li, Juanjuan [3 ]
Pei, Huadong [2 ]
机构
[1] Wuhan Univ, Renmin Hosp, Canc Ctr, Wuhan 430060, Hubei, Peoples R China
[2] Georgetown Univ, Georgetown Lombardi Comprehens Canc Ctr, Dept Oncol, Med Ctr, Washington, DC 20057 USA
[3] Wuhan Univ, Dept Breast & Thyroid Surg, Renmin Hosp, Wuhan 430060, Hubei, Peoples R China
关键词
Cancer progression; Drug resistance; Fatty acid oxidation; Metabolism reprogramming; Oncotherapy; BETA-OXIDATION; CARNITINE PALMITOYLTRANSFERASE; METABOLIC SWITCH; PYRUVATE-KINASE; CELL SURVIVAL; INHIBITION; MITOCHONDRIAL; HOMEOSTASIS; RESISTANCE; CARCINOMA;
D O I
10.1016/j.gendis.2024.101491
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Fatty acid oxidation (FAO) denotes the mitochondrial aerobic process responsible for breaking down fatty acids (FAs) into acetyl-CoA units. This process holds a central position in the cancer metabolic landscape, with certain tumor cells relying primarily on FAO for energy production. Over the past decade, mounting evidence has underscored the critical role of FAO in various cellular processes such as cell growth, epigenetic modifications, tissue-immune homeostasis, cell signal transduction, and more. FAO is tightly regulated by multiple evolutionarily conserved mechanisms, and any dysregulation can predispose to cancer development. In this view, we summarize recent findings to provide an updated understanding of the multifaceted roles of FAO in tumor development, metastasis, and the response to cancer therapy. Additionally, we explore the regulatory mechanisms of FAO, laying the groundwork for potential therapeutic interventions targeting FAO in cancers within the metabolic landscape. (c) 2025 The Authors. Publishing services by Elsevier B.V. on behalf of KeAi Communications Co., Ltd. This is an open access article under the CC BY license (http://creativecommons.org/ licenses/by/4.0/).
引用
收藏
页数:17
相关论文
共 169 条
[91]   Metabolic programming of distinct cancer stem cells promotes metastasis of pancreatic ductal adenocarcinoma [J].
Nimmakayala, Rama Krishna ;
Leon, Frank ;
Rachagani, Satyanarayana ;
Rauth, Sanchita ;
Nallasamy, Palanisamy ;
Marimuthu, Saravanakumar ;
Shailendra, Gautam K. ;
Chhonker, Yashpal S. ;
Chugh, Seema ;
Chirravuri, Ramakanth ;
Gupta, Rohitesh ;
Mallya, Kavita ;
Prajapati, Dipakkumar R. ;
Lele, Subodh M. ;
C. Caffrey, Thomas ;
L. Grem, Jean ;
Grandgenett, Paul M. ;
Hollingsworth, Michael A. ;
Murry, Daryl J. ;
Batra, Surinder K. ;
Ponnusamy, Moorthy P. .
ONCOGENE, 2021, 40 (01) :215-231
[92]   Simultaneous inhibition of Sirtuin 3 and cholesterol homeostasis targets acute myeloid leukemia stem cells by perturbing fatty acid β-oxidation and inducing lipotoxicity [J].
O'Brien, Cristiana ;
Ling, Tianyi ;
Berman, Jacob M. ;
Culp-Hill, Rachel ;
Reisz, Julie A. ;
Rondeau, Vincent ;
Jahangiri, Soheil ;
St-Germain, Jonathan ;
Macwan, Vinitha ;
Astori, Audrey ;
Zeng, Andy ;
Hong, Jun Young ;
Li, Meng ;
Yang, Min ;
Jana, Sadhan ;
Gamboni, Fabia ;
Tsao, Emily ;
Liu, Weiyi ;
Dick, John E. ;
Lin, Hening ;
Melnick, Ari ;
Tikhonova, Anastasia ;
Arruda, Andrea ;
Minden, Mark D. ;
Raught, Brian ;
D'Alessandro, Angelo ;
Jones, Courtney L. .
HAEMATOLOGICA, 2023, 108 (09) :2343-2357
[93]   PD-1 alters T-cell metabolic reprogramming by inhibiting glycolysis and promoting lipolysis and fatty acid oxidation [J].
Patsoukis, Nikolaos ;
Bardhan, Kankana ;
Chatterjee, Pranam ;
Sari, Duygu ;
Liu, Bianling ;
Bell, Lauren N. ;
Karoly, Edward D. ;
Freeman, Gordon J. ;
Petkova, Victoria ;
Seth, Pankaj ;
Li, Lequn ;
Boussiotis, Vassiliki A. .
NATURE COMMUNICATIONS, 2015, 6
[94]   Tumor glycolysis, an essential sweet tooth of tumor cells [J].
Paul, Sumana ;
Ghosh, Saikat ;
Kumar, Sushil .
SEMINARS IN CANCER BIOLOGY, 2022, 86 :1216-1230
[95]   The hallmarks of cancer metabolism: Still emerging [J].
Pavlova, Natalya N. ;
Zhu, Jiajun ;
Thompson, Craig B. .
CELL METABOLISM, 2022, 34 (03) :355-377
[96]   Enhancing cancer-associated fibroblast fatty acid catabolism within a metabolically challenging tumor microenvironment drives colon cancer peritoneal metastasis [J].
Peng, Shaoyong ;
Chen, Daici ;
Cai, Jian ;
Yuan, Zixu ;
Huang, Binjie ;
Li, Yichen ;
Wang, Huaiming ;
Luo, Qianxin ;
Kuang, Yingyi ;
Liang, Wenfeng ;
Liu, Zhihang ;
Wang, Qian ;
Cui, Yanmei ;
Wang, Hui ;
Liu, Xiaoxia .
MOLECULAR ONCOLOGY, 2021, 15 (05) :1391-1411
[97]   Isothermal titration calorimetry with micelles: Thermodynamics of inhibitor binding to carnitine palmitoyltransferase 2 membrane protein [J].
Perspicace, Samantha ;
Rufer, Arne C. ;
Thoma, Ralf ;
Mueller, Francis ;
Hennig, Michael ;
Ceccarelli, Simona ;
Schulz-Gasch, Tanja ;
Seelig, Joachim .
FEBS OPEN BIO, 2013, 3 :204-211
[98]   Adiponectin triggers breast cancer cell death via fatty acid metabolic reprogramming [J].
Pham, Duc-Vinh ;
Park, Pil-Hoon .
JOURNAL OF EXPERIMENTAL & CLINICAL CANCER RESEARCH, 2022, 41 (01)
[99]   Mitochondrial protein acetylation is driven by acetyl-CoA from fatty acid oxidation [J].
Pougovkina, Olga ;
te Brinke, Heleen ;
Ofman, Rob ;
van Cruchten, Arno G. ;
Kulik, Wim ;
Wanders, Ronald J. A. ;
Houten, Sander M. ;
de Boer, Vincent C. J. .
HUMAN MOLECULAR GENETICS, 2014, 23 (13) :3513-3522
[100]   Acyl-CoA synthetase long-chain 3-mediated fatty acid oxidation is required for TGFβ1-induced epithelial-mesenchymal transition and metastasis of ecolorectal carcinoma [J].
Quan, Jing ;
Cheng, Can ;
Tan, Yue ;
Jiang, Nian ;
Liao, Chaoliang ;
Liao, Weihua ;
Cao, Ya ;
Luo, Xiangjian .
INTERNATIONAL JOURNAL OF BIOLOGICAL SCIENCES, 2022, 18 (06) :2484-2496