Comprehensive Overview of Ketone Bodies in Cancer Metabolism: Mechanisms and Application.

IF 3.9 3区 工程技术 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Biomedicines Pub Date : 2025-01-16 DOI:10.3390/biomedicines13010210
Ziyuan Liang, Lixian Deng, Xiaoying Zhou, Zhe Zhang, Weilin Zhao
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Abstract

Reprogramming energy metabolism is pivotal to tumor development. Ketone bodies (KBs), which are generated during lipid metabolism, are fundamental bioactive molecules that can be modulated to satisfy the escalating metabolic needs of cancer cells. At present, a burgeoning body of research is concentrating on the metabolism of KBs within tumors, investigating their roles as signaling mediators, drivers of post-translational modifications, and regulators of inflammation and oxidative stress. The ketogenic diet (KD) may enhance the sensitivity of various cancers to standard therapies, such as chemotherapy and radiotherapy, by exploiting the reprogrammed metabolism of cancer cells and shifting the metabolic state from glucose reliance to KB utilization, rendering it a promising candidate for adjunct cancer therapy. Nonetheless, numerous questions remain regarding the expression of key metabolic genes across different tumors, the regulation of their activities, and the impact of individual KBs on various tumor types. Further investigation is imperative to resolve the conflicting data concerning KB synthesis and functionality within tumors. This review aims to encapsulate the intricate roles of KBs in cancer metabolism, elucidating a comprehensive grasp of their mechanisms and highlighting emerging clinical applications, thereby setting the stage for future investigations into their therapeutic potential.

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酮体在肿瘤代谢中的研究综述:机制与应用。
重编程能量代谢是肿瘤发展的关键。酮体(KBs)是在脂质代谢过程中产生的基本生物活性分子,可以通过调节来满足癌细胞不断升级的代谢需求。目前,一项新兴的研究正集中在肿瘤中KBs的代谢,研究它们作为信号介质、翻译后修饰的驱动因素以及炎症和氧化应激的调节剂的作用。生酮饮食(KD)可以通过利用癌细胞的重编程代谢,将代谢状态从依赖葡萄糖转变为利用KB,从而提高各种癌症对标准疗法(如化疗和放疗)的敏感性,使其成为辅助癌症治疗的有希望的候选者。尽管如此,关于关键代谢基因在不同肿瘤中的表达、它们的活动调控以及个体KBs对不同肿瘤类型的影响,仍存在许多问题。进一步的研究是必要的,以解决有关KB合成和肿瘤内功能的相互矛盾的数据。本综述旨在概括KBs在癌症代谢中的复杂作用,阐明其机制的全面掌握,并强调新兴的临床应用,从而为未来研究其治疗潜力奠定基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomedicines
Biomedicines Biochemistry, Genetics and Molecular Biology-General Biochemistry,Genetics and Molecular Biology
CiteScore
5.20
自引率
8.50%
发文量
2823
审稿时长
8 weeks
期刊介绍: Biomedicines (ISSN 2227-9059; CODEN: BIOMID) is an international, scientific, open access journal on biomedicines published quarterly online by MDPI.
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