FAHD1 and mitochondrial metabolism: a decade of pioneering discoveries.

Elia Cappuccio, Max Holzknecht, Michèle Petit, Anne Heberle, Yana Rytchenko, Athanasios Seretis, Ciro L Pierri, Hubert Gstach, Pidder Jansen-Dürr, Alexander K H Weiss
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Abstract

This review consolidates a decade of research on fumarylacetoacetate hydrolase domain containing protein 1 (FAHD1), a mitochondrial oxaloacetate tautomerase and decarboxylase with profound implications in cellular metabolism. Despite its critical role as a regulator in mitochondrial metabolism, FAHD1 has remained an often-overlooked enzyme in broader discussions of mitochondrial function. After more than 12 years of research, it is increasingly clear that FAHD1's contributions to cellular metabolism, oxidative stress regulation, and disease processes such as cancer and aging warrant recognition in both textbooks and comprehensive reviews. The review delves into the broader implications of FAHD1 in mitochondrial function, emphasizing its roles in mitigating reactive oxygen species (ROS) levels and regulating complex II activity, particularly in cancer cells. This enzyme's significance is further highlighted in the context of aging, where FAHD1's activity has been shown to influence cellular senescence, mitochondrial quality control, and the aging process. Moreover, FAHD1's involvement in glutamine metabolism and its impact on cancer cell proliferation, particularly in aggressive breast cancer subtypes, underscores its potential as a therapeutic target. In addition to providing a comprehensive account of FAHD1's biochemical properties and structural insights, the review integrates emerging hypotheses regarding its role in metabolic reprogramming, immune regulation, and mitochondrial dynamics. By establishing a detailed understanding of FAHD1's physiological roles and therapeutic potential, this work advocates for FAHD1's recognition in foundational texts and resources, marking a pivotal step in its integration into mainstream metabolic research and clinical applications in treating metabolic disorders, cancer, and age-related diseases.

FAHD1和线粒体代谢:十年的开创性发现。
本文综述了近十年来关于富马酰乙酸水解酶结构域蛋白1 (FAHD1)的研究进展,FAHD1是一种线粒体草酰乙酸自变性酶和脱羧酶,在细胞代谢中具有重要意义。尽管FAHD1在线粒体代谢中起着关键的调节作用,但在线粒体功能的广泛讨论中,FAHD1仍然是一个经常被忽视的酶。经过12年多的研究,越来越清楚的是,FAHD1对细胞代谢、氧化应激调节和疾病过程(如癌症和衰老)的贡献值得在教科书和综合综述中得到认可。该综述深入探讨了FAHD1在线粒体功能中的广泛意义,强调了其在减轻活性氧(ROS)水平和调节复合物II活性方面的作用,特别是在癌细胞中。这种酶的重要性在衰老的背景下得到进一步强调,FAHD1的活性已被证明影响细胞衰老、线粒体质量控制和衰老过程。此外,FAHD1参与谷氨酰胺代谢及其对癌细胞增殖的影响,特别是在侵袭性乳腺癌亚型中,强调了其作为治疗靶点的潜力。除了全面介绍FAHD1的生化特性和结构外,该综述还整合了有关其在代谢重编程、免疫调节和线粒体动力学中的作用的新兴假设。通过详细了解FAHD1的生理作用和治疗潜力,本工作倡导FAHD1在基础文献和资源中得到认可,标志着FAHD1融入主流代谢研究和临床应用于治疗代谢紊乱、癌症和年龄相关疾病的关键一步。
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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