Mahé Mélanie, Rios-Fuller Tiffany J, Karolin Andrea, Schneider Robert J
Department of Microbiology, Grossman NYU School of Medicine, New York, NY, United States.
Front Oncol. 2023 Aug 2;13:1230934. doi: 10.3389/fonc.2023.1230934. eCollection 2023.
Inherited metabolic disorders arise from mutations in genes involved in the biogenesis, assembly, or activity of metabolic enzymes, leading to enzymatic deficiency and severe metabolic impairments. Metabolic enzymes are essential for the normal functioning of cells and are involved in the production of amino acids, fatty acids and nucleotides, which are essential for cell growth, division and survival. When the activity of metabolic enzymes is disrupted due to mutations or changes in expression levels, it can result in various metabolic disorders that have also been linked to cancer development. However, there remains much to learn regarding the relationship between the dysregulation of metabolic enzymes and metabolic adaptations in cancer cells. In this review, we explore how dysregulated metabolism due to the alteration or change of metabolic enzymes in cancer cells plays a crucial role in tumor development, progression, metastasis and drug resistance. In addition, these changes in metabolism provide cancer cells with a number of advantages, including increased proliferation, resistance to apoptosis and the ability to evade the immune system. The tumor microenvironment, genetic context, and different signaling pathways further influence this interplay between cancer and metabolism. This review aims to explore how the dysregulation of metabolic enzymes in specific pathways, including the urea cycle, glycogen storage, lysosome storage, fatty acid oxidation, and mitochondrial respiration, contributes to the development of metabolic disorders and cancer. Additionally, the review seeks to shed light on why these enzymes represent crucial potential therapeutic targets and biomarkers in various cancer types.
遗传性代谢紊乱源于参与代谢酶生物合成、组装或活性的基因突变,导致酶缺乏和严重的代谢障碍。代谢酶对细胞的正常功能至关重要,参与氨基酸、脂肪酸和核苷酸的产生,这些物质对细胞生长、分裂和存活至关重要。当代谢酶的活性因突变或表达水平变化而受到干扰时,可能导致各种代谢紊乱,这些紊乱也与癌症发展有关。然而,关于代谢酶失调与癌细胞代谢适应之间的关系仍有许多需要了解的地方。在这篇综述中,我们探讨了癌细胞中代谢酶的改变或变化导致的代谢失调如何在肿瘤发生、发展、转移和耐药性中发挥关键作用。此外,这些代谢变化为癌细胞提供了许多优势,包括增殖增加、抗凋亡能力和逃避免疫系统的能力。肿瘤微环境、遗传背景和不同的信号通路进一步影响癌症与代谢之间的这种相互作用。这篇综述旨在探讨特定途径(包括尿素循环、糖原储存、溶酶体储存、脂肪酸氧化和线粒体呼吸)中的代谢酶失调如何导致代谢紊乱和癌症的发展。此外,该综述旨在阐明为什么这些酶在各种癌症类型中是关键的潜在治疗靶点和生物标志物。