Patrick McKenzie, Gu Zhimin, Zhang Gen, Wynn R Max, Kaphle Pranita, Cao Hui, Vu Hieu, Cai Feng, Gao Xiaofei, Zhang Yuannyu, Chen Mingyi, Ni Min, Chuang David T, DeBerardinis Ralph J, Xu Jian
Children's Medical Center Research Institute, University of Texas Southwestern Medical Center, Dallas, TX, USA.
Department of Pediatrics, Harold C. Simmons Comprehensive Cancer Center, and Hamon Center for Regenerative Science and Medicine, University of Texas Southwestern Medical Center, Dallas, TX, USA.
Nat Metab. 2022 Dec;4(12):1775-1791. doi: 10.1038/s42255-022-00689-4. Epub 2022 Nov 28.
The branched-chain aminotransferase isozymes BCAT1 and BCAT2, segregated into distinct subcellular compartments and tissues, initiate the catabolism of branched-chain amino acids (BCAAs). However, whether and how BCAT isozymes cooperate with downstream enzymes to control BCAA homeostasis in an intact organism remains largely unknown. Here, we analyse system-wide metabolomic changes in BCAT1- and BCAT2-deficient mouse models. Loss of BCAT2 but not BCAT1 leads to accumulation of BCAAs and branched-chain α-keto acids (BCKAs), causing morbidity and mortality that can be ameliorated by dietary BCAA restriction. Through proximity labelling, isotope tracing and enzymatic assays, we provide evidence for the formation of a mitochondrial BCAA metabolon involving BCAT2 and branched-chain α-keto acid dehydrogenase. Disabling the metabolon contributes to BCAT2 deficiency-induced phenotypes, which can be reversed by BCAT1-mediated BCKA reamination. These findings establish a role for metabolon formation in BCAA metabolism in vivo and suggest a new strategy to modulate this pathway in diseases involving dysfunctional BCAA metabolism.
支链氨基转移酶同工酶BCAT1和BCAT2定位于不同的亚细胞区室和组织中,启动支链氨基酸(BCAAs)的分解代谢。然而,在完整生物体中,BCAT同工酶是否以及如何与下游酶协同作用以控制BCAA稳态,在很大程度上仍不清楚。在此,我们分析了BCAT1和BCAT2缺陷小鼠模型中的全系统代谢组学变化。BCAT2而非BCAT1的缺失导致BCAAs和支链α-酮酸(BCKAs)的积累,引发发病率和死亡率,而饮食中限制BCAA可改善这种情况。通过邻近标记、同位素示踪和酶活性测定,我们为涉及BCAT2和支链α-酮酸脱氢酶的线粒体BCAA代谢体的形成提供了证据。破坏该代谢体导致BCAT2缺陷诱导的表型,而BCAT1介导的BCKA再氨基化可逆转这些表型。这些发现确立了代谢体形成在体内BCAA代谢中的作用,并提出了一种在涉及BCAA代谢功能障碍的疾病中调节该途径的新策略。