蛋白质亚单位
生物
线粒体
DNA连接酶
细胞生物学
琥珀酰化
生物化学
基因
化学
氨基酸
赖氨酸
作者
Philipp Gut,Sanna Matilainen,Jesse G. Meyer,Pieti W. Pallijeff,J. Wall Richard,Christopher J. Carroll,Liliya Euro,Christopher B. Jackson,Pirjo Isohanni,Berge A. Minassian,Reem A. Alkhater,Elsebet Østergaard,Gabriele Civiletto,Alice Parisi,Jonathan Thévenet,Matthew J. Rardin,Wenjuan He,Yuya Nishida,John C. Newman,Xiaojing Liu
标识
DOI:10.1038/s41467-020-19743-4
摘要
Abstract Mitochondrial acyl-coenzyme A species are emerging as important sources of protein modification and damage. Succinyl-CoA ligase (SCL) deficiency causes a mitochondrial encephalomyopathy of unknown pathomechanism. Here, we show that succinyl-CoA accumulates in cells derived from patients with recessive mutations in the tricarboxylic acid cycle (TCA) gene succinyl-CoA ligase subunit-β ( SUCLA2 ), causing global protein hyper-succinylation. Using mass spectrometry, we quantify nearly 1,000 protein succinylation sites on 366 proteins from patient-derived fibroblasts and myotubes. Interestingly, hyper-succinylated proteins are distributed across cellular compartments, and many are known targets of the (NAD + )-dependent desuccinylase SIRT5. To test the contribution of hyper-succinylation to disease progression, we develop a zebrafish model of the SCL deficiency and find that SIRT5 gain-of-function reduces global protein succinylation and improves survival. Thus, increased succinyl-CoA levels contribute to the pathology of SCL deficiency through post-translational modifications.
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