失调家庭
安普克
降级(电信)
细胞生物学
线粒体
化学
生物物理学
生物
医学
计算机科学
磷酸化
临床心理学
蛋白激酶A
电信
作者
Shih-Cheng Wu,Yan-Jhen Chen,Shih-Han Su,Pai-Hsiang Fang,R. Liu,Hui-Ying Tsai,Yen-Jui Chang,Hsing-Han Li,Jian‐Chiuan Li,Chun‐Hong Chen
标识
DOI:10.1038/s42003-025-07457-6
摘要
Metabolic and neurological disorders commonly display dysfunctional branched-chain amino acid (BCAA) metabolism, though it is poorly understood how this leads to neurological damage. We investigated this by generating Drosophila mutants lacking BCAA-catabolic activity, resulting in elevated BCAA levels and neurological dysfunction, mimicking disease-relevant symptoms. Our findings reveal a reduction in neuronal AMP-activated protein kinase (AMPK) activity, which disrupts autophagy in mutant brain tissues, linking BCAA imbalance to brain dysfunction. Mechanistically, we show that excess BCAA-induced mitochondrial reactive oxygen species (ROS) triggered the binding of protein phosphatase 2 A catalytic subunit (PP2Ac) to AMPK, suppressing AMPK activity. This initiated a dysregulated feedback loop of AMPK-mitochondrial interactions, exacerbating mitochondrial dysfunction and oxidative neuronal damage. Our study identifies BCAA imbalance as a critical driver of neuronal damage through AMPK suppression and autophagy dysfunction, offering insights into metabolic-neuronal interactions in neurological diseases and potential therapeutic targets for BCAA-related neurological conditions.
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