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Published on: January 22, 2017
Genetic ablation of Sfxn5 induces mitochondrial dysfunction and precipitates lethal metabolic crisis in mice
Huan Zhang1, Cuihong Wang1, Yumeng Zhang1
1The Affiliated Yongchuan Hospital of Chongqing Medical University, School of Basic Medical Sciences, Chongqing Medical University, Chongqing 400016, China.
Abstract:
Mitochondrial disorders frequently manifest with life-threatening hepatic metabolic crises. Using a global Sfxn5-knockout mouse model, we investigated the systemic consequences of disrupting this mitochondrial inner-membrane transporter through integrated biochemical, metabolomic, histological, and ultrastructural analyses. Sfxn5 deficiency resulted in complete postnatal lethality accompanied by severe metabolic collapse and progressive multi-organ dysfunction. The liver emerged as the primary site of pathology, exhibiting marked mitochondrial structural damage and widespread disruption of central metabolic pathways, including the tricarboxylic acid cycle, fatty acid β-oxidation, and ammonia detoxification, leading to hyperammonemia and systemic metabolic stress. Importantly, liver-specific reconstitution of Sfxn5 partially restored mitochondrial metabolic function, substantially reduced hyperammonemia, and alleviated multi-organ pathology. Altogether, these findings identify hepatic mitochondrial dysfunction as the central driver of Sfxn5-dependent lethality and establish a critical role for Sfxn5 in maintaining mitochondrial metabolic homeostasis during early postnatal life.
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