生物
西地那非
诱导多能干细胞
线粒体DNA
疾病
线粒体
药理学
粒线体疾病
生物信息学
癌症研究
线粒体肌病
遗传学
药物发现
细胞
细胞生物学
药品
作者
Annika Zink,Dao‐Fu Dai,Annika Wittich,Marie‐Thérèse Henke,Giulia Pedrotti,Sonja Heiduschka,Guillem Santamaria,Tancredi Massimo Pentimalli,Christian Brueser,Sofia Notopoulou,Abdul Rahim Umar,Aleksandra Zhaivoron,Laura Petersilie,Caleb Jerred,Jesper Bergmans,Louis Anton Neu,Fabian Schumacher,Jan Keller-Findeisen,Agnieszka Rybak-Wolf,Daniel Stach
出处
期刊:Cell
[Cell Press]
日期:2026-03-01
卷期号:189 (6): 1656-1679.e42
标识
DOI:10.1016/j.cell.2026.02.008
摘要
Mitochondrial disease encompasses inherited disorders affecting mitochondrial function. A severe and untreatable form of mitochondrial disease is Leigh syndrome (LS), causing psychomotor regression and metabolic crises. To accelerate drug discovery for LS, we screen a library of 5,632 repurposable compounds in neural cells from LS-patient-derived induced pluripotent stem cells (iPSCs). We identify phosphodiesterase type 5 (PDE5) inhibitors as leads and prioritize sildenafil for its clinical safety. Sildenafil corrects mitochondrial membrane potential defects, restores neurodevelopmental pathways, and normalizes calcium responses in LS brain organoids. In small and large mammalian models of LS, sildenafil extends lifespan and ameliorates disease phenotypes. Off-label treatment on an individual basis with sildenafil in six LS patients improves their motor function and resistance to metabolic crises. Collectively, the findings highlight the potential of iPSC-driven drug discovery and position sildenafil as a promising drug candidate for mitochondrial disease.
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