生物
内质网
细胞生物学
线粒体
表观遗传学
调节器
细胞代谢
内生
焊剂(冶金)
信号转导
钙信号传导
白藜芦醇
细胞
基因表达调控
细胞代谢
新陈代谢
氧化磷酸化
线粒体内膜
代谢途径
细胞信号
后生
生物化学
AAA蛋白
膜电位
氧化代谢
线粒体融合
内膜
作者
Brandon Chen,Drew Stark,Pankaj Jadhav,Theophilus Nguyen,Benjamin Halligan,Nicholas J. Rossiter,Nicole Sindoni,Myungsun Shin,Joao A. Paulo,Matthew Chang,Imhoi Koo,С. В. Кошкин,Sanjana Eyunni,Paolo Ronchi,Michelle T. Paulsen,Harrison S. Greenbaum,Mariana T. Ruckert,Pietro Morlacchi,David A. Hanna,Jason Lin
出处
期刊:Molecular Cell
[Elsevier BV]
日期:2026-02-13
卷期号:86 (5): 917-936.e12
标识
DOI:10.1016/j.molcel.2026.01.012
摘要
Inter-organellar communication is critical for cellular metabolism. One of the most abundant inter-organellar interactions occurs at the endoplasmic reticulum and mitochondria contact sites (ERMCSs). However, an understanding of the mechanisms governing ERMCS regulation and their roles in cellular metabolism is limited by a lack of tools that permit temporal induction and reversal. Through screening approaches, we identified fedratinib, an FDA-approved drug that dramatically increases ERMCS abundance by inhibiting the epigenetic modifier BRD4. Fedratinib rapidly and reversibly modulates mitochondrial and ER morphology, induces a distinct ER-mitochondria envelopment structure, and alters metabolic homeostasis. Moreover, ERMCS modulation depends on mitochondrial electron transport chain complex III function. Comparison of fedratinib activity to other reported inducers of ERMCSs revealed common mechanisms of induction and function, providing clarity to a growing body of experimental observations. In total, our results uncovered a novel epigenetic signaling pathway and an endogenous metabolic regulator that connects ERMCSs and cellular metabolism.
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