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程序性线粒体自噬对于细胞分化过程中的糖酵解转换至关重要。

Programmed mitophagy is essential for the glycolytic switch during cell differentiation.

作者信息

Esteban-Martínez Lorena, Sierra-Filardi Elena, McGreal Rebecca S, Salazar-Roa María, Mariño Guillermo, Seco Esther, Durand Sylvère, Enot David, Graña Osvaldo, Malumbres Marcos, Cvekl Ales, Cuervo Ana María, Kroemer Guido, Boya Patricia

机构信息

Department of Cellular and Molecular Biology, Centro de Investigaciones Biológicas, CSIC, Madrid, Spain.

Departments of Genetics, Ophthalmology and Visual Sciences, Albert Einstein College of Medicine, Bronx, NY, USA.

出版信息

EMBO J. 2017 Jun 14;36(12):1688-1706. doi: 10.15252/embj.201695916. Epub 2017 May 2.

Abstract

Retinal ganglion cells (RGCs) are the sole projecting neurons of the retina and their axons form the optic nerve. Here, we show that embryogenesis-associated mouse RGC differentiation depends on mitophagy, the programmed autophagic clearance of mitochondria. The elimination of mitochondria during RGC differentiation was coupled to a metabolic shift with increased lactate production and elevated expression of glycolytic enzymes at the mRNA level. Pharmacological and genetic inhibition of either mitophagy or glycolysis consistently inhibited RGC differentiation. Local hypoxia triggered expression of the mitophagy regulator BCL2/adenovirus E1B 19-kDa-interacting protein 3-like (BNIP3L, best known as NIX) at peak RGC differentiation. Retinas from NIX-deficient mice displayed increased mitochondrial mass, reduced expression of glycolytic enzymes and decreased neuronal differentiation. Similarly, we provide evidence that NIX-dependent mitophagy contributes to mitochondrial elimination during macrophage polarization towards the proinflammatory and more glycolytic M1 phenotype, but not to M2 macrophage differentiation, which primarily relies on oxidative phosphorylation. In summary, developmentally controlled mitophagy promotes a metabolic switch towards glycolysis, which in turn contributes to cellular differentiation in several distinct developmental contexts.

摘要

视网膜神经节细胞(RGCs)是视网膜唯一的投射神经元,其轴突形成视神经。在此,我们表明胚胎发育相关的小鼠RGC分化依赖于线粒体自噬,即线粒体的程序性自噬清除。RGC分化过程中线粒体的消除与代谢转变相关,乳酸生成增加,糖酵解酶在mRNA水平的表达升高。线粒体自噬或糖酵解的药理学和遗传学抑制均持续抑制RGC分化。局部缺氧在RGC分化高峰期触发线粒体自噬调节因子BCL2/腺病毒E1B 19-kDa相互作用蛋白3样蛋白(BNIP3L,最广为人知的是NIX)的表达。NIX缺陷小鼠的视网膜显示线粒体质量增加、糖酵解酶表达降低以及神经元分化减少。同样,我们提供证据表明,NIX依赖性线粒体自噬有助于巨噬细胞向促炎且更多依赖糖酵解的M1表型极化过程中的线粒体消除,但对主要依赖氧化磷酸化的M2巨噬细胞分化没有作用。总之,发育过程中受调控的线粒体自噬促进向糖酵解的代谢转换,这反过来又有助于在几种不同的发育背景下的细胞分化。

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