Department of Cell Biology and Physiology, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, USA.
Department of Biology and Genetics, McAllister Heart Institute, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, USA; Integrative Program for Biological and Genome Sciences, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, USA.
Dev Cell. 2023 Jul 24;58(14):1250-1265.e6. doi: 10.1016/j.devcel.2023.05.006. Epub 2023 Jun 7.
Cells adjust their metabolism by remodeling membrane contact sites that channel metabolites to different fates. Lipid droplet (LD)-mitochondria contacts change in response to fasting, cold exposure, and exercise. However, their function and mechanism of formation have remained controversial. We focused on perilipin 5 (PLIN5), an LD protein that tethers mitochondria, to probe the function and regulation of LD-mitochondria contacts. We demonstrate that efficient LD-to-mitochondria fatty acid (FA) trafficking and ß-oxidation during starvation of myoblasts are promoted by phosphorylation of PLIN5 and require an intact PLIN5 mitochondrial tethering domain. Using human and murine cells, we further identified the acyl-CoA synthetase, FATP4 (ACSVL4), as a mitochondrial interactor of PLIN5. The C-terminal domains of PLIN5 and FATP4 constitute a minimal protein interaction capable of inducing organelle contacts. Our work suggests that starvation leads to phosphorylation of PLIN5, lipolysis, and subsequent channeling of FAs from LDs to FATP4 on mitochondria for conversion to fatty-acyl-CoAs and subsequent oxidation.
细胞通过重塑膜接触位点来调节代谢,这些接触位点将代谢物引导到不同的命运。脂滴(LD)-线粒体接触在禁食、冷暴露和运动时发生变化。然而,它们的功能和形成机制仍存在争议。我们专注于脂滴蛋白 5(PLIN5),一种将线粒体连接在一起的 LD 蛋白,以探究 LD-线粒体接触的功能和调节。我们证明,在成肌细胞饥饿时,PLIN5 的磷酸化促进了 LD 到线粒体的脂肪酸(FA)转运和β-氧化,并且需要完整的 PLIN5 线粒体连接结构域。使用人和鼠细胞,我们进一步鉴定出酰基辅酶 A 合成酶 FATP4(ACSVL4)是 PLIN5 的线粒体相互作用蛋白。PLIN5 和 FATP4 的 C 端结构域构成了一个最小的蛋白相互作用结构域,能够诱导细胞器接触。我们的工作表明,饥饿导致 PLIN5 的磷酸化、脂解,随后将 FAs 从 LD 转移到线粒体上的 FATP4,以转化为脂肪酸酰基辅酶 A,然后进行后续氧化。