VPS13A 和 VPS13C 影响脂滴丰度

Contact (Thousand Oaks (Ventura County, Calif.)) Pub Date : 2022-09-13 eCollection Date: 2022-01-01 DOI:10.1177/25152564221125613
Shuliang Chen, Melissa A Roberts, Chun-Yuan Chen, Sebastian Markmiller, Hong-Guang Wei, Gene W Yeo, James G Granneman, James A Olzmann, Susan Ferro-Novick
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引用次数: 0

摘要

脂质转移蛋白介导细胞器接触部位紧密贴合的膜之间的脂质交换,并在脂质代谢、膜稳态和细胞信号传导中发挥关键作用。最近发现的一个新的脂质转移蛋白家族包括 VPS13 蛋白(VPS13A-D),它们采用杆状桥构象,具有延伸的疏水沟,能大量转移膜脂质以促进膜生长。VPS13A 和 VPS13C 的功能缺失突变分别导致舞蹈棘细胞症和帕金森病。VPS13A和VPS13C定位于多个细胞器接触位点,包括内质网(ER)-脂滴(LD)接触位点,但这些蛋白在LD调控中的功能作用大多仍未被探索。在这里,我们采用CRISPR-Cas9基因组编辑技术,通过删除外显子2和引入早期框架移位,在U-2 OS细胞中产生VPS13A和VPS13C基因敲除细胞系。对这些细胞系中 LD 含量的分析表明,在油酸刺激条件下,VPS13A 或 VPS13C 的缺失会导致 LD 丰度降低。这些数据表明,VPS13A 和 VPS13C 这两种脂质转移蛋白参与了 LD 的调控。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

VPS13A and VPS13C Influence Lipid Droplet Abundance.

VPS13A and VPS13C Influence Lipid Droplet Abundance.

VPS13A and VPS13C Influence Lipid Droplet Abundance.

VPS13A and VPS13C Influence Lipid Droplet Abundance.

Lipid transfer proteins mediate the exchange of lipids between closely apposed membranes at organelle contact sites and play key roles in lipid metabolism, membrane homeostasis, and cellular signaling. A recently discovered novel family of lipid transfer proteins, which includes the VPS13 proteins (VPS13A-D), adopt a rod-like bridge conformation with an extended hydrophobic groove that enables the bulk transfer of membrane lipids for membrane growth. Loss of function mutations in VPS13A and VPS13C cause chorea acanthocytosis and Parkinson's disease, respectively. VPS13A and VPS13C localize to multiple organelle contact sites, including endoplasmic reticulum (ER) - lipid droplet (LD) contact sites, but the functional roles of these proteins in LD regulation remains mostly unexplored. Here we employ CRISPR-Cas9 genome editing to generate VPS13A and VPS13C knockout cell lines in U-2 OS cells via deletion of exon 2 and introduction of an early frameshift. Analysis of LD content in these cell lines revealed that loss of either VPS13A or VPS13C results in reduced LD abundance under oleate-stimulated conditions. These data implicate two lipid transfer proteins, VPS13A and VPS13C, in LD regulation.

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