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对小窝蛋白结构排列及其局部脂质环境的见解。

Insights in caveolae protein structure arrangements and their local lipid environment.

作者信息

Ocket Esther, Matthaeus Claudia

机构信息

Institute of Nutritional Science, Cellular Physiology of Nutrition, University of Potsdam, Karl-Liebknecht-Str. 24/25, Building 29, Room 0.08, D-14476 Potsdam, Germany.

出版信息

Biol Chem. 2024 Jul 8. doi: 10.1515/hsz-2024-0046.

Abstract

Caveolae are 50-80 nm sized plasma membrane invaginations found in adipocytes, endothelial cells or fibroblasts. They are involved in endocytosis, lipid uptake and the regulation of the cellular lipid metabolism as well as sensing and adapting to changes in plasma membrane tension. Caveolae are characterized by their unique lipid composition and their specific protein coat consisting of caveolin and cavin proteins. Recently, detailed structural information was obtained for the major caveolae protein caveolin1 showing the formation of a disc-like 11-mer protein complex. Furthermore, the importance of the cavin disordered regions in the generation of cavin trimers and caveolae at the plasma membrane were revealed. Thus, finally, structural insights about the assembly of the caveolar coat can be elucidated. Here, we review recent developments in caveolae structural biology with regard to caveolae coat formation and caveolae curvature generation. Secondly, we discuss the importance of specific lipid species necessary for caveolae curvature and formation. In the last years, it was shown that specifically sphingolipids, cholesterol and fatty acids can accumulate in caveolae invaginations and may drive caveolae endocytosis. Throughout, we summarize recent studies in the field and highlight future research directions.

摘要

小窝是存在于脂肪细胞、内皮细胞或成纤维细胞中的大小为50 - 80纳米的质膜内陷结构。它们参与内吞作用、脂质摄取以及细胞脂质代谢的调节,还能感知并适应质膜张力的变化。小窝的特征在于其独特的脂质组成以及由小窝蛋白和窖蛋白相关蛋白组成的特定蛋白质衣被。最近,获得了关于主要小窝蛋白小窝蛋白1的详细结构信息,显示其形成了盘状的11聚体蛋白复合物。此外,还揭示了窖蛋白无序区域在质膜上生成窖蛋白三聚体和小窝中的重要性。因此,最终可以阐明关于小窝衣被组装的结构见解。在此,我们综述了小窝结构生物学在小窝衣被形成和小窝曲率产生方面的最新进展。其次,我们讨论了小窝曲率和形成所必需的特定脂质种类的重要性。在过去几年中,研究表明鞘脂、胆固醇和脂肪酸能够特异性地在小窝内陷结构中积累,并可能驱动小窝内吞作用。我们全面总结了该领域的最新研究,并突出了未来的研究方向。

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