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腔囊蛋白-1 介导的膜弯曲的分子机制。

Molecular Mechanisms Underlying Caveolin-1 Mediated Membrane Curvature.

机构信息

CSIR-National Chemical Laboratory, Dr. Homi Bhabha Road, Pune, 411008, India.

出版信息

J Membr Biol. 2022 Jun;255(2-3):225-236. doi: 10.1007/s00232-022-00236-y. Epub 2022 Apr 25.

Abstract

Caveolin-1 is one of the main protein components of caveolae that acts as a mechanosensor at the cell membrane. The interactions of caveolin-1 with membranes have been shown to lead to complex effects such as curvature and the clustering of specific lipids. Here, we review the emerging concepts on the molecular interactions of caveolin-1, with a focus on insights from coarse-grain molecular dynamics simulations. Consensus structural models of caveolin-1 report a helix-turn-helix core motif with flanking domains of higher disorder that could be membrane composition dependent. Caveolin-1 appears to be mainly surface-bound and does not embed very deep in the membrane to which it is bound. The most interesting aspect of caveolin-1 membrane binding is the interplay of cholesterol clustering and membrane curvature. Although cholesterol has been reported to cluster in the vicinity of caveolin-1 by several approaches, simulations show that the clustering is maximal in membrane leaflet opposing the surface-bound caveolin-1. The intrinsic negative curvature of cholesterol appears to stabilize the negative curvature in the opposing leaflet. In fact, the simulations show that blocking cholesterol clustering (through artificial position restraints) blocks membrane curvature, and vice versa. Concomitant with cholesterol clustering is sphingomyelin clustering, again in the opposing leaflet, but in a concentration-dependent manner. The differential stress due to caveolin-1 binding and the inherent asymmetry of the membrane leaflets could be the determinant for membrane curvature and needs to be further probed. The review is an important step to reconcile the molecular level details emerging from simulations with the mesoscopic details provided by state of the art experimental approaches.

摘要

窖蛋白-1 是质膜机械感受器小窝蛋白的主要蛋白成分之一。小窝蛋白-1 与膜的相互作用已被证明会导致复杂的效应,如曲率和特定脂质的聚类。在这里,我们综述了小窝蛋白-1 分子相互作用的新观点,重点介绍了粗粒分子动力学模拟的见解。共识结构模型报告小窝蛋白-1 具有螺旋-转角-螺旋核心结构基序,侧翼结构域具有较高的无序性,可能依赖于膜的组成。小窝蛋白-1 似乎主要是表面结合的,不会嵌入与其结合的膜中很深。小窝蛋白-1 与膜结合最有趣的方面是胆固醇聚类和膜曲率的相互作用。尽管几种方法已经报道胆固醇在小窝蛋白-1 附近聚类,但模拟表明,在与表面结合的小窝蛋白-1 相对的膜小叶中,聚类最大。胆固醇的固有负曲率似乎稳定了对面小叶中的负曲率。事实上,模拟表明,阻止胆固醇聚类(通过人为位置限制)会阻止膜曲率,反之亦然。与胆固醇聚类同时发生的是鞘磷脂聚类,同样在对面的小叶中,但以浓度依赖的方式。由于小窝蛋白-1 结合引起的差异应力和膜小叶的固有不对称性可能是膜曲率的决定因素,需要进一步研究。该综述是将模拟中出现的分子水平细节与最先进的实验方法提供的介观细节协调起来的重要步骤。

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