Caveolin assemblies displace one bilayer leaflet to organize and bend membranes.

Milka Doktorova, Sebastian Daum, Tyler R Reagle, Hannah I Cannon, Jan Ebenhan, Sarah Neudorf, Bing Han, Satyan Sharma, Peter Kasson, Kandice Levental, Kirsten Bacia, Anne K Kenworthy, Ilya Levental
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Abstract

Caveolin is a monotopic integral membrane protein, widely expressed in metazoa and responsible for constructing enigmatic membrane invaginations known as caveolae. Recently, the high-resolution structure of a purified human caveolin assembly, the CAV1-8S complex, revealed a unique organization of 11 protomers arranged in a tightly packed, radially symmetric spiral disc. One face and the outer rim of this disc are hydrophobic, suggesting that the complex incorporates into membranes by displacing hundreds of lipids from one leaflet. The feasibility of this unique molecular architecture and its biophysical and functional consequences are currently unknown. Using Langmuir film balance measurements, we find that CAV1-8S is highly surface active, intercalating into lipid monolayers of various compositions. CAV1-8S can also incorporate into pre-formed bilayers, but only upon removal of phospholipids from the outer-facing leaflet. Atomistic and coarse-grained simulations of biomimetic bilayers support this 'leaflet replacement' model and also reveal that CAV1-8S accumulates 40-70 cholesterol molecules into a disordered monolayer between the complex and its distal lipid leaflet. We find that CAV1-8S preferentially associates with positively curved membrane surfaces due to its influence on the conformations of distal leaflet lipids, and that these effects laterally sort lipids. Large-scale simulations of multiple caveolin assemblies confirmed their association with large, positively curved membrane morphologies consistent with the shape of caveolae. Further, association with curved membranes regulates the exposure of caveolin residues implicated in protein-protein interactions. Altogether, the unique structure of CAV1-8S imparts unusual modes of membrane interaction with implications for membrane organization, morphology, and physiology.

Caveolin 集合体能使双分子层的一个小叶移位,从而组织和弯曲膜。
洞穴素(Caveolin)是一种单位整体膜蛋白,在中生代动物中广泛表达,负责构建被称为 "洞穴"(caveolae)的神秘膜内陷。最近,纯化的人类洞穴素组装体(CAV1-8S 复合物)的高分辨率结构揭示了一种独特的组织结构,即 11 个原生体紧密排列成一个径向对称的螺旋圆盘。该圆盘的一个面和外缘具有高度疏水性,这表明该复合体是通过将数百种脂质从一个小叶中置换出来而与膜结合的。这种独特分子结构的可行性及其生物物理和功能后果目前尚不清楚。通过朗缪尔薄膜平衡测量,我们发现 CAV1-8S 具有很高的表面活性并能插入脂质单层。生物模拟双分子层的分子模拟支持这种 "单叶置换 "模型,并揭示出 CAV1-8S 在有效置换一个双分子层单叶中的磷脂的同时,在复合物与其远端脂质单叶之间的无序单层中积累了 40-70 个胆固醇分子。我们发现,由于 CAV1-8S 对远端小叶脂质构象的影响,它优先与正弯曲的膜表面结合,而且这些影响会横向分选远端小叶的脂质。对多个洞穴素组装的大规模模拟证实了它们与大型正弯曲膜形态的关联,这与洞穴的形状一致。此外,与弯曲膜的结合调节了与蛋白质相互作用有关的洞穴素残基的暴露。总之,CAV1-8S 的独特结构带来了不同寻常的膜相互作用模式,对膜的组织、形态和生理都有影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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