Institute of Biological Chemistry, Biophysics and Bioengineering, School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh, UK.
Division of Biosciences, Research Department of Structural and Molecular Biology, Institute of Structural and Molecular Biology, University College London, UK.
FEBS J. 2019 Oct;286(20):4074-4085. doi: 10.1111/febs.14961. Epub 2019 Jul 3.
Deformation of the plasma membrane into clathrin-coated vesicles is a critical step in clathrin-mediated endocytosis and requires the orchestrated assembly of clathrin and endocytic adaptors into a membrane-associated protein coat. The individual role of these membrane-bending and curvature-stabilizing factors is subject to current debate. As such, it is unclear whether the clathrin coat itself is stiff enough to impose curvature and if so, whether this could be effectively transferred to the membrane by the linking adaptor proteins. We have recently demonstrated that clathrin alone is sufficient to form membrane buds in vitro. Here, we use atomic force microscopy to assess the contributions of clathrin and its membrane adaptor protein 2 (AP2) to clathrin coat stiffness, which determines the mechanics of vesicle formation. We found that clathrin coats are less than 10-fold stiffer than the membrane they enclose, suggesting a delicate balance between the forces harnessed from clathrin coat formation and those required for membrane bending. We observed that clathrin adaptor protein AP2 increased the stiffness of coats formed from native clathrin, but did not affect less-flexible coats formed from clathrin lacking the light chain subunits. We thus propose that clathrin light chains are important for clathrin coat flexibility and that AP2 facilitates efficient cargo sequestration during coated vesicle formation by modulating clathrin coat stiffness.
质膜向内凹陷形成网格蛋白包被小泡是网格蛋白介导入胞作用的关键步骤,需要网格蛋白和衔接蛋白被协调组装到质膜相关蛋白衣中。这些膜弯曲和曲率稳定因子的单独作用目前存在争议。因此,不清楚网格蛋白衣本身是否足够坚硬以产生曲率,如果是这样,连接衔接蛋白是否可以有效地将这种曲率传递到膜上。我们最近证明,网格蛋白本身足以在体外形成膜泡。在这里,我们使用原子力显微镜来评估网格蛋白及其膜衔接蛋白 2(AP2)对网格蛋白衣硬度的贡献,网格蛋白衣硬度决定了囊泡形成的力学性质。我们发现网格蛋白衣的硬度比其包裹的膜低 10 倍以内,这表明从网格蛋白衣形成中获得的力与膜弯曲所需的力之间存在微妙的平衡。我们观察到,AP2 增加了由天然网格蛋白形成的衣的硬度,但不影响由缺乏轻链亚基的网格蛋白形成的硬度较低的衣。因此,我们提出网格蛋白轻链对于网格蛋白衣的柔韧性很重要,AP2 通过调节网格蛋白衣的硬度,有助于在网格蛋白包被小泡形成过程中有效地隔离货物。