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A balance between membrane elasticity and polymerization energy sets the shape of spherical clathrin coats

机译:膜弹性和聚合能之间的平衡决定了球状网格蛋白涂层的形状

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摘要

In endocytosis, scaffolding is one of the mechanisms to create membrane curvature by moulding the membrane into the spherical shape of the clathrin cage. However, the impact of membrane elastic parameters on the assembly and shape of clathrin lattices has never been experimentally evaluated. Here, we show that membrane tension opposes clathrin polymerization. We reconstitute clathrin budding in vitro with giant unilamellar vesicles (GUVs), purified adaptors and clathrin. By changing the osmotic conditions, we find that clathrin coats cause extensive budding of GUVs under low membrane tension while polymerizing into shallow pits under moderate tension. High tension fully inhibits polymerization. Theoretically, we predict the tension values for which transitions between different clathrin coat shapes occur. We measure the changes in membrane tension during clathrin polymerization, and use our theoretical framework to estimate the polymerization energy from these data. Our results show that membrane tension controls clathrin-mediated budding by varying the membrane budding energy.
机译:在胞吞作用中,支架是通过将膜模制成网格蛋白笼的球形而产生膜曲率的机制之一。但是,膜弹性参数对网格蛋白晶格的组装和形状的影响从未进行过实验评估。在这里,我们表明膜张力反对网格蛋白聚合。我们重建与大单层囊泡(GUVs),纯化的衔接子和网格蛋白在体外发芽的网格蛋白。通过改变渗透条件,我们发现网格蛋白涂层在低膜张力下引起GUV的大量出芽,而在中等张力下聚合成浅坑。高张力完全抑制聚合。从理论上讲,我们预测了不同网格蛋白涂层形状之间会发生过渡的张力值。我们测量网格蛋白聚合过程中膜张力的变化,并使用我们的理论框架从这些数据估算聚合能。我们的结果表明,膜张力通过改变膜出芽能量来控制网格蛋白介导的出芽。

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