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高尔基体潴泡中膜成分的曲率驱动侧向分选

Curvature-driven lateral segregation of membrane constituents in Golgi cisternae.

作者信息

Derganc Jure

机构信息

Institute of Biophysics, Faculty of Medicine, University of Ljubljana, Lipiceva 2, 1000 Ljubljana, Slovenia.

出版信息

Phys Biol. 2007 Nov 26;4(4):317-24. doi: 10.1088/1478-3975/4/4/008.

Abstract

Lateral segregation of mobile membrane constituents (e.g. lipids, proteins or membrane domains) into the regions of their preferred curvature relaxes stresses in the membrane. The equilibrium distribution of the constituents in the membrane is thus a balance between the gains in the membrane elastic energy and the segregation-induced loss of entropy. The membrane in the Golgi cisternae is particularly susceptible to the curvature-driven segregation because it possesses two very different curvatures-the highly curved membrane in the cisternal rims and the flat membrane in the cisternal sides. In this work, we calculate the extent of lateral segregation in the Golgi cisternae in the case where the segregation is driven by the Helfrich bending energy. It is assumed that the membrane bending constant and spontaneous curvature depend on the local membrane composition. A simple analytical expression for the extent of the lateral segregation is derived. The results show that the segregation depends on the ratio between the bending constant and the thermal energy, the difference of the preferred curvatures of the constituents and the sizes of the constituents. Applying the model to a typical Golgi cisterna, it was found that entropy can effectively limit the extent of the curvature-driven lateral segregation.

摘要

可移动膜成分(如脂质、蛋白质或膜结构域)侧向分离到其偏好曲率区域,可缓解膜中的应力。因此,膜中成分的平衡分布是膜弹性能增加与分离导致的熵损失之间的平衡。高尔基体潴泡中的膜尤其容易受到曲率驱动的分离影响,因为它具有两种截然不同的曲率——潴泡边缘高度弯曲的膜和潴泡侧面的扁平膜。在这项工作中,我们计算了在赫尔弗里希弯曲能驱动分离的情况下,高尔基体潴泡中的侧向分离程度。假设膜弯曲常数和自发曲率取决于局部膜组成。推导出了侧向分离程度的简单解析表达式。结果表明,分离取决于弯曲常数与热能的比值、成分偏好曲率的差异以及成分的大小。将该模型应用于典型的高尔基体潴泡,发现熵可以有效限制曲率驱动的侧向分离程度。

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