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Energetics of intermediates in membrane fusion: comparison of stalk and inverted micellar intermediate mechanisms.

机译:膜融合中中间体的能量学:茎和倒胶束中间机理的比较。

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摘要

To understand the mechanism of membrane fusion, we have to infer the sequence of structural transformations that occurs during the process. Here, it is shown how one can estimate the lipid composition-dependent free energies of intermediate structures of different geometries. One can then infer which fusion mechanism is the best explanation of observed behavior in different systems by selecting the mechanism that requires the least energy. The treatment involves no adjustable parameters. It includes contributions to the intermediate energy resulting from the presence of hydrophobic interstices within structures formed between apposed bilayers. Results of these calculations show that a modified form of the stalk mechanism proposed by others is a likely fusion mechanism in a wide range of lipid compositions, but a mechanism based on inverted micellar intermediates (IMIs) is not. This should be true even in the vicinity of the lamellar/inverted hexagonal phase transition, where IMI formation would be most facile. Another prediction of the calculations is that traces of apolar lipids (e.g., long-chain alkanes) in membranes should have a substantial influence on fusion rates in general. The same theoretical methods can be used to generate and refine mechanisms for protein-mediated fusion.
机译:要了解膜融合的机制,我们必须推断过程中发生的结构转变的顺序。在此显示了如何估计不同几何形状的中间结构的脂质成分依赖性自由能。然后,可以通过选择所需能量最少的机制来推断哪种融合机制是对不同系统中观察到的行为的最佳解释。该处理不涉及可调参数。它包括由于在并列的双层之间形成的结构内存在疏水性空隙而导致的中间能的贡献。这些计算结果表明,其他人提出的茎机制的改进形式可能是多种脂质组合物中可能的融合机制,但基于倒胶束中间体(IMI)的机制却不是。即使在层状/倒六角形相变附近(IMI形成最容易的地方)也应如此。该计算的另一种预测是,膜中痕量的非极性脂质(例如长链烷烃)通常应对融合速率产生重大影响。可以使用相同的理论方法来生成和完善蛋白质介导融合的机制。

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