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Coarse-Grained Model of SNARE Mediated Docking

机译:SNARE中介对接的粗粒度模型

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Synaptic transmission requires that vesicles filled with neurotransmitter molecules be docked to the plasma membrane by the SNARE protein complex. The SNARE complex applies attractive forces to overcome the long-range repulsion between the vesicle and membrane. To understand how the balance between the attractive and repulsive forces defines the equilibrium docked state we have developed a model that combines the mechanics of vesicle/membrane deformation with a new coarse-grained model of the SNARE complex. The coarse-grained model of the SNARE complex is calibrated by comparison with all-atom molecular dynamics simulations as well as by force measurements in laser tweezer experiments. The model for vesicle/membrane interactions includes the forces produced by membrane deformation and hydration or electrostatic repulsion. Combining these two parts, the coarse-grained model of the SNARE complex with membrane mechanics, we study how the equilibrium docked state varies with the number of SNARE complexes. We find that a single SNARE complex is able to bring a typical synaptic vesicle to within a distance of about 3 nm from the membrane. Further addition of SNARE complexes shortens this distance, but an over-docked state of more than 4-6 SNAREs actually increases the equilibrium distance.
机译:突触传递要求装满神经递质分子的囊泡通过SNARE蛋白复合物对接在质膜上。 SNARE复合体施加吸引力以克服囊泡与膜之间的远距离排斥。为了了解吸引力和排斥力之间的平衡如何定义平衡的对接状态,我们开发了一个模型,该模型将囊泡/膜变形的机理与SNARE复合体的新粗粒度模型相结合。通过与全原子分子动力学模拟的比较以及激光镊子实验中的力测量,可以校准SNARE配合物的粗粒度模型。囊泡/膜相互作用的模型包括由膜变形和水合作用或静电排斥产生的力。结合这两个部分,SNARE配合物的粗粒度模型与膜力学,我们研究了平衡对接状态如何随SNARE配合物的数量而变化。我们发现单个SNARE复合物能够将典型的突触小泡带到离膜约3 nm的距离内。进一步添加SNARE配合物会缩短该距离,但是超过4-6个SNARE的过度对接状态实际上会增加平衡距离。

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