Remler M P
Biophys J. 1973 Feb;13(2):104-17. doi: 10.1016/S0006-3495(73)85973-9.
Under the assumption that vesicles are the anatomic correlate of quantal release, the forces governing the movement of synaptic vesicles inside neurons are analyzed. Semiquantitative calculations are presented to show that a diffuse layer field penetrates a few Debye lengths into the axoplasm. This field binds tightly a monolayer of water to the membrane forming the potential barrier for miniature end-plate potential (mepp) release. The action potential destroys the monolayer and pulls the vesicle to the membrane. The vesicles are brought to the synaptic zone and held there by a Na(+) leak in the synaptic membrane. A stochastic theory of synaptic vesicle release is presented to explain experimental results. The rate of vesicle release is fractionated into a rate of membrane contacts by a vesicle and a rate of vesicle discharge per contact.
在假定囊泡是量子释放的解剖学关联物的情况下,分析了支配神经元内突触囊泡运动的力。进行了半定量计算,结果表明扩散层场穿透轴浆几个德拜长度。该场将单层水紧密结合到膜上,形成微小终板电位(mepp)释放的势垒。动作电位破坏单层并将囊泡拉向膜。囊泡被带到突触区,并通过突触膜中的Na(+)泄漏保持在那里。提出了一种突触囊泡释放的随机理论来解释实验结果。囊泡释放速率被分为囊泡与膜接触的速率以及每次接触时囊泡放电的速率。