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量子电流形状的融合后控制。

Postfusional control of quantal current shape.

作者信息

Pawlu Christian, DiAntonio Aaron, Heckmann Manfred

机构信息

Physiologisches Institut, Universität Freiburg, D-79104 Freiburg, Germany.

出版信息

Neuron. 2004 May 27;42(4):607-18. doi: 10.1016/s0896-6273(04)00269-7.

Abstract

Whether glutamate is released rapidly, in an all-or-none manner, or more slowly, in a regulated manner, is a matter of debate. We analyzed the time course of excitatory postsynaptic currents (EPSCs) at glutamatergic neuromuscular junctions of Drosophila and found that the decay phase of EPSCs was protracted to a variable extent. The protraction was more pronounced in evoked and spontaneous quantal EPSCs than in action potential-evoked multiquantal EPSCs; reduced in quantal EPSCs from endophilin null mutants, which maintain release via kiss-and-run; and dependent on synaptotagmin isoform, calcium, and protein phosphorylation. Our data indicate that glutamate is released from individual synaptic vesicles for milliseconds through a fusion pore. Quantal glutamate discharge time course depends on presynaptic calcium inflow and the molecular composition of the release machinery.

摘要

谷氨酸是快速以全或无的方式释放,还是更缓慢地以受调控的方式释放,这是一个有争议的问题。我们分析了果蝇谷氨酸能神经肌肉接头处兴奋性突触后电流(EPSCs)的时间进程,发现EPSCs的衰减期在不同程度上有所延长。这种延长在诱发的和自发的量子EPSCs中比在动作电位诱发的多量子EPSCs中更明显;在内吞蛋白缺失突变体的量子EPSCs中减少,该突变体通过亲吻-逃离维持释放;并且依赖于突触结合蛋白亚型、钙和蛋白质磷酸化。我们的数据表明,谷氨酸通过融合孔从单个突触小泡中释放数毫秒。量子谷氨酸释放的时间进程取决于突触前钙内流和释放机制的分子组成。

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