Calloway Nathaniel, Gouzer Géraldine, Xue Mingyu, Ryan Timothy A
Department of Biochemistry, Weill Cornell Medical College, New York, United States.
Elife. 2015 Jul 21;4:e07728. doi: 10.7554/eLife.07728.
Presynaptic calcium channel function is critical for converting electrical information into chemical communication but the molecules in the active zone that sculpt this function are poorly understood. We show that Munc13, an active-zone protein essential for exocytosis, also controls presynaptic voltage-gated calcium channel (VGCC) function dictating their behavior during various forms of activity. We demonstrate that in vitro Munc13 interacts with voltage-VGCCs via a pair of basic residues in Munc13's C2B domain. We show that elimination of this interaction by either removal of Munc13 or replacement of Munc13 with a Munc13 C2B mutant alters synaptic VGCC's response to and recovery from high-frequency action potential bursts and alters calcium influx from single action potential stimuli. These studies illustrate a novel form of synaptic modulation and show that Munc13 is poised to profoundly impact information transfer at nerve terminals by controlling both vesicle priming and the trigger for exocytosis.
突触前钙通道功能对于将电信息转化为化学信号传递至关重要,但对于塑造该功能的活性区分子却知之甚少。我们发现,Munc13是一种对于胞吐作用必不可少的活性区蛋白,它还能控制突触前电压门控钙通道(VGCC)的功能,决定其在各种活动形式中的行为。我们证明,在体外,Munc13通过其C2B结构域中的一对碱性残基与电压-VGCC相互作用。我们表明,通过去除Munc13或用Munc13 C2B突变体替换Munc13来消除这种相互作用,会改变突触VGCC对高频动作电位爆发的反应及其恢复情况,并改变单个动作电位刺激引起的钙内流。这些研究阐明了一种新型的突触调制形式,并表明Munc13通过控制囊泡启动和胞吐触发,对神经末梢的信息传递具有深远影响。