Ueda Atsushi, Wu Chun-Fang
Department of Biological Sciences, University of Iowa, Iowa City, Iowa 52242, USA.
J Neurogenet. 2009;23(1-2):185-99. doi: 10.1080/01677060802471726. Epub 2008 Dec 19.
Although modulation of presynaptic terminal excitability can profoundly affect transmission efficacy, how excitability along axonal terminal branches is regulated requires further investigations. We performed focal patch recording in Drosophila larval neuromuscular junctions (NMJs) to monitor the activity of individual synaptic boutons along the presynaptic terminal. Analysis of the learning mutant rutabaga (rut) suggests a tight regulation of presynaptic terminal excitability by rut adenylyl cyclase (AC) that is responsible for Ca2+/calmodulin-dependent cAMP synthesis. Focal excitatory junctional currents (ejcs) demonstrated that disrupted cAMP metabolism in rut mutant boutons leads to decreased transmitter release, coupled with temporal dispersion and amplitude fluctuation of ejcs during repetitive activity. Strikingly, rut motor terminals displayed greatly increased variability among corresponding terminal branches of identified NMJs in different preparations. However, boutons throughout single terminal branches were relatively uniform in either WT or rut mutant larvae. The use of electrotonic depolarization to directly evoke transmitter release from axonal terminals revealed that variability in neurotransmission originated from varying degrees of weakened excitability in rut terminals. Pharmacological treatments and axonal action potential recordings raised the possibility that defective rut AC resulted in reduced Ca2+ currents in the nerve terminal. Thus, our data indicate that rut AC not only affects transmitter release machinery, but also plays a previously unsuspected role in local excitability control, both contributing to transmission level and precision along the entire axonal terminal.
尽管突触前终末兴奋性的调节可深刻影响传递效能,但沿轴突终末分支的兴奋性是如何调控的仍需进一步研究。我们在果蝇幼虫神经肌肉接头(NMJ)中进行了局灶性膜片钳记录,以监测突触前终末单个突触小体的活动。对学习突变体rutabaga(rut)的分析表明,rut腺苷酸环化酶(AC)对突触前终末兴奋性进行了严格调控,该酶负责Ca2+/钙调蛋白依赖性cAMP的合成。局灶性兴奋性接头电流(ejc)表明,rut突变体突触小体中cAMP代谢的破坏导致递质释放减少,同时在重复活动期间ejc出现时间离散和幅度波动。令人惊讶的是,在不同标本中,rut运动终末在已识别NMJ的相应终末分支之间表现出极大的变异性增加。然而,在野生型或rut突变体幼虫中,单个终末分支上的突触小体相对均匀。利用电紧张性去极化直接诱发轴突终末释放递质,结果表明神经传递的变异性源于rut终末兴奋性不同程度的减弱。药理学处理和轴突动作电位记录提示,rut AC缺陷可能导致神经终末Ca2+电流减少。因此,我们的数据表明,rut AC不仅影响递质释放机制,而且在局部兴奋性控制中发挥了先前未被怀疑的作用,两者都对整个轴突终末的传递水平和精确性有贡献。