Coleman M J, Meyrand P, Nusbaum M P
University of Alabama at Birmingham, Department of Physiology and Biophysics 35294, USA.
Nature. 1995 Nov 30;378(6556):502-5. doi: 10.1038/378502a0.
Presynaptic inhibition reduces chemical synaptic transmission in the central nervous system between pairs of neurons, but its role(s) in shaping the multisynaptic interactions underlying neural network activity are not well studied. We therefore used the crustacean stomatogastric nervous system to study how presynaptic inhibition of the identified projection neuron, modulatory commissural neuron 1 (MCN1), influences the MCN1 synaptic effects on the gastric mill neural network. Tonic MCN1 discharge excites gastric mill network neurons and activates the gastric mill rhythm. One network neuron, the lateral gastric (LG) neuron, presynaptically inhibits MCN1 and is electrically coupled to its terminals. We show here that this presynaptic inhibition selectively reduces or eliminates transmitter-mediated excitation from MCN1 without reducing its electrically mediated excitatory effects, thereby switching the network neurons excited by MCN1. By switching the type of synaptic output from MCN1 and, hence, the activated network neurons, this presynaptic inhibition is pivotal to motor pattern generation.
突触前抑制可减少中枢神经系统中神经元对之间的化学突触传递,但其在塑造神经网络活动所依赖的多突触相互作用中的作用尚未得到充分研究。因此,我们利用甲壳类动物的口胃神经系统来研究对已识别的投射神经元——调制联合神经元1(MCN1)的突触前抑制如何影响MCN1对胃磨神经网络的突触效应。持续性的MCN1放电会兴奋胃磨神经网络神经元并激活胃磨节律。一个网络神经元,即外侧胃(LG)神经元,对MCN1进行突触前抑制,并与其终末形成电耦合。我们在此表明,这种突触前抑制选择性地减少或消除了来自MCN1的递质介导的兴奋,而不降低其电介导的兴奋效应,从而改变了由MCN1兴奋的网络神经元。通过改变MCN1的突触输出类型,进而改变被激活的网络神经元,这种突触前抑制对运动模式的产生至关重要。