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通过对特定神经元的选择性失活确定的龙虾口胃神经节模式生成的潜在机制。III. 电耦合幽门神经元的突触连接。

Mechanisms underlying pattern generation in lobster stomatogastric ganglion as determined by selective inactivation of identified neurons. III. Synaptic connections of electrically coupled pyloric neurons.

作者信息

Eisen J S, Marder E

出版信息

J Neurophysiol. 1982 Dec;48(6):1392-1415. doi: 10.1152/jn.1982.48.6.1392.

Abstract
  1. The pyloric dilator (PD) and anterior burster (AB) neurons in the pyloric system of the lobster stomatogastric ganglion are electrically coupled and synchronously active. We have used the lucifer yellow photoinactivation technique to separate the connections made by the PD motor neurons from those made by the AB interneuron. 2. Photoinactivation of either the two PD neurons or the single AB neuron allowed us to separate the compound inhibitory postsynaptic potentials (IPSPs) in the lateral pyloric (LP) and pyloric (PY) motor neurons resulting from synchronous PD and AB activity into AB-evoked and PD-evoked components. These IPSPs have different time courses, reversal potentials, ion selectivities, and pharmacological properties. 3. Photoinactivation and membrane-potential manipulations indicated that a readily observable IPSP recorded in the AB neuron and correlated with action potentials in the LP neuron is actually an electrotonic potential due to an LP-evoked IPSP in the PD neurons. 4. Selective inactivation of either the two PD neurons or the AB neuron revealed that the IPSP recorded in the ventricular dilator (VD) motor neuron is due solely to AB-released transmitter. 5. The electrical coupling potentials measurable between the AB, PD, and VD neuron somata are due to direct electrical coupling between all of these neurons. 6. Circuit analysis and transmitter identification may be complicated by electrical coupling. We suggest that the presence of electrical coupling between nonidentical neurons may provide a new mechanism that allows changes in synaptic characteristics among neurons within a "hard-wired" circuit.
摘要
  1. 龙虾口胃神经节幽门系统中的幽门扩张神经元(PD)和前爆发神经元(AB)通过电耦合实现同步活动。我们利用荧光黄光灭活技术,将PD运动神经元与AB中间神经元所建立的连接区分开来。2. 对两个PD神经元或单个AB神经元进行光灭活,使我们能够将由PD和AB同步活动所产生的、作用于外侧幽门(LP)和幽门(PY)运动神经元的复合抑制性突触后电位(IPSP),分离为AB诱发成分和PD诱发成分。这些IPSP具有不同的时间进程、反转电位、离子选择性和药理学特性。3. 光灭活和膜电位操作表明,在AB神经元中记录到的、与LP神经元动作电位相关的易于观察到的IPSP,实际上是由于PD神经元中LP诱发的IPSP所产生的电紧张电位。4. 对两个PD神经元或AB神经元进行选择性灭活表明,在心室扩张神经元(VD)运动神经元中记录到的IPSP完全是由AB释放的递质所致。5. 在AB、PD和VD神经元胞体之间可测量到的电耦合电位,是由于所有这些神经元之间的直接电耦合所致。6. 电耦合可能会使电路分析和递质识别变得复杂。我们认为,不同神经元之间存在电耦合可能提供了一种新机制,使“硬连线”电路中的神经元之间的突触特性发生变化。

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