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肺螺亚纲蜗牛三角帆蚌神经肌肉再生过程中运动神经元突触传递的调节与恢复

Regulation and restoration of motoneuronal synaptic transmission during neuromuscular regeneration in the pulmonate snail Helisoma trivolvis.

作者信息

Turner M B, Szabo-Maas T M, Poyer J C, Zoran M J

机构信息

Department of Cellular Biology, University of Georgia, Athens, USA.

出版信息

Biol Bull. 2011 Aug;221(1):110-25. doi: 10.1086/BBLv221n1p110.

Abstract

Regeneration of motor systems involves reestablishment of central control networks, reinnervation of muscle targets by motoneurons, and reconnection of neuromodulatory circuits. Still, how these processes are integrated as motor function is restored during regeneration remains ill defined. Here, we examined the mechanisms underlying motoneuronal regeneration of neuromuscular synapses related to feeding movements in the pulmonate snail Helisoma trivolvis. Neurons B19 and B110, although activated during different phases of the feeding pattern, innervate similar sets of muscles. However, the percentage of muscle fibers innervated, the efficacy of excitatory junction potentials, and the strength of muscle contractions were different for each cell's specific connections. After peripheral nerve crush, a sequence of transient electrical and chemical connections formed centrally within the buccal ganglia. Neuromuscular synapse regeneration involved a three-phase process: the emergence of spontaneous synaptic transmission (P1), the acquisition of evoked potentials of weak efficacy (P2), and the establishment of functional reinnervation (P3). Differential synaptic efficacy at muscle contacts was recapitulated in cell culture. Differences in motoneuronal presynaptic properties (i.e., quantal content) were the basis of disparate neuromuscular synapse function, suggesting a role for retrograde target influences. We propose a homeostatic model of molluscan motor system regeneration. This model has three restoration events: (1) transient central synaptogenesis during axonal outgrowth, (2) intermotoneuronal inhibitory synaptogenesis during initial neuromuscular synapse formation, and (3) target-dependent regulation of neuromuscular junction formation.

摘要

运动系统的再生涉及中枢控制网络的重建、运动神经元对肌肉靶点的重新支配以及神经调节回路的重新连接。然而,在再生过程中这些过程是如何整合以恢复运动功能的,仍然不清楚。在这里,我们研究了与肺螺类蜗牛三角帆蚌进食运动相关的神经肌肉突触运动神经元再生的潜在机制。神经元B19和B110虽然在进食模式的不同阶段被激活,但支配相似的肌肉群。然而,每个细胞特定连接的肌肉纤维支配百分比、兴奋性接头电位的效能以及肌肉收缩的强度是不同的。外周神经挤压后,在颊神经节内中枢形成了一系列短暂的电和化学连接。神经肌肉突触再生涉及一个三相过程:自发突触传递的出现(P1)、弱效能诱发电位的获得(P2)以及功能性再支配的建立(P3)。细胞培养中再现了肌肉接触处不同的突触效能。运动神经元突触前特性(即量子含量)的差异是神经肌肉突触功能不同的基础,这表明逆行靶点影响发挥了作用。我们提出了一个软体动物运动系统再生的稳态模型。这个模型有三个恢复事件:(1)轴突生长过程中的短暂中枢突触形成,(2)初始神经肌肉突触形成过程中的运动神经元间抑制性突触形成,以及(3)神经肌肉接头形成的靶点依赖性调节。

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