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活动依赖的突触精细化:来自……的新见解

Activity-Dependent Synaptic Refinement: New Insights from .

作者信息

Vonhoff Fernando, Keshishian Haig

机构信息

Department of Molecular, Cellular and Developmental Biology, Yale UniversityNew Haven, CT, USA.

出版信息

Front Syst Neurosci. 2017 Apr 21;11:23. doi: 10.3389/fnsys.2017.00023. eCollection 2017.

DOI:10.3389/fnsys.2017.00023
PMID:28484377
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5399093/
Abstract

During development, neurons establish inappropriate connections as they seek out their synaptic partners, resulting in supernumerary synapses that must be pruned away. The removal of miswired synapses usually involves electrical activity, often through a Hebbian spike-timing mechanism. A novel form of activity-dependent refinement is used by that may be non-Hebbian, and is critical for generating the precise connectivity observed in that system. In , motoneurons use both glutamate and the biogenic amine octopamine for neurotransmission, and the muscle fibers receive multiple synaptic inputs. Motoneuron growth cones respond in a time-regulated fashion to multiple chemotropic signals arising from their postsynaptic partners. Central to this mechanism is a very low frequency (<0.03 Hz) oscillation of presynaptic cytoplasmic calcium, that regulates and coordinates the action of multiple downstream effectors involved in the withdrawal from off-target contacts. Low frequency calcium oscillations are widely observed in developing neural circuits in mammals, and have been shown to be critical for normal connectivity in a variety of neural systems. In these mechanisms allow the growth cone to sample widely among possible synaptic partners, evaluate opponent chemotropic signals, and withdraw from off-target contacts. It is possible that the underlying molecular mechanisms are conserved widely among invertebrates and vertebrates.

摘要

在发育过程中,神经元在寻找突触伙伴时会建立不适当的连接,导致必须修剪掉多余的突触。错误连接的突触的清除通常涉及电活动,通常是通过赫布式的突触发放时间机制。一种新的活动依赖性精细化形式被[具体生物名称]所采用,这种形式可能是非赫布式的,并且对于在该系统中产生精确的连接至关重要。在[具体生物名称]中,运动神经元使用谷氨酸和生物胺章鱼胺进行神经传递,并且肌肉纤维接收多个突触输入。运动神经元生长锥以时间调节的方式对来自其突触后伙伴的多种化学趋向性信号作出反应。这一机制的核心是突触前细胞质钙的非常低频(<0.03Hz)振荡,它调节和协调参与从偏离目标接触中撤出的多个下游效应器的作用。低频钙振荡在哺乳动物发育中的神经回路中广泛观察到,并且已被证明对于多种神经系统中的正常连接至关重要。在[具体生物名称]中,这些机制使生长锥能够在可能的突触伙伴中广泛采样,评估对抗性化学趋向性信号,并从偏离目标的接触中撤出。潜在的分子机制在无脊椎动物和脊椎动物中可能广泛保守。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e628/5399093/8e1694eb73a9/fnsys-11-00023-g0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e628/5399093/9e596dd92dcf/fnsys-11-00023-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e628/5399093/8e1694eb73a9/fnsys-11-00023-g0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e628/5399093/9e596dd92dcf/fnsys-11-00023-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e628/5399093/8e1694eb73a9/fnsys-11-00023-g0002.jpg

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