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可塑性时代:新皮质微回路中突触可塑性的发育调控

The age of plasticity: developmental regulation of synaptic plasticity in neocortical microcircuits.

作者信息

Maffei Arianna, Turrigiano Gina

机构信息

Department of Biology and Center for Behavioral Genomics, Brandeis University, Waltham, MA 02454, USA.

出版信息

Prog Brain Res. 2008;169:211-23. doi: 10.1016/S0079-6123(07)00012-X.

DOI:10.1016/S0079-6123(07)00012-X
PMID:18394476
Abstract

Proper wiring of neural circuits during development depends on both molecular cues that guide connectivity and activity-dependent mechanisms that use patterned activation to adjust the strength and number of synaptic connections. In this chapter, we discuss some of the plasticity mechanisms underlying the experience-dependent rewiring of visual cortical microcircuits focusing on layer 4 of rat primary visual cortex. The microcircuit in layer 4 has the ability to regulate its excitability by shifting the balance between excitatory and inhibitory synaptic transmission in an experience-dependent manner. Early in postnatal development (shortly after eye opening), visual deprivation activates several forms of homeostatic plasticity that cooperate to adjust layer 4 excitability to compensate for reduced sensory drive. In contrast, during the classical sensitive period for rodent visual system plasticity, this homeostatic response is replaced by mechanisms that reduce the responsiveness of deprived cortex. We discuss this developmentally regulated switch in plasticity within layer 4 and how this might depend on the maturation of excitatory and inhibitory monosynaptic connections. Based on our published data, we propose inhibitory plasticity as an important player in circuit refinement that can contribute both to the compensatory forms of circuit plasticity in the early stages of development and to the pathological loss of function induced by visual deprivation during the critical period.

摘要

神经回路在发育过程中的正确布线取决于引导连接的分子线索和依赖活动的机制,后者利用模式化激活来调节突触连接的强度和数量。在本章中,我们将讨论视觉皮层微回路依赖经验重新布线的一些可塑性机制,重点关注大鼠初级视觉皮层的第4层。第4层中的微回路能够通过以依赖经验的方式改变兴奋性和抑制性突触传递之间的平衡来调节其兴奋性。在出生后早期发育阶段(睁眼后不久),视觉剥夺会激活多种形式的稳态可塑性,这些可塑性协同作用以调节第4层的兴奋性,以补偿感觉驱动的减少。相比之下,在啮齿动物视觉系统可塑性的经典敏感期,这种稳态反应会被降低剥夺皮层反应性的机制所取代。我们将讨论第4层中这种发育调控的可塑性开关,以及它如何可能依赖于兴奋性和抑制性单突触连接的成熟。基于我们已发表的数据,我们提出抑制性可塑性是回路精细化中的一个重要因素,它既可以在发育早期阶段促进回路可塑性的补偿形式,也可以在关键期导致由视觉剥夺引起的病理性功能丧失。

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