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视觉皮层可塑性:遗传和环境影响的复杂相互作用。

Visual cortex plasticity: a complex interplay of genetic and environmental influences.

机构信息

Laboratorio di Neurobiologia, Scuola Normale Superiore, Piazza dei Cavalieri 7, 56126 Pisa, Italy.

出版信息

Neural Plast. 2012;2012:631965. doi: 10.1155/2012/631965. Epub 2012 Jul 18.

Abstract

The central nervous system architecture is highly dynamic and continuously modified by sensory experience through processes of neuronal plasticity. Plasticity is achieved by a complex interplay of environmental influences and physiological mechanisms that ultimately activate intracellular signal transduction pathways regulating gene expression. In addition to the remarkable variety of transcription factors and their combinatorial interaction at specific gene promoters, epigenetic mechanisms that regulate transcription have emerged as conserved processes by which the nervous system accomplishes the induction of plasticity. Experience-dependent changes of DNA methylation patterns and histone posttranslational modifications are, in fact, recruited as targets of plasticity-associated signal transduction mechanisms. Here, we shall concentrate on structural and functional consequences of early sensory deprivation in the visual system and discuss how intracellular signal transduction pathways associated with experience regulate changes of chromatin structure and gene expression patterns that underlie these plastic phenomena. Recent experimental evidence for mechanisms of cross-modal plasticity following congenital or acquired sensory deprivation both in human and animal models will be considered as well. We shall also review different experimental strategies that can be used to achieve the recovery of sensory functions after long-term deprivation in humans.

摘要

中枢神经系统结构高度动态,通过神经元可塑性过程不断被感觉经验所修饰。可塑性是通过环境影响和生理机制的复杂相互作用来实现的,这些机制最终激活了调节基因表达的细胞内信号转导途径。除了转录因子的显著多样性及其在特定基因启动子处的组合相互作用之外,调节转录的表观遗传机制已成为神经系统完成可塑性诱导的保守过程。事实上,经验依赖性的 DNA 甲基化模式和组蛋白翻译后修饰变化被招募为与可塑性相关的信号转导机制的靶标。在这里,我们将集中讨论视觉系统中早期感觉剥夺的结构和功能后果,并讨论与经验相关的细胞内信号转导途径如何调节染色质结构和基因表达模式的变化,这些变化是这些可塑性现象的基础。还将考虑人类和动物模型中先天性或获得性感觉剥夺后交叉模态可塑性的机制的最新实验证据。我们还将回顾在人类中长期剥夺后可用于恢复感觉功能的不同实验策略。

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