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首页> 外文期刊>Neuroscience: An International Journal under the Editorial Direction of IBRO >Anatomical pathways and molecular mechanisms for plasticity in the barrel cortex.
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Anatomical pathways and molecular mechanisms for plasticity in the barrel cortex.

机译:桶状皮质可塑性的解剖学途径和分子机制。

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摘要

The barrel cortex has yielded a wealth of information about cortical plasticity in recent years. Barrel cortex is one of the few cortical areas studied so far where plasticity can be examined from birth through to adulthood. This review looks at plasticity mechanisms in three periods of life: early post-natal development, adolescence and adulthood. Separate consideration is given to depression and potentiation mechanisms.Plasticity can be induced in barrel cortex by whisker deprivation. Single whisker experience leads to expansion of the area of cortex responding to the spared whisker. In early post-natal life, plasticity occurs in thalamocortical pathways, while later in adolescence, intracortical pathways become more important. Ablation of the spared whisker's barrel prevents expression of plasticity in the cortex. A row of lesions between the spared and an adjacent barrel prevents expression of plasticity in the adjacent barrel. This evidence, together with latency of response data and an analysis of pathways capable of inducing long-term potentiation (LTP) within barrel cortex, leads to the view that horizontal and/or diagonal pathways between barrels are responsible for plasticity expression.The mouse has become the most commonly mutated mammalian species and has a well-developed barrel cortex. Therefore, mutations can be used to study the role of particular molecules in experience-dependent plasticity of barrel cortex. Through this work, it has become clear that the major post-synaptic density protein, alpha-CaMKII, and its T286 autophosphorylation site are essential for experience-dependent plasticity. This points to a major role for excitatory transmission in cortical plasticity and raises the possibility that LTP like mechanisms are involved. Furthermore, transgenic mice carrying a reporter gene for CRE have provided evidence that CRE-mediated gene expression is also involved in barrel cortex plasticity. This view is supported by studies on alpha/delta CREB knockouts, and provides a starting point for studying the role of gene expression in experience-dependent cortical plasticity.
机译:近年来,桶状皮质已获得了大量有关皮质可塑性的信息。迄今为止,桶状皮质是为数不多的可以研究从出生到成年的可塑性的领域之一。这篇综述着眼于生命的三个阶段的可塑性机制:产后早期发育,青春期和成年期。消沉和增强机制被分开考虑。晶须剥夺可以在桶状皮质中诱导可塑性。单一晶须的经验会导致皮层面积的扩大,以应对多余的晶须。在出生后早期,可塑性发生在丘脑皮质途径中,而在青春期后期,皮质内途径变得更为重要。备用晶须筒的烧蚀可防止在皮质中表现出可塑性。备用枪管与相邻枪管之间的一排损伤阻止了在相邻枪管中表现出可塑性。该证据与响应数据的潜伏期以及对能够在桶状皮质内诱导长期增强(LTP)的途径的分析一起得出的观点是,桶之间的水平和/或对角途径负责可塑性表达。成为最常见的突变哺乳动物,并具有发达的桶状皮质。因此,可以使用突变来研究特定分子在桶状皮质的经验依赖性可塑性中的作用。通过这项工作,很明显,主要的突触后密度蛋白,α-CaMKII及其T286自磷酸化位点对于依赖于经验的可塑性至关重要。这指出了兴奋性传递在皮层可塑性中的重要作用,并增加了涉及LTP样机制的可能性。此外,携带CRE报告基因的转基因小鼠已提供证据,表明CRE介导的基因表达也参与了桶皮质的可塑性。该观点得到α/δCREB基因敲除研究的支持,并为研究基因表达在依赖经验的皮质可塑性中的作用提供了起点。

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