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突触信号复合物进化中认知的一般基础。

A general basis for cognition in the evolution of synapse signaling complexes.

作者信息

Grant S G N

机构信息

Genes to Cognition Programme, Wellcome Trust Sanger Institute, Cambridge, United Kingdom.

出版信息

Cold Spring Harb Symp Quant Biol. 2009;74:249-57. doi: 10.1101/sqb.2009.74.033. Epub 2009 Dec 2.

Abstract

Beneath the complexity of the human brain are molecular principles shaped by evolution explaining the origins of the behavioral repertoire. The role of the nervous system is to provide a repertoire of behaviors allowing the animal to respond and adapt to changing environments during the course of its life. Multiprotein complexes in the postsynaptic terminal of synapses control adaptive and cognitive processes in metazoan nervous systems. These multiprotein complexes are organized into molecular networks that detect and respond to patterns of neural activity. Combinations of proteins are used to build different complexes and pathways producing great diversity. These complexes evolved from an ancestral core set of proteins controlling adaptive behaviors in unicellular organisms known as the protosynapse. Later expansion in numbers and interactions resulted in more complex synapses in invertebrates and vertebrates. The resultant combinatorial complexity has contributed to the neuroanatomical, neurophysiological, and behavioral diversity in these species. Mutations in genes encoding the complexes result in many human diseases of the nervous system. This general mechanism of cognition provides a useful template for studying evolution of behavior in all animals.

摘要

在人类大脑的复杂性之下,是由进化塑造的分子原理,这些原理解释了行为库的起源。神经系统的作用是提供一系列行为,使动物在其生命过程中能够对不断变化的环境做出反应并适应。突触后终端中的多蛋白复合物控制着后生动物神经系统中的适应性和认知过程。这些多蛋白复合物被组织成分子网络,用于检测神经活动模式并做出反应。蛋白质的组合用于构建不同的复合物和途径,从而产生巨大的多样性。这些复合物从控制单细胞生物(称为原突触)适应性行为的一组祖先核心蛋白质进化而来。后来数量和相互作用的扩展导致无脊椎动物和脊椎动物中出现更复杂的突触。由此产生的组合复杂性促成了这些物种在神经解剖学、神经生理学和行为方面的多样性。编码这些复合物的基因突变会导致许多人类神经系统疾病。这种一般的认知机制为研究所有动物行为的进化提供了一个有用的模板。

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