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翻译后修饰在学习和记忆形成中的作用。

The role of post-translational modifications for learning and memory formation.

作者信息

Sunyer Berta, Diao Weifei, Lubec Gert

机构信息

Department of Pediatrics, Medical University of Vienna, Vienna, Austria.

出版信息

Electrophoresis. 2008 Jun;29(12):2593-602. doi: 10.1002/elps.200700791.

Abstract

Learning and memory depend on molecular mechanisms involving the protein machinery. Recent evidence proposes that post-translational modifications (PTMs) play a major role in these cognitive processes. PTMs including phosphorylation of serine, threonine, and tyrosine are already well-documented to play a role for synaptic plasticity of the brain, neurotransmitter release, vesicle trafficking and synaptosomal or synaptosomal-associated proteins are substrates of a series of specific protein kinases and their counterparts, protein phosphatases. But protein phosphorylation is only one out of many possible PTMs and first work shows a role of palmitoylation as well as glycosylation for proteins involved in memory formation. Recent technology may now allow reliable detection and even quantification of PTMs of proteins involved in the cognitive system. This will contribute to the understanding of mechanisms for learning and memory formation at the chemical level and has to complement determination of protein levels and indeed determination of protein expression per se generates limited information. The many other PTMs expected including protein nitrosylation and alkylation will even represent targets for pharmacological interventions but in turn increase the complexity of the system. Nevertheless, determination of the presence and the function of PTMs is mandatory and promising cognitive research at the protein chemical level.

摘要

学习和记忆依赖于涉及蛋白质机制的分子机制。最近的证据表明,翻译后修饰(PTM)在这些认知过程中起主要作用。包括丝氨酸、苏氨酸和酪氨酸磷酸化在内的PTM已被充分证明在大脑的突触可塑性、神经递质释放、囊泡运输中发挥作用,并且突触体或突触体相关蛋白是一系列特定蛋白激酶及其对应物蛋白磷酸酶的底物。但蛋白质磷酸化只是众多可能的PTM之一,初步研究表明棕榈酰化以及糖基化在参与记忆形成的蛋白质中也发挥作用。现在,最新技术或许能够可靠地检测甚至量化参与认知系统的蛋白质的PTM。这将有助于在化学层面理解学习和记忆形成的机制,并且必须补充蛋白质水平的测定,实际上,蛋白质表达本身的测定所产生的信息有限。预期的许多其他PTM,包括蛋白质亚硝基化和烷基化,甚至将成为药物干预的靶点,但这反过来又增加了系统的复杂性。尽管如此,确定PTM的存在及其功能是蛋白质化学层面认知研究的必要且有前景的方向。

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