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环磷酸鸟苷(cGMP)依赖性蛋白激酶基因敲除小鼠小脑(磷酸化)蛋白质组的改变

Alterations in the cerebellar (Phospho)proteome of a cyclic guanosine monophosphate (cGMP)-dependent protein kinase knockout mouse.

作者信息

Corradini Eleonora, Vallur Raghavan, Raaijmakers Linsey M, Feil Susanne, Feil Robert, Heck Albert J R, Scholten Arjen

机构信息

From ‡Biomolecular Mass Spectrometry and Proteomics, Bijvoet Center for Biomolecular Research and Utrecht Institute for Pharmaceutical Sciences, Utrecht University, Padualaan 8, 3584 CH Utrecht, The Netherlands; §Netherlands Proteomics Centre, Padualaan 8, 3584 CH Utrecht, The Netherlands;

¶Interfakultäres Institut für Biochemie, Universität Tübingen, D-72074 Tübingen, Germany; ‖Graduate School for Cellular and Molecular Neuroscience, Universität Tübingen, D-72074 Tübingen, Germany; **German Center for Neurodegenerative diseases (DZNE), D-72076 Tübingen, Germany.

出版信息

Mol Cell Proteomics. 2014 Aug;13(8):2004-16. doi: 10.1074/mcp.M113.035154. Epub 2014 Jun 12.

Abstract

The cyclic nucleotide cyclic guanosine monophosphate (cGMP) plays an important role in learning and memory, but its signaling mechanisms in the mammalian brain are not fully understood. Using mass-spectrometry-based proteomics, we evaluated how the cerebellum adapts its (phospho)proteome in a knockout mouse model of cGMP-dependent protein kinase type I (cGKI). Our data reveal that a small subset of proteins in the cerebellum (∼3% of the quantified proteins) became substantially differentially expressed in the absence of cGKI. More changes were observed at the phosphoproteome level, with hundreds of sites being differentially phosphorylated between wild-type and knockout cerebellum. Most of these phosphorylated sites do not represent known cGKI substrates. An integrative computational network analysis of the data indicated that the differentially expressed proteins and proteins harboring differentially phosphorylated sites largely belong to a tight network in the Purkinje cells of the cerebellum involving important cGMP/cAMP signaling nodes (e.g. PDE5 and PKARIIβ) and Ca(2+) signaling (e.g. SERCA3). In this way, removal of cGKI could be linked to impaired cerebellar long-term depression at Purkinje cell synapses. In addition, we were able to identify a set of novel putative (phospho)proteins to be considered in this network. Overall, our data improve our understanding of cerebellar cGKI signaling and suggest novel players in cGKI-regulated synaptic plasticity.

摘要

环核苷酸环磷酸鸟苷(cGMP)在学习和记忆中起着重要作用,但其在哺乳动物大脑中的信号传导机制尚未完全明确。我们利用基于质谱的蛋白质组学技术,在I型cGMP依赖性蛋白激酶(cGKI)基因敲除小鼠模型中评估了小脑如何使其(磷酸化)蛋白质组发生适应性变化。我们的数据显示,在缺乏cGKI的情况下,小脑中一小部分蛋白质(约占定量蛋白质的3%)的表达出现了显著差异。在磷酸化蛋白质组水平上观察到了更多变化,野生型和基因敲除型小脑之间有数百个位点的磷酸化存在差异。这些磷酸化位点大多并非已知的cGKI底物。对数据进行的综合计算网络分析表明,差异表达的蛋白质以及含有差异磷酸化位点的蛋白质主要属于小脑中浦肯野细胞内一个紧密的网络,该网络涉及重要的cGMP/cAMP信号节点(如PDE5和PKARIIβ)以及Ca(2+)信号传导(如SERCA3)。通过这种方式,cGKI的缺失可能与浦肯野细胞突触处小脑长时程抑制受损有关。此外,我们能够识别出该网络中一组新的假定(磷酸化)蛋白质。总体而言,我们的数据增进了我们对小脑cGKI信号传导的理解,并提示了cGKI调节的突触可塑性中的新参与者。

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