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突触后信号蛋白复合物在纹状体和海马体中的差异关联。

Differential association of postsynaptic signaling protein complexes in striatum and hippocampus.

机构信息

Department of Molecular Physiology and Biophysics, Vanderbilt Kennedy Center, Vanderbilt University School of Medicine, Nashville, Tennessee, USA.

出版信息

J Neurochem. 2013 Feb;124(4):490-501. doi: 10.1111/jnc.12101. Epub 2012 Dec 26.

Abstract

Distinct physiological stimuli are required for bidirectional synaptic plasticity in striatum and hippocampus, but differences in the underlying signaling mechanisms are poorly understood. We have begun to compare levels and interactions of key excitatory synaptic proteins in whole extracts and subcellular fractions isolated from micro-dissected striatum and hippocampus. Levels of multiple glutamate receptor subunits, calcium/calmodulin-dependent protein kinase II (CaMKII), a highly abundant serine/threonine kinase, and spinophilin, a F-actin and protein phosphatase 1 (PP1) binding protein, were significantly lower in striatal extracts, as well as in synaptic and/or extrasynaptic fractions, compared with similar hippocampal extracts/fractions. However, CaMKII interactions with spinophilin were more robust in striatum compared with hippocampus, and this enhanced association was restricted to the extrasynaptic fraction. NMDAR GluN2B subunits associate with both spinophilin and CaMKII, but spinophilin-GluN2B complexes were enriched in extrasynaptic fractions whereas CaMKII-GluN2B complexes were enriched in synaptic fractions. Notably, the association of GluN2B with both CaMKII and spinophilin was more robust in striatal extrasynaptic fractions compared with hippocampal extrasynaptic fractions. Selective differences in the assembly of synaptic and extrasynaptic signaling complexes may contribute to differential physiological regulation of excitatory transmission in striatum and hippocampus.

摘要

纹状体和海马体中双向突触可塑性需要不同的生理刺激,但基础信号机制的差异尚未得到很好的理解。我们已经开始比较从小脑和海马体微切割中分离的全提取物和亚细胞级分中关键兴奋性突触蛋白的水平和相互作用。与类似的海马体提取物/级分相比,纹状体提取物以及突触和/或非突触级分中的多种谷氨酸受体亚基、钙/钙调蛋白依赖性蛋白激酶 II(CaMKII)、高度丰富的丝氨酸/苏氨酸激酶和螺旋蛋白的水平显着降低。然而,与海马体相比,CaMKII 与螺旋蛋白的相互作用在纹状体中更为强烈,这种增强的关联仅限于非突触级分。NMDAR GluN2B 亚基与螺旋蛋白和 CaMKII 都结合,但螺旋蛋白-GluN2B 复合物在非突触级分中富集,而 CaMKII-GluN2B 复合物在突触级分中富集。值得注意的是,与 CaMKII 和螺旋蛋白的 GluN2B 结合在纹状体的非突触级分中比海马体的非突触级分中更为强烈。突触和非突触信号复合物组装的选择性差异可能有助于调节纹状体和海马体中兴奋性传递的不同生理机制。

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