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突触后海人酸型谷氨酸受体的再循环和表面表达受代谢型自身受体信号的调节。

Postsynaptic kainate receptor recycling and surface expression are regulated by metabotropic autoreceptor signalling.

机构信息

School of Biochemistry, University of Bristol, Medical Sciences Building, University Walk, Bristol BS8 1TD, UK.

出版信息

Traffic. 2013 Jul;14(7):810-22. doi: 10.1111/tra.12071. Epub 2013 Apr 25.

Abstract

Kainate receptors (KARs) play fundamentally important roles in controlling synaptic function and regulating neuronal excitability. Postsynaptic KARs contribute to excitatory neurotransmission but the molecular mechanisms underlying their activity-dependent surface expression are not well understood. Strong activation of KARs in cultured hippocampal neurons leads to the downregulation of postsynaptic KARs via endocytosis and degradation. In contrast, low-level activation augments postsynaptic KAR surface expression. Here, we show that this increase in KARs is due to enhanced recycling via the recruitment of Rab11-dependent, transferrin-positive endosomes into spines. Dominant-negative Rab11 or the recycling inhibitor primaquine prevents the kainate-evoked increase in surface KARs. Moreover, we show that the increase in surface expression is mediated via a metabotropic KAR signalling pathway, which is blocked by the protein kinase C inhibitor chelerythrine, the calcium chelator BAPTA and the G-protein inhibitor pertussis toxin. Thus, we report a previously uncharacterized positive feedback system that increases postsynaptic KARs in response to low- or moderate-level agonist activation and can provide additional flexibility to synaptic regulation.

摘要

kainate 受体 (KARs) 在控制突触功能和调节神经元兴奋性方面发挥着至关重要的作用。突触后 KARs 有助于兴奋性神经递质的传递,但它们的活动依赖性表面表达的分子机制尚不清楚。在培养的海马神经元中,KARs 的强烈激活会通过内吞作用和降解导致突触后 KARs 的下调。相比之下,低水平的激活会增加突触后 KAR 的表面表达。在这里,我们表明,这种 KAR 的增加是由于通过招募 Rab11 依赖性、转铁蛋白阳性内体进入棘突来增强回收。显性负性 Rab11 或回收抑制剂伯氨喹可防止 KAR 激动剂诱导的表面 KAR 增加。此外,我们表明,表面表达的增加是通过代谢型 KAR 信号通路介导的,该通路可被蛋白激酶 C 抑制剂Chelerythrine、钙螯合剂 BAPTA 和 G 蛋白抑制剂百日咳毒素阻断。因此,我们报告了一个以前未被描述的正反馈系统,该系统可响应低或中等水平的激动剂激活增加突触后 KARs,从而为突触调节提供额外的灵活性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b942/3744763/dd39effdb291/tra0014-0810-f1.jpg

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