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重新洗牌:NR3如何调节NMDA受体功能。

Shuffling the deck anew: how NR3 tweaks NMDA receptor function.

作者信息

Cavara Nora A, Hollmann Michael

机构信息

International Graduate School of Neuroscience (IGSN), Ruhr University Bochum, Bochum, Germany.

出版信息

Mol Neurobiol. 2008 Aug;38(1):16-26. doi: 10.1007/s12035-008-8029-9. Epub 2008 Jul 25.

Abstract

The N-methyl-D -aspartate (NMDA) receptors are the most complex members in the family of ionotropic glutamate receptors. They are involved in long-term potentiation and underlie higher cognitive functions like memory formation and learning. On the other hand, overstimulation of NMDA receptors (NMDARs), leading to a massive influx of Ca(2+) ions into the cell, is linked to neurodegenerative disorders such as for example Huntington's disease and epilepsy. NMDARs are generally considered to be heteromeric tetramers and are conventionally thought to assemble from NR1 splice variants and NR2 subunits, which determine crucial channel properties. With the recent discovery of the functionally different NR3 subunits, many of the known features of NMDARs are being reassessed: The presence of NR3 in NMDARs decreases Mg(2+) sensitivity and Ca(2+) permeability and reduces agonist-induced current responses. Between altering those essential key characteristics of conventional NMDARs and forming a new class of excitatory glycine receptors when coassembling with NR1, the NR3 subunits give rise to a functionally entirely new array of "NMDA" receptors. Understanding the multifaceted influence of NR3 is imperative to further the understanding of the complex role of NMDARs in neurotransmission and higher brain functions.

摘要

N-甲基-D-天冬氨酸(NMDA)受体是离子型谷氨酸受体家族中最为复杂的成员。它们参与长时程增强作用,并构成诸如记忆形成和学习等高级认知功能的基础。另一方面,NMDA受体(NMDARs)的过度刺激会导致大量Ca(2+)离子涌入细胞,这与神经退行性疾病如亨廷顿舞蹈症和癫痫有关。NMDARs通常被认为是异源四聚体,传统上认为它们由NR1剪接变体和NR2亚基组装而成,这些亚基决定了关键的通道特性。随着功能不同的NR3亚基的发现,NMDARs的许多已知特性正在被重新评估:NMDARs中NR3的存在降低了Mg(2+)敏感性和Ca(2+)通透性,并减少了激动剂诱导的电流反应。在改变传统NMDARs的这些基本关键特性以及与NR1共同组装时形成一类新的兴奋性甘氨酸受体之间,NR3亚基产生了一系列功能上全新的“NMDA”受体。了解NR3的多方面影响对于进一步理解NMDARs在神经传递和高级脑功能中的复杂作用至关重要。

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