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首页> 外文期刊>The Neuroscientist: a review journal bringing neurobiology, neurology and psychiatry >Zn2+ ions: modulators of excitatory and inhibitory synaptic activity.
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Zn2+ ions: modulators of excitatory and inhibitory synaptic activity.

机译:Zn2 +离子:兴奋性和抑制性突触活性的调节剂。

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摘要

The role of Zn(2+) in the CNS has remained enigmatic for several decades. This divalent cation is accumulated by specific neurons into synaptic vesicles and can be released by stimulation in a Ca(2+)-dependent manner. Using Zn(2+) fluorophores, radiolabeled Zn(2+), and selective chelators, the location of this ion and its release pattern have been established across the brain. Given the distribution and possible release under physiological conditions, Zn(2+) has the potential to act as a modulator of both excitatory and inhibitory neurotransmission. Excitatory N-methyl-D-aspartate (NMDA) receptors are directly inhibited by Zn(2+), whereas non-NMDA receptors appear relatively unaffected. In contrast, inhibitory transmission mediated via GABA(A)receptors can be potentiated via a presynaptic mechanism, influencing transmitter release; however, although some tonic GABAergic inhibition may be suppressed by Zn(2+), most synaptic GABA receptors are unlikely to be modulated directly by this cation. In the spinal cord, glycinergic transmission may also be affected by Zn(2+) causing potentiation. Recently, the penetration of synaptically released Zn(2+) into neurons suggests that this ion has the potential to act as a direct transmitter, by affecting postsynaptic signaling pathways. Taken overall, present studies are broadly supportive of a neuromodulatory role for Zn(2+) at specific excitatory and inhibitory synapses.
机译:Zn(2+)在中枢神经系统中的作用几十年来一直是个谜。此二价阳离子被特定的神经元积累到突触小泡中,并可以通过刺激以Ca(2+)依赖的方式释放。使用Zn(2+)荧光团,放射性标记的Zn(2+)和选择性螯合剂,已经在大脑中建立了该离子的位置及其释放模式。鉴于在生理条件下的分布和可能的释放,Zn(2+)有可能充当兴奋性和抑制性神经传递的调节剂。兴奋性N-甲基-D-天冬氨酸(NMDA)受体直接被Zn(2+)抑制,而非NMDA受体似乎相对不受影响。相比之下,可以通过突触前机制增强通过GABA(A)受体介导的抑制性传递,从而影响递质的释放。但是,尽管某些补品对GABA的抑制作用可能被Zn(2+)抑制,但是大多数突触GABA受体不太可能直接被该阳离子调节。在脊髓中,甘氨酸传递也可能受Zn(2+)的影响而引起增强作用。最近,突触释放的Zn(2+)进入神经元的渗透表明,该离子具有通过影响突触后信号通路而充当直接递质的潜力。总的来说,目前的研究广泛支持在特定的兴奋性和抑制性突触中Zn(2+)的神经调节作用。

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