Mott David D, Benveniste Morris, Dingledine Raymond J
Department of Pharmacology, Physiology, and Neuroscience, University of South Carolina School of Medicine, Columbia, South Carolina 29208, USA.
J Neurosci. 2008 Feb 13;28(7):1659-71. doi: 10.1523/JNEUROSCI.3567-07.2008.
Kainate receptors contribute to synaptic plasticity and rhythmic oscillatory firing of neurons in corticolimbic circuits including hippocampal area CA3. We use zinc chelators and mice deficient in zinc transporters to show that synaptically released zinc inhibits postsynaptic kainate receptors at mossy fiber synapses and limits frequency facilitation of kainate, but not AMPA EPSCs during theta-pattern stimulation. Exogenous zinc also inhibits the facilitatory modulation of mossy fiber axon excitability by kainate but does not suppress the depressive effect of kainate on CA3 axons. Recombinant kainate receptors are inhibited in a subunit-dependent manner by physiologically relevant concentrations of zinc, with receptors containing the KA1 subunit being sensitive to submicromolar concentrations of zinc. Zinc inhibition does not alter receptor desensitization nor apparent agonist affinity and is only weakly voltage dependent, which points to an allosteric mechanism. Zinc inhibition is reduced at acidic pH. Thus, in the presence of zinc, a fall in pH potentiates kainate receptors by relieving zinc inhibition. Acidification of the extracellular space, as occurs during repetitive activity, may therefore serve to unmask kainate receptor neurotransmission. We conclude that zinc modulation of kainate receptors serves an important role in shaping kainate neurotransmission in the CA3 region.
海人酸受体有助于包括海马CA3区在内的皮质边缘回路中神经元的突触可塑性和节律性振荡放电。我们使用锌螯合剂和锌转运体缺陷小鼠来表明,突触释放的锌抑制苔藓纤维突触处的突触后海人酸受体,并限制海人酸的频率易化,但在θ波模式刺激期间不影响AMPA兴奋性突触后电流。外源性锌也抑制海人酸对苔藓纤维轴突兴奋性的易化调节,但不抑制海人酸对CA3轴突的抑制作用。生理相关浓度的锌以亚基依赖的方式抑制重组海人酸受体,含有KA1亚基的受体对亚微摩尔浓度的锌敏感。锌抑制不改变受体脱敏或明显的激动剂亲和力,且仅微弱地依赖电压,这表明是一种变构机制。在酸性pH下锌抑制作用减弱。因此,在锌存在的情况下,pH下降通过解除锌抑制来增强海人酸受体。细胞外空间酸化,如在重复活动期间发生的那样,可能因此有助于揭示海人酸受体神经传递。我们得出结论,锌对海人酸受体的调节在塑造CA3区海人酸神经传递中起重要作用。