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首页> 外文期刊>Journal of Neurochemistry: Offical Journal of the International Society for Neurochemistry >Molecular mechanisms underlying glutamatergic dysfunction in schizophrenia: therapeutic implications.
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Molecular mechanisms underlying glutamatergic dysfunction in schizophrenia: therapeutic implications.

机译:精神分裂症中谷氨酸能功能障碍的分子机制:治疗意义。

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Early models for the etiology of schizophrenia focused on dopamine neurotransmission because of the powerful anti-psychotic action of dopamine antagonists. Nevertheless, recent evidence increasingly supports a primarily glutamatergic dysfunction in this condition, where dopaminergic disbalance is a secondary effect. A current model for the pathophysiology of schizophrenia involves a dysfunctional mechanism by which the NMDA receptor (NMDAR) hypofunction leads to a dysregulation of GABA fast- spiking interneurons, consequently disinhibiting pyramidal glutamatergic output and disturbing the signal-to-noise ratio. This mechanism might explain better than other models some cognitive deficits observed in this disease, as well as the dopaminergic alterations and therapeutic effect of anti-psychotics. Although the modulation of glutamate activity has, in principle, great therapeutic potential, a side effect of NMDAR overactivation is neurotoxicity, which accelerates neuropathological alterations in this illness. We propose that metabotropic glutamate receptors can have a modulatory effect over the NMDAR and regulate excitotoxity mechanisms. Therefore, in our view metabotropic glutamate receptors constitute a highly promising target for future drug treatment in this disease.
机译:精神分裂症的早期病因学模型集中于多巴胺神经传递,因为多巴胺拮抗剂具有强大的抗精神病作用。然而,最近的证据越来越多地支持这种情况下的主要谷氨酸能功能障碍,其中多巴胺能失衡是次要作用。当前的精神分裂症病理生理学模型涉及功能失调的机制,NMDA受体(NMDAR)的功能低下会导致GABA快速增高的中间神经元失调,从而抑制锥体束谷氨酸能输出并干扰信噪比。这种机制可能比其他模型更好地解释了在这种疾病中观察到的一些认知缺陷,以及多巴胺能改变和抗精神病药的治疗作用。尽管原则上谷氨酸活性的调节具有巨大的治疗潜力,但是NMDAR过度活化的副作用是神经毒性,其加速了这种疾病的神经病理学改变。我们建议代谢型谷氨酸受体可以对NMDAR具有调节作用,并调节兴奋性毒性机制。因此,我们认为代谢型谷氨酸受体构成了该疾病未来药物治疗的高度有希望的靶标。

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