Alessandra Preziuso, Tiziano Serfilippi, Marwa Toujani, Valentina Terenzi, Salvatore Amoroso, Simona Magi, Vincenzo Lariccia, Silvia Piccirillo
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摘要

帕金森病(PD)是一种破坏性神经退行性疾病,黑质多巴胺能通路明显缺失。尽管病因多种多样,但破坏神经元完整性的改变可追溯到通常在线粒体输入下运行的基本过程的缺陷。有证据表明,线粒体的活动与这些细胞器的能量表现是分级整合的,因此一个有趣的观点认为,旨在改善线粒体生物能的干预措施有可能减轻帕金森病表型表达的严重性。在这一机理框架下,促进线粒体对谷氨酸(Glut)的无机利用的方法可能会抵消谷氨酸代谢(通常在帕金森病中发生改变)向过度谷氨酸传输的有害转变,而过度谷氨酸传输会滋生兴奋性毒性和神经退行性螺旋。在这项研究中,我们研究了使用谷氨酸脱氢酶(GDH)激活剂 2-氨基双环-(2,2,1)-庚烷-2-羧酸(BCH)来增强谷氨酸脱氢酶(GDH)活性是否具有针对帕金森病损伤的神经保护潜力。在维甲酸分化的 SH-SY5Y 细胞和原代大鼠间脑神经元中,用α-突触核蛋白和鱼藤酮模拟脑损伤,BCH 依赖性 GDH 激活可显著改善细胞活力,提高线粒体 ATP 合成,并将细胞氧化还原负担降至控制水平。令人震惊的是,我们收集到的证据表明,GDH 活性与细胞内特定的兴奋性氨基酸转运体(EAATs)池(即 EAAT3)之间存在着一条功能轴。总之,我们的研究结果揭示了 EAAT3 在 GDH 依赖性保护下抵御帕金森病损伤方面的一种新的非冗余作用,这可能会启发我们采用新的药理学方法来对抗帕金森病病理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A non-redundant role of EAAT3 for ATP synthesis mediated by GDH in dopaminergic neuronal cells: a new avenue for glutamate metabolism and protection in Parkinson's disease.

Parkinson's disease (PD) is a devastating neurodegenerative disorder with a distinct loss of the nigrostriatal dopaminergic pathway. Despite the multiplicity in etiology, alterations that disrupt neuronal integrity can be traced back to defects in fundamental processes that typically run under mitochondrial inputs. Evidence indicates that mitochondrial activities are hierarchically integrated with the energetic performance of these organelles, so that an interesting perspective holds that interventions aimed at improving mitochondrial bioenergetics can potentially mitigate the severity of PD phenotype expression. In this mechanistic framework, approaches that facilitate the mitochondrial anaplerotic use of glutamate (Glut) might counteract the detrimental shift from Glut metabolism, which is typically altered in PD, to excessive Glut transmission that feeds excitotoxicity and the neurodegenerative spiral. In this study, we investigated whether the enhancement of glutamate dehydrogenase (GDH) activity, by using the GDH activator 2-aminobicyclo-(2,2,1)-heptane-2-carboxylic acid (BCH), has neuroprotective potential against PD injury. In both retinoic acid-differentiated SH-SY5Y cells and primary rat mesencephalic neurons challenged with α-synuclein plus rotenone to mimic PD, BCH-dependent GDH activation significantly ameliorated cell viability, improved mitochondrial ATP synthesis and lessened to control levels the cellular redox burden. Strikingly, we collected evidence for the existence of a functional axis connecting GDH activity to a specific intracellular pool of the Excitatory Amino Acid Transporters (EAATs), namely the EAAT3. Overall, our results reveal a novel and non-redundant role of EAAT3 for GDH-dependent protection against PD injury, which may inspire new pharmacological approaches against PD pathology.

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