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首页> 外文期刊>Neurochemistry International: The International Journal for the Rapid Publication of Critical Reviews, Preliminary and Original Research Communications in Neurochemistry >Investigations of non-NMDA receptor-induced toxicity in serum-free antioxidant-rich primary cultures of murine cerebellar granule cells.
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Investigations of non-NMDA receptor-induced toxicity in serum-free antioxidant-rich primary cultures of murine cerebellar granule cells.

机译:在无血清抗氧化剂的鼠小脑颗粒细胞原代培养物中研究非NMDA受体诱导的毒性。

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A culture system was developed whereby murine cerebellar granule cells were grown under serum-free conditions in chemically defined B27-supplemented neurobasal medium plus depolarizing K+ levels, to allow the investigation of the role of agonists at the kainate and alpha-amino-3-hydroxy-5-methyl-4-isoxazole propionate (AMPA) receptors in glutamate-mediated neurotoxicity. Neurones were killed in a concentration-dependent manner by L-glutamate, kainate and its analogues, domoate and 4-(2-methoxyphenyl)-2-carboxy-3-pyrrolidineacetic acid, but not by (S)-AMPA or (S)-5-fluorowillardiine. Kainate (60% maximal cell death at 1mM) was markedly more toxic than NMDA (40% maximal cell death at 1mM) and was shown to be the predominant cause of excitatory amino acid-induced toxicity in these cells as the neuronal death induced by KA was attenuated by the non-NMDA antagonist CNQX, but not the AMPA antagonist LY293558. This study suggests that serum-free cultures of cerebellar granule cells in B27-supplemented neurobasal medium provide a valuable model system for investigations of the role of the kainate receptor in excitatory amino acid-induced neurodegeneration.
机译:开发了一种培养系统,使鼠小脑颗粒细胞在无血清条件下在化学定义的B27补充的神经基础培养基中加去极化K +水平,以研究激动剂在海藻酸盐和α-氨基-3-羟基上的作用谷氨酸介导的丙酸-5-甲基-4-异恶唑(AMPA)受体的神经毒性。神经元以浓度依赖的方式被L-谷氨酸,海藻酸盐及其类似物domoate和4-(2-甲氧基苯基)-2-羧基-3-吡咯烷乙酸杀死,但未被(S)-AMPA或(S)杀死。 -5-氟芥子碱。海藻酸盐(1mM时最大细胞死亡60%)明显比NMDA(1mM时最大细胞死亡40%)毒性更大,并且被证明是这些氨基酸引起的兴奋性氨基酸诱导的毒性的主要原因,因为KA诱导神经元死亡。被非NMDA拮抗剂CNQX减弱,但未被AMPA拮抗剂LY293558减弱。这项研究表明,在补充B27的神经基础培养基中小脑颗粒细胞的无血清培养为研究海藻酸盐受体在兴奋性氨基酸诱导的神经变性中的作用提供了有价值的模型系统。

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