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首页> 外文期刊>Journal of Inorganic Biochemistry: An Interdisciplinary Journal >Aluminium impairs the glutamate-nitric oxide-cGMP pathway in cultured neurons and in rat brain in vivo: molecular mechanisms and implications for neuropathology
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Aluminium impairs the glutamate-nitric oxide-cGMP pathway in cultured neurons and in rat brain in vivo: molecular mechanisms and implications for neuropathology

机译:铝在体内损害培养的神经元和大鼠脑中的谷氨酸一氧化氮-cGMP途径:分子机制及其对神经病理学的意义

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摘要

Aluminium (Al) is a neurotoxicant and appears as a possible etiological factor in Alzheimer's disease and other neurological disorders. The mechanisms of Al neurotoxicity are presently unclear but evidence has emerged suggesting that Al accumulation in the brain can alter neuronal signal transduction pathways associated with glutamate receptors. In cerebellar neurons in culture, long term-exposure to Al added 'in vitro' impaired the glutamate-nitric oxide (NO)-cyclic GMP (cGMP) pathway, reducing glutamate-induced activation of NO synthase and NO-induced activation of the cGMP generating enzyme, guanylate cyclase. Prenatal exposure to Al also affected strongly the function of the glutamate-NO-cGMP pathway. In cultured neurons from rats prenatally exposed to Al, we found reduced content of NO synthase and of guanylate cyclase, and a dramatic decrease in the ability of glutamate to increase cGMP formation. Activation of the glutamate-NO-cGMP pathway was also strongly impaired in cerebellum of rats chronically treated with Al, as assessed by in vivo brain microdialysis in freely moving rats. These findings suggest that the impairment of the Glu-NO-cGMP pathway in the brain may be responsible for some of the neurological alterations induced by Al.
机译:铝(Al)是一种神经毒性物质,是阿尔茨海默氏病和其他神经系统疾病的可能病因。 Al神经毒性的机制目前尚不清楚,但是已有证据表明Al在脑中的积累可以改变与谷氨酸受体相关的神经元信号转导途径。在培养的小脑神经元中,长期“添加” Al会导致谷氨酸一氧化氮(NO)循环GMP(cGMP)通路受损,从而减少了谷氨酸诱导的NO合酶激活和NO诱导的cGMP激活产生酶,鸟苷酸环化酶。产前暴露于铝也强烈影响谷氨酸-NO-cGMP途径的功能。在来自产前暴露于Al的大鼠的培养的神经元中,我们发现NO合酶和鸟苷酸环化酶的含量降低,并且谷氨酸增加cGMP形成的能力急剧下降。如通过自由活动大鼠体内的脑微透析所评估的那样,在长期用Al治疗的大鼠小脑中,谷氨酸-NO-cGMP途径的激活也受到严重损害。这些发现表明,大脑中Glu-NO-cGMP通路的损伤可能是由Al引起的某些神经系统改变的原因。

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