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感觉神经元和许旺细胞通过增加抗氧化防御机制来应对氧化应激。

Sensory neurons and schwann cells respond to oxidative stress by increasing antioxidant defense mechanisms.

机构信息

Department of Neurology, University of Michigan, Ann Arbor, Michigan 48109, USA.

出版信息

Antioxid Redox Signal. 2009 Mar;11(3):425-38. doi: 10.1089/ars.2008.2235.

Abstract

Elevated blood glucose is a key initiator of mechanisms leading to diabetic neuropathy. Increases in glucose induce acute mitochondrial oxidative stress in dorsal root ganglion (DRG) neurons, the sensory neurons normally affected in diabetic neuropathy, whereas Schwann cells are largely unaffected. We propose that activation of an antioxidant response in DRG neurons would prevent glucose-induced injury. In this study, mild oxidative stress (1 microM H2O2) leads to the activation of the transcription factor Nrf2 and expression of antioxidant (phase II) enzymes. DRG neurons are thus protected from subsequent hyperglycemia-induced injury, as determined by activation of caspase 3 and the TUNEL assay. Schwann cells display high basal antioxidant enzyme expression and respond to hyperglycemia and mild oxidative stress via further increases in these enzymes. The botanical compounds resveratrol and sulforaphane activate the antioxidant response in DRG neurons. Other drugs that protect DRG neurons and block mitochondrial superoxide, identified in a compound screen, have differential ability to activate the antioxidant response. Multiple cellular targets exist for the prevention of hyperglycemic oxidative stress in DRG neurons, and these form the basis for new therapeutic strategies against diabetic neuropathy.

摘要

高血糖是导致糖尿病性神经病的机制的关键启动因素。葡萄糖的增加会导致背根神经节 (DRG) 神经元中的急性线粒体氧化应激,而糖尿病性神经病通常会影响感觉神经元,而雪旺细胞则基本不受影响。我们假设 DRG 神经元中抗氧化反应的激活将防止葡萄糖引起的损伤。在这项研究中,轻度氧化应激(1 μM H2O2)会导致转录因子 Nrf2 的激活和抗氧化(二期)酶的表达。因此,DRG 神经元会受到保护,免受随后的高血糖引起的损伤,这可以通过 caspase 3 的激活和 TUNEL 测定来确定。雪旺细胞显示出高基础抗氧化酶表达,并通过进一步增加这些酶对高血糖和轻度氧化应激做出反应。植物化合物白藜芦醇和萝卜硫素可激活 DRG 神经元的抗氧化反应。在化合物筛选中发现的其他可保护 DRG 神经元并阻断线粒体超氧化物的药物,对激活抗氧化反应的能力存在差异。DRG 神经元高血糖氧化应激的预防存在多个细胞靶点,这些靶点为针对糖尿病性神经病的新治疗策略奠定了基础。

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