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Redox dynamics of manganese as a mitochondrial life-death switch.锰的氧化还原动力学作为线粒体生死开关
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Metabolomic Responses to Manganese Dose in SH-SY5Y Human Neuroblastoma Cells.锰剂量对 SH-SY5Y 人神经母细胞瘤细胞的代谢组学反应。
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Complex II of the mitochondrial respiratory chain is the key mediator of divalent manganese-induced hydrogen peroxide production in microglia.线粒体呼吸链复合物 II 是二价锰诱导小胶质细胞产生过氧化氢的关键介质。
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Differential lowering by manganese treatment of activities of glycolytic and tricarboxylic acid (TCA) cycle enzymes investigated in neuroblastoma and astrocytoma cells is associated with manganese-induced cell death.在神经母细胞瘤和星形细胞瘤细胞中,锰处理对糖酵解酶和三羧酸(TCA)循环酶活性的差异性降低与锰诱导的细胞死亡有关。
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Differential toxicity of 6-hydroxydopamine in SH-SY5Y human neuroblastoma cells and rat brain mitochondria: protective role of catalase and superoxide dismutase.6-羟多巴胺对 SH-SY5Y 人神经母细胞瘤细胞和大鼠脑线粒体的毒性差异:过氧化氢酶和超氧化物歧化酶的保护作用。
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Evaluating Manganese, Zinc, and Copper Metal Toxicity on SH-SY5Y Cells in Establishing an Idiopathic Parkinson's Disease Model.评估锰、锌、铜金属毒性对 SH-SY5Y 细胞建立特发性帕金森病模型的影响。
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本文引用的文献

1
Manganese Toxicity Upon Overexposure: a Decade in Review.锰暴露过度毒性:十年综述。
Curr Environ Health Rep. 2015 Sep;2(3):315-28. doi: 10.1007/s40572-015-0056-x.
2
Manganese-Induced Parkinsonism and Parkinson's Disease: Shared and Distinguishable Features.锰诱导的帕金森综合征与帕金森病:共同特征与可区分特征
Int J Environ Res Public Health. 2015 Jul 6;12(7):7519-40. doi: 10.3390/ijerph120707519.
3
Differential interaction of hGDH1 and hGDH2 with manganese: Implications for metabolism and toxicity.人谷氨酸脱氢酶1(hGDH1)和人谷氨酸脱氢酶2(hGDH2)与锰的差异相互作用:对代谢和毒性的影响。
Neurochem Int. 2015 Sep;88:60-5. doi: 10.1016/j.neuint.2015.03.004. Epub 2015 Mar 30.
4
N-acetylcysteineamide protects against manganese-induced toxicity in SHSY5Y cell line.N-乙酰半胱氨酸酰胺可保护SHSY5Y细胞系免受锰诱导的毒性作用。
Brain Res. 2015 May 22;1608:157-66. doi: 10.1016/j.brainres.2015.02.006. Epub 2015 Feb 12.
5
Imaging mitochondrial hydrogen peroxide in living cells.对活细胞中的线粒体过氧化氢进行成像。
Methods Mol Biol. 2015;1264:231-43. doi: 10.1007/978-1-4939-2257-4_21.
6
Molecular strategies for targeting antioxidants to mitochondria: therapeutic implications.将抗氧化剂靶向线粒体的分子策略:治疗意义
Antioxid Redox Signal. 2015 Mar 10;22(8):686-729. doi: 10.1089/ars.2014.5952.
7
Reactive oxygen species and redox compartmentalization.活性氧物种和氧化还原区室化。
Front Physiol. 2014 Aug 12;5:285. doi: 10.3389/fphys.2014.00285. eCollection 2014.
8
Mitochondrial toxic effects of Aβ through mitofusins in the early pathogenesis of Alzheimer's disease.在阿尔茨海默病早期发病机制中,β淀粉样蛋白通过线粒体融合蛋白产生的线粒体毒性作用
Mol Neurobiol. 2014 Dec;50(3):986-96. doi: 10.1007/s12035-014-8675-z. Epub 2014 Apr 8.
9
Role of metabolic H2O2 generation: redox signaling and oxidative stress.代谢 H2O2 的作用:氧化还原信号和氧化应激。
J Biol Chem. 2014 Mar 28;289(13):8735-41. doi: 10.1074/jbc.R113.544635. Epub 2014 Feb 10.
10
Considerations on manganese (Mn) treatments for in vitro studies.关于体外研究中锰(Mn)处理的思考。
Neurotoxicology. 2014 Mar;41:141-2. doi: 10.1016/j.neuro.2014.01.010. Epub 2014 Feb 5.

封面文章:在生理及毒理学范围内,锰刺激SH-SY5Y人神经母细胞瘤细胞产生线粒体过氧化氢。

From the Cover: Manganese Stimulates Mitochondrial H2O2 Production in SH-SY5Y Human Neuroblastoma Cells Over Physiologic as well as Toxicologic Range.

作者信息

Fernandes Jolyn, Hao Li, Bijli Kaiser M, Chandler Joshua D, Orr Michael, Hu Xin, Jones Dean P, Go Young-Mi

机构信息

Division of Pulmonary, Allergy and Critical Care Medicine, Department of Medicine, Emory University, Atlanta, Georgia 30322

出版信息

Toxicol Sci. 2017 Jan;155(1):213-223. doi: 10.1093/toxsci/kfw196. Epub 2016 Oct 4.

DOI:10.1093/toxsci/kfw196
PMID:27701121
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5216654/
Abstract

Manganese (Mn) is an abundant redox-active metal with well-characterized mitochondrial accumulation and neurotoxicity due to excessive exposures. Mn is also an essential co-factor for the mitochondrial antioxidant protein, superoxide dismutase-2 (SOD2), and the range for adequate intake established by the Institute of Medicine Food and Nutrition Board is 20% of the interim guidance value for toxicity by the Agency for Toxic Substances and Disease Registry, leaving little margin for safety. To study toxic mechanisms over this critical dose range, we treated human neuroblastoma SH-SY5Y cells with a series of MnCl concentrations (from 0 to 100 μM) and measured cellular content to compare to human brain Mn content. Concentrations ≤10 μM gave cellular concentrations comparable to literature values for normal human brain, whereas concentrations ≥50 μM resulted in values comparable to brains from individuals with toxic Mn exposures. Cellular oxygen consumption rate increased as a function of Mn up to 10 μM and decreased with Mn dose ≥50 μM. Over this range, Mn had no effect on superoxide production as measured by aconitase activity or MitoSOX but increased HO production as measured by MitoPY1. Consistent with increased production of HO, SOD2 activity, and steady-state oxidation of total thiol increased with increasing Mn. These findings have important implications for Mn toxicity by re-directing attention from superoxide anion radical to HO-dependent mechanisms and to investigation over the entire physiologic range to toxicologic range. Additionally, the results show that controlled Mn exposure provides a useful cell manipulation for toxicological studies of mitochondrial HO signaling.

摘要

锰(Mn)是一种含量丰富的具有氧化还原活性的金属,因过度暴露而具有特征明确的线粒体蓄积和神经毒性。锰也是线粒体抗氧化蛋白超氧化物歧化酶-2(SOD2)的必需辅助因子,美国医学研究所食品与营养委员会确定的充足摄入量范围是有毒物质和疾病登记署毒性临时指导值的20%,安全余量很小。为了研究这个关键剂量范围内的毒性机制,我们用一系列氯化锰浓度(从0到100μM)处理人神经母细胞瘤SH-SY5Y细胞,并测量细胞内含量以与人类大脑锰含量进行比较。浓度≤10μM时,细胞内浓度与正常人类大脑的文献值相当,而浓度≥50μM时,其值与有毒锰暴露个体的大脑相当。细胞耗氧率随锰浓度增加至10μM时升高,而锰剂量≥50μM时则降低。在此范围内,通过乌头酸酶活性或MitoSOX测量,锰对超氧化物生成没有影响,但通过MitoPY1测量,锰会增加羟基自由基(HO)的生成。与HO生成增加一致,SOD2活性以及总硫醇的稳态氧化随锰含量增加而增加。这些发现通过将注意力从超氧阴离子自由基重新转向HO依赖性机制,并在整个生理范围到毒理学范围内进行研究,对锰毒性具有重要意义。此外,结果表明,受控的锰暴露为线粒体HO信号的毒理学研究提供了一种有用的细胞操作方法。