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本文引用的文献

1
An Isozyme-specific Redox Switch in Human Brain Glycogen Phosphorylase Modulates Its Allosteric Activation by AMP.人脑海绵体糖原磷酸化酶中一种同工酶特异性氧化还原开关调节其被 AMP 的变构激活作用。
J Biol Chem. 2016 Nov 11;291(46):23842-23853. doi: 10.1074/jbc.M116.757062. Epub 2016 Sep 22.
2
Insights into Brain Glycogen Metabolism: THE STRUCTURE OF HUMAN BRAIN GLYCOGEN PHOSPHORYLASE.对脑糖原代谢的见解:人类脑糖原磷酸化酶的结构
J Biol Chem. 2016 Aug 26;291(35):18072-83. doi: 10.1074/jbc.M116.738898. Epub 2016 Jul 8.
3
Role of Glycogenolysis in Memory and Learning: Regulation by Noradrenaline, Serotonin and ATP.糖原分解在记忆与学习中的作用:去甲肾上腺素、血清素和三磷酸腺苷的调节
Front Integr Neurosci. 2016 Jan 19;9:70. doi: 10.3389/fnint.2015.00070. eCollection 2015.
4
The roles of lipid and glucose metabolism in modulation of β-amyloid, tau, and neurodegeneration in the pathogenesis of Alzheimer disease.脂质和葡萄糖代谢在阿尔茨海默病发病机制中对β-淀粉样蛋白、tau蛋白及神经退行性变调节中的作用。
Front Aging Neurosci. 2015 Oct 23;7:199. doi: 10.3389/fnagi.2015.00199. eCollection 2015.
5
Redox Status and Aging Link in Neurodegenerative Diseases 2015.2015年神经退行性疾病中的氧化还原状态与衰老关联
Oxid Med Cell Longev. 2015;2015:494316. doi: 10.1155/2015/494316. Epub 2015 Aug 2.
6
Site-Specific Proteomic Mapping Identifies Selectively Modified Regulatory Cysteine Residues in Functionally Distinct Protein Networks.位点特异性蛋白质组图谱鉴定功能不同的蛋白质网络中选择性修饰的调节性半胱氨酸残基。
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Effects of pesticide chemicals on the activity of metabolic enzymes: focus on thiocarbamates.农药化学品对代谢酶活性的影响:聚焦于硫代氨基甲酸盐类
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Accurate proteome-wide label-free quantification by delayed normalization and maximal peptide ratio extraction, termed MaxLFQ.通过延迟归一化和最大肽段比率提取进行全蛋白质组精确的无标记定量,称为MaxLFQ。
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Neurons have an active glycogen metabolism that contributes to tolerance to hypoxia.神经元具有活跃的糖原代谢,有助于耐受缺氧。
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Glycogen accumulation underlies neurodegeneration and autophagy impairment in Lafora disease.糖原积累是拉福拉病神经退行性变和自噬功能障碍的基础。
Hum Mol Genet. 2014 Jun 15;23(12):3147-56. doi: 10.1093/hmg/ddu024. Epub 2014 Jan 22.

神经毒性二硫代氨基甲酸盐类化学物质对脑糖原磷酸化酶变构抑制的分子机制

Molecular Mechanisms of Allosteric Inhibition of Brain Glycogen Phosphorylase by Neurotoxic Dithiocarbamate Chemicals.

作者信息

Mathieu Cécile, Bui Linh-Chi, Petit Emile, Haddad Iman, Agbulut Onnik, Vinh Joelle, Dupret Jean-Marie, Rodrigues-Lima Fernando

机构信息

From the Université Paris Diderot, Sorbonne Paris Cité, Unité BFA, CNRS UMR 8251, 75013 Paris, France.

ESPCI ParisTech, Université Paris Sciences et Lettres, Laboratoire de Spectrométrie de Masse Biologique et Protéomique, CNRS USR, 3149 Paris, France.

出版信息

J Biol Chem. 2017 Feb 3;292(5):1603-1612. doi: 10.1074/jbc.M116.766725. Epub 2016 Dec 13.

DOI:10.1074/jbc.M116.766725
PMID:27965358
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5290938/
Abstract

Dithiocarbamates (DTCs) are important industrial chemicals used extensively as pesticides and in a variety of therapeutic applications. However, they have also been associated with neurotoxic effects and in particular with the development of Parkinson-like neuropathy. Although different pathways and enzymes (such as ubiquitin ligases or the proteasome) have been identified as potential targets of DTCs in the brain, the molecular mechanisms underlying their neurotoxicity remain poorly understood. There is increasing evidence that alteration of glycogen metabolism in the brain contributes to neurodegenerative processes. Interestingly, recent studies with N,N-diethyldithiocarbamate suggest that brain glycogen phosphorylase (bGP) and glycogen metabolism could be altered by DTCs. Here, we provide molecular and mechanistic evidence that bGP is a target of DTCs. To examine this system, we first tested thiram, a DTC pesticide known to display neurotoxic effects, observing that it can react rapidly with bGP and readily inhibits its glycogenolytic activity (k = 1.4 × 10 m s). Using cysteine chemical labeling, mass spectrometry, and site-directed mutagenesis approaches, we show that thiram (and certain of its metabolites) alters the activity of bGP through the formation of an intramolecular disulfide bond (Cys-Cys), known to act as a redox switch that precludes the allosteric activation of bGP by AMP. Given the key role of glycogen metabolism in brain functions and neurodegeneration, impairment of the glycogenolytic activity of bGP by DTCs such as thiram may be a new mechanism by which certain DTCs exert their neurotoxic effects.

摘要

二硫代氨基甲酸盐(DTCs)是重要的工业化学品,广泛用作杀虫剂和用于各种治疗应用。然而,它们也与神经毒性作用有关,特别是与帕金森样神经病变的发展有关。尽管已确定不同的途径和酶(如泛素连接酶或蛋白酶体)是DTCs在大脑中的潜在靶点,但其神经毒性的分子机制仍知之甚少。越来越多的证据表明,大脑中糖原代谢的改变会导致神经退行性过程。有趣的是,最近对N,N - 二乙基二硫代氨基甲酸盐的研究表明,大脑糖原磷酸化酶(bGP)和糖原代谢可能会被DTCs改变。在这里,我们提供了分子和机制证据,证明bGP是DTCs的靶点。为了研究这个系统,我们首先测试了福美双,一种已知具有神经毒性作用的DTC类杀虫剂,观察到它可以与bGP快速反应并轻易抑制其糖原分解活性(k = 1.4×10 m s)。使用半胱氨酸化学标记、质谱和定点诱变方法,我们表明福美双(及其某些代谢物)通过形成分子内二硫键(Cys-Cys)改变bGP的活性,已知该二硫键作为氧化还原开关,阻止AMP对bGP的变构激活。鉴于糖原代谢在大脑功能和神经退行性变中的关键作用,福美双等DTCs对bGP糖原分解活性的损害可能是某些DTCs发挥其神经毒性作用的一种新机制。