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Mitochondrial redox-driven mitofusin 2 S-glutathionylation promotes neuronal necroptosis via disrupting ER-mitochondria crosstalk in cadmium-induced neurotoxicity.

Identifieur interne : 000000 ( Main/Exploration ); suivant : 000001

Mitochondrial redox-driven mitofusin 2 S-glutathionylation promotes neuronal necroptosis via disrupting ER-mitochondria crosstalk in cadmium-induced neurotoxicity.

Auteurs : Lin Che [République populaire de Chine] ; Chuan-Li Yang [République populaire de Chine] ; Yu Chen [République populaire de Chine] ; Zi-Li Wu [République populaire de Chine] ; Ze-Bang Du [République populaire de Chine] ; Jia-Shen Wu [République populaire de Chine] ; Cong-Ling Gan [République populaire de Chine] ; Si-Ping Yan [République populaire de Chine] ; Jing Huang [République populaire de Chine] ; Ni-Jun Guo [République populaire de Chine] ; Yu-Chun Lin [République populaire de Chine] ; Zhong-Ning Lin [République populaire de Chine]

Source :

RBID : pubmed:33182097

Descripteurs français

English descriptors

Abstract

Reactive oxygen species (ROS)-mediated endoplasmic reticulum (ER) stress and mitochondrial dysfunction are known to affect the structural and functional damage in the neural system. Cadmium (Cd) is an environmental contaminant that is widely found in numerous environmental matrices and exhibits potential neurotoxic risk. However, it remains unclear how mitochondrial redox status induces, and whether Cd destabilizes, the ER-mitochondria crosstalk to have a toxic effect on the nervous system. Herein, in our present study, bioinformatics analysis revealed an important role of protein interaction and mitochondrial machinery in brain samples from Alzheimer's disease (AD) patients. Furthermore, we established a neurotoxicity model in vivo and in vitro induced by cadmium chloride (CdCl2). We demonstrated that CdCl2 exposure disrupts the balance in mitochondrial redox represented by enhanced mitochondrial ROS (mitoROS) levels, which enhance mitofusin 2 (Mfn2) S-glutathionylation and interrupt the mitochondria-associated ER membranes (MAMs) for crosstalk between the ER and mitochondria to induce neuronal necroptosis. Mechanistically, it was shown that CdCl2 exposure significantly enhances the mitochondria-associated degradation (MAD) of Mfn2 via S-glutathionylation, which inhibits Mfn2 localization to the MAMs and subsequently leads to the formation of the RIPK1-RIPK3-p-MLKL complex (a key component of the necrosome) at MAMs, to promote neuronal necroptosis. Furthermore, the glutaredoxin 1 (Grx1) catalyzed and Mfn2 overexpression restored S-glu-Mfn2, MAMs perturbation, necrosome formation, and necroptosis in neurons induced by CdCl2 exposure in vitro. Moreover, the intervention with antioxidants to reduce mitochondrial redox, such as N-acetyl-l-cysteine (NAC) and mitochondria-targeted antioxidant Mito-TEMPO, reduced the S-glutathionylation of Mfn2 involved in the antagonism of CdCl2-induced necroptosis and neurotoxicity in vivo and in vitro. Taken together, our results are the first time to demonstrate that S-glutathionylation of Mfn2 promotes neuronal necroptosis via disruption of ER-mitochondria crosstalk in CdCl2-induced neurotoxicity, providing the novel mechanistic insight into how hazardous chemical-induced adverse effects in various organs and tissues could be interpreted by intraorganellar pathways under the control of MAMs components in neurons.

DOI: 10.1016/j.chemosphere.2020.127878
PubMed: 33182097


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<term>Animals (MeSH)</term>
<term>Cadmium (metabolism)</term>
<term>Cadmium (toxicity)</term>
<term>Cadmium Chloride (pharmacology)</term>
<term>Endoplasmic Reticulum (drug effects)</term>
<term>Endoplasmic Reticulum (metabolism)</term>
<term>Endoplasmic Reticulum Stress (drug effects)</term>
<term>Environmental Pollutants (toxicity)</term>
<term>Humans (MeSH)</term>
<term>Mitochondria (metabolism)</term>
<term>Mitochondrial Proteins (metabolism)</term>
<term>Necroptosis (MeSH)</term>
<term>Neurons (metabolism)</term>
<term>Oxidation-Reduction (MeSH)</term>
<term>Reactive Oxygen Species (metabolism)</term>
<term>Receptor-Interacting Protein Serine-Threonine Kinases (MeSH)</term>
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<term>Animaux (MeSH)</term>
<term>Cadmium (métabolisme)</term>
<term>Cadmium (toxicité)</term>
<term>Chlorure de cadmium (pharmacologie)</term>
<term>Espèces réactives de l'oxygène (métabolisme)</term>
<term>Humains (MeSH)</term>
<term>Mitochondries (métabolisme)</term>
<term>Neurones (métabolisme)</term>
<term>Oxydoréduction (MeSH)</term>
<term>Polluants environnementaux (toxicité)</term>
<term>Protéines mitochondriales (métabolisme)</term>
<term>Receptor-Interacting Protein Serine-Threonine Kinases (MeSH)</term>
<term>Réticulum endoplasmique (effets des médicaments et des substances chimiques)</term>
<term>Réticulum endoplasmique (métabolisme)</term>
<term>Stress du réticulum endoplasmique (effets des médicaments et des substances chimiques)</term>
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<term>Cadmium</term>
<term>Mitochondrial Proteins</term>
<term>Reactive Oxygen Species</term>
</keywords>
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<term>Cadmium Chloride</term>
</keywords>
<keywords scheme="MESH" type="chemical" qualifier="toxicity" xml:lang="en">
<term>Cadmium</term>
<term>Environmental Pollutants</term>
</keywords>
<keywords scheme="MESH" qualifier="drug effects" xml:lang="en">
<term>Endoplasmic Reticulum</term>
<term>Endoplasmic Reticulum Stress</term>
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<term>Réticulum endoplasmique</term>
<term>Stress du réticulum endoplasmique</term>
</keywords>
<keywords scheme="MESH" qualifier="metabolism" xml:lang="en">
<term>Endoplasmic Reticulum</term>
<term>Mitochondria</term>
<term>Neurons</term>
</keywords>
<keywords scheme="MESH" qualifier="métabolisme" xml:lang="fr">
<term>Cadmium</term>
<term>Espèces réactives de l'oxygène</term>
<term>Mitochondries</term>
<term>Neurones</term>
<term>Protéines mitochondriales</term>
<term>Réticulum endoplasmique</term>
</keywords>
<keywords scheme="MESH" qualifier="pharmacologie" xml:lang="fr">
<term>Chlorure de cadmium</term>
</keywords>
<keywords scheme="MESH" qualifier="toxicité" xml:lang="fr">
<term>Cadmium</term>
<term>Polluants environnementaux</term>
</keywords>
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<term>Animals</term>
<term>Humans</term>
<term>Necroptosis</term>
<term>Oxidation-Reduction</term>
<term>Receptor-Interacting Protein Serine-Threonine Kinases</term>
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<keywords scheme="MESH" xml:lang="fr">
<term>Animaux</term>
<term>Humains</term>
<term>Oxydoréduction</term>
<term>Receptor-Interacting Protein Serine-Threonine Kinases</term>
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<front>
<div type="abstract" xml:lang="en">Reactive oxygen species (ROS)-mediated endoplasmic reticulum (ER) stress and mitochondrial dysfunction are known to affect the structural and functional damage in the neural system. Cadmium (Cd) is an environmental contaminant that is widely found in numerous environmental matrices and exhibits potential neurotoxic risk. However, it remains unclear how mitochondrial redox status induces, and whether Cd destabilizes, the ER-mitochondria crosstalk to have a toxic effect on the nervous system. Herein, in our present study, bioinformatics analysis revealed an important role of protein interaction and mitochondrial machinery in brain samples from Alzheimer's disease (AD) patients. Furthermore, we established a neurotoxicity model in vivo and in vitro induced by cadmium chloride (CdCl
<sub>2</sub>
). We demonstrated that CdCl
<sub>2</sub>
exposure disrupts the balance in mitochondrial redox represented by enhanced mitochondrial ROS (mitoROS) levels, which enhance mitofusin 2 (Mfn2) S-glutathionylation and interrupt the mitochondria-associated ER membranes (MAMs) for crosstalk between the ER and mitochondria to induce neuronal necroptosis. Mechanistically, it was shown that CdCl
<sub>2</sub>
exposure significantly enhances the mitochondria-associated degradation (MAD) of Mfn2 via S-glutathionylation, which inhibits Mfn2 localization to the MAMs and subsequently leads to the formation of the RIPK1-RIPK3-p-MLKL complex (a key component of the necrosome) at MAMs, to promote neuronal necroptosis. Furthermore, the glutaredoxin 1 (Grx1) catalyzed and Mfn2 overexpression restored S-glu-Mfn2, MAMs perturbation, necrosome formation, and necroptosis in neurons induced by CdCl
<sub>2</sub>
exposure in vitro. Moreover, the intervention with antioxidants to reduce mitochondrial redox, such as N-acetyl-l-cysteine (NAC) and mitochondria-targeted antioxidant Mito-TEMPO, reduced the S-glutathionylation of Mfn2 involved in the antagonism of CdCl
<sub>2</sub>
-induced necroptosis and neurotoxicity in vivo and in vitro. Taken together, our results are the first time to demonstrate that S-glutathionylation of Mfn2 promotes neuronal necroptosis via disruption of ER-mitochondria crosstalk in CdCl
<sub>2</sub>
-induced neurotoxicity, providing the novel mechanistic insight into how hazardous chemical-induced adverse effects in various organs and tissues could be interpreted by intraorganellar pathways under the control of MAMs components in neurons.</div>
</front>
</TEI>
<pubmed>
<MedlineCitation Status="MEDLINE" IndexingMethod="Curated" Owner="NLM">
<PMID Version="1">33182097</PMID>
<DateCompleted>
<Year>2020</Year>
<Month>11</Month>
<Day>17</Day>
</DateCompleted>
<DateRevised>
<Year>2020</Year>
<Month>11</Month>
<Day>17</Day>
</DateRevised>
<Article PubModel="Print-Electronic">
<Journal>
<ISSN IssnType="Electronic">1879-1298</ISSN>
<JournalIssue CitedMedium="Internet">
<Volume>262</Volume>
<PubDate>
<Year>2021</Year>
<Month>Jan</Month>
</PubDate>
</JournalIssue>
<Title>Chemosphere</Title>
<ISOAbbreviation>Chemosphere</ISOAbbreviation>
</Journal>
<ArticleTitle>Mitochondrial redox-driven mitofusin 2 S-glutathionylation promotes neuronal necroptosis via disrupting ER-mitochondria crosstalk in cadmium-induced neurotoxicity.</ArticleTitle>
<Pagination>
<MedlinePgn>127878</MedlinePgn>
</Pagination>
<ELocationID EIdType="pii" ValidYN="Y">S0045-6535(20)32073-7</ELocationID>
<ELocationID EIdType="doi" ValidYN="Y">10.1016/j.chemosphere.2020.127878</ELocationID>
<Abstract>
<AbstractText>Reactive oxygen species (ROS)-mediated endoplasmic reticulum (ER) stress and mitochondrial dysfunction are known to affect the structural and functional damage in the neural system. Cadmium (Cd) is an environmental contaminant that is widely found in numerous environmental matrices and exhibits potential neurotoxic risk. However, it remains unclear how mitochondrial redox status induces, and whether Cd destabilizes, the ER-mitochondria crosstalk to have a toxic effect on the nervous system. Herein, in our present study, bioinformatics analysis revealed an important role of protein interaction and mitochondrial machinery in brain samples from Alzheimer's disease (AD) patients. Furthermore, we established a neurotoxicity model in vivo and in vitro induced by cadmium chloride (CdCl
<sub>2</sub>
). We demonstrated that CdCl
<sub>2</sub>
exposure disrupts the balance in mitochondrial redox represented by enhanced mitochondrial ROS (mitoROS) levels, which enhance mitofusin 2 (Mfn2) S-glutathionylation and interrupt the mitochondria-associated ER membranes (MAMs) for crosstalk between the ER and mitochondria to induce neuronal necroptosis. Mechanistically, it was shown that CdCl
<sub>2</sub>
exposure significantly enhances the mitochondria-associated degradation (MAD) of Mfn2 via S-glutathionylation, which inhibits Mfn2 localization to the MAMs and subsequently leads to the formation of the RIPK1-RIPK3-p-MLKL complex (a key component of the necrosome) at MAMs, to promote neuronal necroptosis. Furthermore, the glutaredoxin 1 (Grx1) catalyzed and Mfn2 overexpression restored S-glu-Mfn2, MAMs perturbation, necrosome formation, and necroptosis in neurons induced by CdCl
<sub>2</sub>
exposure in vitro. Moreover, the intervention with antioxidants to reduce mitochondrial redox, such as N-acetyl-l-cysteine (NAC) and mitochondria-targeted antioxidant Mito-TEMPO, reduced the S-glutathionylation of Mfn2 involved in the antagonism of CdCl
<sub>2</sub>
-induced necroptosis and neurotoxicity in vivo and in vitro. Taken together, our results are the first time to demonstrate that S-glutathionylation of Mfn2 promotes neuronal necroptosis via disruption of ER-mitochondria crosstalk in CdCl
<sub>2</sub>
-induced neurotoxicity, providing the novel mechanistic insight into how hazardous chemical-induced adverse effects in various organs and tissues could be interpreted by intraorganellar pathways under the control of MAMs components in neurons.</AbstractText>
<CopyrightInformation>Copyright © 2020 Elsevier Ltd. All rights reserved.</CopyrightInformation>
</Abstract>
<AuthorList CompleteYN="Y">
<Author ValidYN="Y">
<LastName>Che</LastName>
<ForeName>Lin</ForeName>
<Initials>L</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Yang</LastName>
<ForeName>Chuan-Li</ForeName>
<Initials>CL</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Chen</LastName>
<ForeName>Yu</ForeName>
<Initials>Y</Initials>
<AffiliationInfo>
<Affiliation>School of Medicine, Xiamen University, Xiamen, 361102, China.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Wu</LastName>
<ForeName>Zi-Li</ForeName>
<Initials>ZL</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Du</LastName>
<ForeName>Ze-Bang</ForeName>
<Initials>ZB</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Wu</LastName>
<ForeName>Jia-Shen</ForeName>
<Initials>JS</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Gan</LastName>
<ForeName>Cong-Ling</ForeName>
<Initials>CL</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Yan</LastName>
<ForeName>Si-Ping</ForeName>
<Initials>SP</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Huang</LastName>
<ForeName>Jing</ForeName>
<Initials>J</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Guo</LastName>
<ForeName>Ni-Jun</ForeName>
<Initials>NJ</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Lin</LastName>
<ForeName>Yu-Chun</ForeName>
<Initials>YC</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China. Electronic address: linych@xmu.edu.cn.</Affiliation>
</AffiliationInfo>
</Author>
<Author ValidYN="Y">
<LastName>Lin</LastName>
<ForeName>Zhong-Ning</ForeName>
<Initials>ZN</Initials>
<AffiliationInfo>
<Affiliation>State Key Laboratory of Molecular Vaccinology and Molecular Diagnostics, School of Public Health, Xiamen University, Xiamen, 361102, China. Electronic address: linzhn@xmu.edu.cn.</Affiliation>
</AffiliationInfo>
</Author>
</AuthorList>
<Language>eng</Language>
<PublicationTypeList>
<PublicationType UI="D016428">Journal Article</PublicationType>
</PublicationTypeList>
<ArticleDate DateType="Electronic">
<Year>2020</Year>
<Month>08</Month>
<Day>06</Day>
</ArticleDate>
</Article>
<MedlineJournalInfo>
<Country>England</Country>
<MedlineTA>Chemosphere</MedlineTA>
<NlmUniqueID>0320657</NlmUniqueID>
<ISSNLinking>0045-6535</ISSNLinking>
</MedlineJournalInfo>
<ChemicalList>
<Chemical>
<RegistryNumber>0</RegistryNumber>
<NameOfSubstance UI="D004785">Environmental Pollutants</NameOfSubstance>
</Chemical>
<Chemical>
<RegistryNumber>0</RegistryNumber>
<NameOfSubstance UI="D024101">Mitochondrial Proteins</NameOfSubstance>
</Chemical>
<Chemical>
<RegistryNumber>0</RegistryNumber>
<NameOfSubstance UI="D017382">Reactive Oxygen Species</NameOfSubstance>
</Chemical>
<Chemical>
<RegistryNumber>00BH33GNGH</RegistryNumber>
<NameOfSubstance UI="D002104">Cadmium</NameOfSubstance>
</Chemical>
<Chemical>
<RegistryNumber>EC 2.7.11.1</RegistryNumber>
<NameOfSubstance UI="C506249">RIPK1 protein, human</NameOfSubstance>
</Chemical>
<Chemical>
<RegistryNumber>EC 2.7.11.1</RegistryNumber>
<NameOfSubstance UI="C119705">RIPK3 protein, human</NameOfSubstance>
</Chemical>
<Chemical>
<RegistryNumber>EC 2.7.11.1</RegistryNumber>
<NameOfSubstance UI="D053422">Receptor-Interacting Protein Serine-Threonine Kinases</NameOfSubstance>
</Chemical>
<Chemical>
<RegistryNumber>J6K4F9V3BA</RegistryNumber>
<NameOfSubstance UI="D019256">Cadmium Chloride</NameOfSubstance>
</Chemical>
</ChemicalList>
<CitationSubset>IM</CitationSubset>
<MeshHeadingList>
<MeshHeading>
<DescriptorName UI="D000818" MajorTopicYN="N">Animals</DescriptorName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D002104" MajorTopicYN="N">Cadmium</DescriptorName>
<QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName>
<QualifierName UI="Q000633" MajorTopicYN="Y">toxicity</QualifierName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D019256" MajorTopicYN="N">Cadmium Chloride</DescriptorName>
<QualifierName UI="Q000494" MajorTopicYN="N">pharmacology</QualifierName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D004721" MajorTopicYN="N">Endoplasmic Reticulum</DescriptorName>
<QualifierName UI="Q000187" MajorTopicYN="N">drug effects</QualifierName>
<QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D059865" MajorTopicYN="N">Endoplasmic Reticulum Stress</DescriptorName>
<QualifierName UI="Q000187" MajorTopicYN="N">drug effects</QualifierName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D004785" MajorTopicYN="N">Environmental Pollutants</DescriptorName>
<QualifierName UI="Q000633" MajorTopicYN="Y">toxicity</QualifierName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D006801" MajorTopicYN="N">Humans</DescriptorName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D008928" MajorTopicYN="N">Mitochondria</DescriptorName>
<QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D024101" MajorTopicYN="N">Mitochondrial Proteins</DescriptorName>
<QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D000079302" MajorTopicYN="Y">Necroptosis</DescriptorName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D009474" MajorTopicYN="N">Neurons</DescriptorName>
<QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D010084" MajorTopicYN="N">Oxidation-Reduction</DescriptorName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D017382" MajorTopicYN="N">Reactive Oxygen Species</DescriptorName>
<QualifierName UI="Q000378" MajorTopicYN="N">metabolism</QualifierName>
</MeshHeading>
<MeshHeading>
<DescriptorName UI="D053422" MajorTopicYN="N">Receptor-Interacting Protein Serine-Threonine Kinases</DescriptorName>
</MeshHeading>
</MeshHeadingList>
<KeywordList Owner="NOTNLM">
<Keyword MajorTopicYN="N">Mitochondria-associated endoplasmic reticulum membranes</Keyword>
<Keyword MajorTopicYN="N">Mitochondrial redox</Keyword>
<Keyword MajorTopicYN="N">Mitofusin 2</Keyword>
<Keyword MajorTopicYN="N">Necroptosis</Keyword>
<Keyword MajorTopicYN="N">Neurotoxicity</Keyword>
<Keyword MajorTopicYN="N">S-glutathionylation</Keyword>
</KeywordList>
<CoiStatement>Declaration of competing interest The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.</CoiStatement>
</MedlineCitation>
<PubmedData>
<History>
<PubMedPubDate PubStatus="received">
<Year>2020</Year>
<Month>05</Month>
<Day>14</Day>
</PubMedPubDate>
<PubMedPubDate PubStatus="revised">
<Year>2020</Year>
<Month>07</Month>
<Day>26</Day>
</PubMedPubDate>
<PubMedPubDate PubStatus="accepted">
<Year>2020</Year>
<Month>07</Month>
<Day>29</Day>
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<Month>11</Month>
<Day>13</Day>
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<Month>11</Month>
<Day>18</Day>
<Hour>6</Hour>
<Minute>0</Minute>
</PubMedPubDate>
</History>
<PublicationStatus>ppublish</PublicationStatus>
<ArticleIdList>
<ArticleId IdType="pubmed">33182097</ArticleId>
<ArticleId IdType="pii">S0045-6535(20)32073-7</ArticleId>
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</ArticleIdList>
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</pubmed>
<affiliations>
<list>
<country>
<li>République populaire de Chine</li>
</country>
</list>
<tree>
<country name="République populaire de Chine">
<noRegion>
<name sortKey="Che, Lin" sort="Che, Lin" uniqKey="Che L" first="Lin" last="Che">Lin Che</name>
</noRegion>
<name sortKey="Chen, Yu" sort="Chen, Yu" uniqKey="Chen Y" first="Yu" last="Chen">Yu Chen</name>
<name sortKey="Du, Ze Bang" sort="Du, Ze Bang" uniqKey="Du Z" first="Ze-Bang" last="Du">Ze-Bang Du</name>
<name sortKey="Gan, Cong Ling" sort="Gan, Cong Ling" uniqKey="Gan C" first="Cong-Ling" last="Gan">Cong-Ling Gan</name>
<name sortKey="Guo, Ni Jun" sort="Guo, Ni Jun" uniqKey="Guo N" first="Ni-Jun" last="Guo">Ni-Jun Guo</name>
<name sortKey="Huang, Jing" sort="Huang, Jing" uniqKey="Huang J" first="Jing" last="Huang">Jing Huang</name>
<name sortKey="Lin, Yu Chun" sort="Lin, Yu Chun" uniqKey="Lin Y" first="Yu-Chun" last="Lin">Yu-Chun Lin</name>
<name sortKey="Lin, Zhong Ning" sort="Lin, Zhong Ning" uniqKey="Lin Z" first="Zhong-Ning" last="Lin">Zhong-Ning Lin</name>
<name sortKey="Wu, Jia Shen" sort="Wu, Jia Shen" uniqKey="Wu J" first="Jia-Shen" last="Wu">Jia-Shen Wu</name>
<name sortKey="Wu, Zi Li" sort="Wu, Zi Li" uniqKey="Wu Z" first="Zi-Li" last="Wu">Zi-Li Wu</name>
<name sortKey="Yan, Si Ping" sort="Yan, Si Ping" uniqKey="Yan S" first="Si-Ping" last="Yan">Si-Ping Yan</name>
<name sortKey="Yang, Chuan Li" sort="Yang, Chuan Li" uniqKey="Yang C" first="Chuan-Li" last="Yang">Chuan-Li Yang</name>
</country>
</tree>
</affiliations>
</record>

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