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dc.contributor.author Nagy G,
dc.contributor.author Szarka, András
dc.contributor.author Lotz, Gábor
dc.contributor.author Dóczi, Judit
dc.contributor.author Wunderlich, Lívius
dc.contributor.author Kiss, András
dc.contributor.author Jemnitz, Katalin
dc.contributor.author Veres, Zsuzsa
dc.contributor.author Bánhegyi, Gábor
dc.contributor.author Schaff, Zsuzsa
dc.contributor.author Sümegi, Balázs
dc.contributor.author Mandl, József
dc.date.accessioned 2016-11-18T11:59:19Z
dc.date.available 2016-11-18T11:59:19Z
dc.date.issued 2010
dc.identifier 75449085494
dc.identifier.citation pagination=96-103; journalVolume=243; journalIssueNumber=1; journalTitle=TOXICOLOGY AND APPLIED PHARMACOLOGY;
dc.identifier.uri http://repo.lib.semmelweis.hu//handle/123456789/3448
dc.identifier.uri doi:10.1016/j.taap.2009.11.017
dc.description.abstract It has been recently shown that acute acetaminophen toxicity results in endoplasmic reticulum redox stress and an increase in cells with apoptotic phenotype in liver. Since activation of effector caspases was absent, the relevance of caspase-independent mechanisms in acetaminophen-induced programmed cell death was investigated. BGP-15, a drug with known protective actions in conditions involving redox imbalance. has been co-administered with a single sublethal dose of acetaminophen. Proapoptotic events and outcome of the injury were investigated. ER redox alterations and early ER-stress-related signaling events induced by acetaminophen, such as ER glutathione depletion. phosphorylation of eIF2 alpha and JNK and induction of the transcription factor GADD153, were not counteracted by co-treatment with BGP-15. However, BGP-15 prevented AIF mitochondria-to-nucleus translocation and mitochondrial depolarization. BGP-15 co-treatment attenuated the rate of acetaminophen-induced cell death as assessed by apoptotic index and enzyme serum release. These results reaffirm that acute acetaminophen toxicity involves oxidative stress-induced caspase-independent cell death. In addition, pharmacological inhibition of AIF translocation may effectively protect against or at least delay acetaminophen-induced programmed cell death. (C) 2009 Elsevier Inc. All rights reserved.
dc.relation.ispartof urn:issn:0041-008X
dc.title BGP-15 inhibits caspase-independent programmed cell death in acetaminophen-induced liver injury
dc.type Journal Article
dc.date.updated 2016-06-08T12:18:48Z
dc.language.rfc3066 en
dc.identifier.mtmt 1341702
dc.identifier.wos 000274489700012
dc.identifier.pubmed 19931551
dc.contributor.department Biomolekuláris Kémiai Intézet [2011.12.31]
dc.contributor.department SE/AOK/I/II. Sz. Patológiai Intézet
dc.contributor.department MFI jogelőd 2012 előtt [2011.12.31]
dc.contributor.department Budapesti Műszaki és Gazdaságtudományi Egyetem
dc.contributor.department BME/VBK/Alkalmazott Biotechnológia és Élelmiszertudományi Tanszék
dc.contributor.department MTA TTK/KPI/MFI jogutód 2014-től
dc.contributor.institution MTA Kémiai Kutatóközpont
dc.contributor.institution Semmelweis Egyetem
dc.contributor.institution Budapesti Műszaki és Gazdaságtudományi Egyetem
dc.contributor.institution MTA Természettudományi Kutatóközpont


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