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dc.creatorTsolaki V., Makris D., Mantzarlis K., Zakynthinos E.en
dc.date.accessioned2023-01-31T10:17:06Z
dc.date.available2023-01-31T10:17:06Z
dc.date.issued2017
dc.identifier10.1155/2017/7393525
dc.identifier.issn19420900
dc.identifier.urihttp://hdl.handle.net/11615/80078
dc.description.abstractCardiac dysfunction may complicate the course of severe sepsis and septic shock with significant implications for patient's survival. The basic pathophysiologic mechanisms leading to septic cardiomyopathy have not been fully clarified until now. Disease-specific treatment is lacking, and care is still based on supportive modalities. Septic state causes destruction of redox balance in many cell types, cardiomyocytes included. The production of reactive oxygen and nitrogen species is increased, and natural antioxidant systems fail to counterbalance the overwhelming generation of free radicals. Reactive species interfere with many basic cell functions, mainly through destruction of protein, lipid, and nucleic acid integrity, compromising enzyme function, mitochondrial structure and performance, and intracellular signaling, all leading to cardiac contractile failure. Takotsubo cardiomyopathy may result from oxidative imbalance. This review will address the multiple aspects of cardiomyocyte bioenergetic failure in sepsis and discuss potential therapeutic interventions. © 2017 Vasiliki Tsolaki et al.en
dc.language.isoenen
dc.sourceOxidative Medicine and Cellular Longevityen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85030792585&doi=10.1155%2f2017%2f7393525&partnerID=40&md5=1cf71db1559583259b26ac75a60a6582
dc.subjectFree radicalsen
dc.subjectNucleic acidsen
dc.subjectEnzyme functionsen
dc.subjectIntracellular signalingen
dc.subjectNatural antioxidantsen
dc.subjectPathophysiologicen
dc.subjectReactive oxygen and nitrogen speciesen
dc.subjectReactive speciesen
dc.subjectStructure and performanceen
dc.subjectTherapeutic interventionen
dc.subjectCell signalingen
dc.subjectantioxidanten
dc.subjectDNAen
dc.subjectfree radicalen
dc.subjectlipiden
dc.subjectpolypeptide antibiotic agenten
dc.subjectproteinen
dc.subjectreactive nitrogen speciesen
dc.subjectreactive oxygen metaboliteen
dc.subjectRho kinase inhibitoren
dc.subjectreactive oxygen metaboliteen
dc.subjectantioxidant activityen
dc.subjectArticleen
dc.subjectcardiac muscle cellen
dc.subjectcardiomyopathyen
dc.subjecthearten
dc.subjecthumanen
dc.subjectintracellular signalingen
dc.subjectlipid oxidationen
dc.subjectnonhumanen
dc.subjectoxidationen
dc.subjectsepsisen
dc.subjectcardiomyopathyen
dc.subjectcomplicationen
dc.subjectgeneticsen
dc.subjectmetabolismen
dc.subjectoxidative stressen
dc.subjectphysiologyen
dc.subjectsepsisen
dc.subjectDamageen
dc.subjectLipidsen
dc.subjectNucleic Acidsen
dc.subjectProteinsen
dc.subjectCardiomyopathiesen
dc.subjectHumansen
dc.subjectOxidative Stressen
dc.subjectReactive Oxygen Speciesen
dc.subjectSepsisen
dc.subjectHindawi Limiteden
dc.titleSepsis-Induced Cardiomyopathy: Oxidative Implications in the Initiation and Resolution of the Damageen
dc.typejournalArticleen


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