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dc.creatorMitrou G.I., Sakkas G.K., Poulianiti K.P., Karioti A., Tepetes K., Christodoulidis G., Giakas G., Stefanidis I., Geeves M.A., Koutedakis Y., Karatzaferi C.en
dc.date.accessioned2023-01-31T09:00:34Z
dc.date.available2023-01-31T09:00:34Z
dc.date.issued2019
dc.identifier10.1016/j.jbiomech.2018.10.035
dc.identifier.issn00219290
dc.identifier.urihttp://hdl.handle.net/11615/76679
dc.description.abstractChronic kidney disease patients present with metabolic and functional muscle abnormalities, called uremic myopathy, whose mechanisms have not yet been fully elucidated. We investigated whether chronic renal insufficiency (CRI) affects skeletal muscle contractile properties at the cellular level. CRI was induced surgically in New Zealand rabbits (UREM), with sham-operation for controls (CON), and samples were collected at 3 months post-surgery, following euthanasia. All protocols had University Ethics approval following national and European guidelines. Sample treatments and evaluations were blinded. Maximal isometric force was assessed in 382 permeabilized psoas fibers (CON, n = 142, UREM, n = 240) initially at pH7, 10 °C (‘standard’ conditions), in subsets of fibers in acidic conditions (pH6.2, 10 °C) but also at near physiological temperature (pH7, 30 °C and pH6.2, 30 °C). CRI resulted in significant smaller average cross sectional areas (CSAs) by ∼11% for UREM muscle fibers (vs CON, P < 0.01). At standard conditions, UREM fibers produced lower absolute and specific forces (i.e. normalized force per fiber CSA) (vs CON, P < 0.01); force increased in 30 °C for both groups (P < 0.01), but the disparity between UREM and CON remained significant. Acidosis significantly reduced force (vs pH7, 10 °C P < 0.01), similarly in both groups (in UREM by −48% and in CON by −43%, P > 0.05). For the first time, we give evidence that CRI can induce significant impairments in single psoas muscle fibers force generation, only partly explained by fiber atrophy, thus affecting muscle mechanics at the cellular level. © 2018 Elsevier Ltden
dc.language.isoenen
dc.sourceJournal of Biomechanicsen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85056726658&doi=10.1016%2fj.jbiomech.2018.10.035&partnerID=40&md5=2bd45f875258ac45a910d34acfbbe03f
dc.subjectMuscleen
dc.subjectAnimal modelen
dc.subjectChronic kidney diseaseen
dc.subjectIsometric tensionen
dc.subjectSpecific forceen
dc.subjectUremic myopathyen
dc.subjectFibersen
dc.subjectacidityen
dc.subjectacidosisen
dc.subjectadulten
dc.subjectanimal cellen
dc.subjectanimal experimenten
dc.subjectanimal modelen
dc.subjectArticleen
dc.subjectbiomechanicsen
dc.subjectcell levelen
dc.subjectcontrolled studyen
dc.subjectexperimental renal failureen
dc.subjectfemaleen
dc.subjectforceen
dc.subjectfunctional diseaseen
dc.subjectLeporidaeen
dc.subjectmuscle atrophyen
dc.subjectmuscle cellen
dc.subjectnonhumanen
dc.subjectpriority journalen
dc.subjectpsoas muscleen
dc.subjecttemperatureen
dc.subjectyoung adulten
dc.subjectanimalen
dc.subjectkidney failureen
dc.subjectmaleen
dc.subjectmuscle contractionen
dc.subjectpathophysiologyen
dc.subjectpHen
dc.subjectphysiologyen
dc.subjectskeletal muscle cellen
dc.subjectAnimalsen
dc.subjectHydrogen-Ion Concentrationen
dc.subjectMaleen
dc.subjectMuscle Contractionen
dc.subjectMuscle Fibers, Skeletalen
dc.subjectRabbitsen
dc.subjectRenal Insufficiencyen
dc.subjectTemperatureen
dc.subjectElsevier Ltden
dc.titleEvidence of functional deficits at the single muscle fiber level in experimentally-induced renal insufficiencyen
dc.typejournalArticleen


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