Molecular Mechanisms of Adiponectin-Induced Attenuation of Mechanical Stretch-Mediated Vascular Remodeling

dc.contributor.authorGhantous, Crystal M.
dc.contributor.authorGhantous, Crystal M.
dc.contributor.authorFarhat, Rima
dc.contributor.authorDjouhri, Laiche
dc.contributor.authorAlashmar, Sarah
dc.contributor.authorAnlar, Gulsen Guliz
dc.contributor.authorKorashy, Hesham Mohamed
dc.contributor.authorAgouni, Abdelali
dc.contributor.authorZeidan, Asad
dc.contributor.departmentAnatomy, Cell Biology, and Physiological Sciences
dc.contributor.facultyFaculty of Medicine (FM)
dc.contributor.institutionAmerican University of Beirut
dc.date.accessioned2025-01-24T11:36:56Z
dc.date.available2025-01-24T11:36:56Z
dc.date.issued2020
dc.description.abstractHypertension induces vascular hypertrophy, which changes blood vessels structurally and functionally, leading to reduced tissue perfusion and further hypertension. It is also associated with dysregulated levels of the circulating adipokines leptin and adiponectin (APN). Leptin is an obesity-associated hormone that promotes vascular smooth muscle cell (VSMC) hypertrophy. APN is a cardioprotective hormone that has been shown to attenuate hypertrophic cardiomyopathy. In this study, we investigated the molecular mechanisms of hypertension-induced VSMC remodeling and the involvement of leptin and APN in this process. To mimic hypertension, the rat portal vein (RPV) was mechanically stretched, and the protective effects of APN on mechanical stretch-induced vascular remodeling and the molecular mechanisms involved were examined by using 10 μg/ml APN. Mechanically stretching the RPV significantly decreased APN protein expression after 24 hours and APN mRNA expression in a time-dependent manner in VSMCs. The mRNA expression of the APN receptors AdipoR1, AdipoR2, and T-cadherin significantly increased after 15 hours of stretch. The ratio of APN/leptin expression in VSMCs significantly decreased after 24 hours of mechanical stretch. Stretching the RPV for 3 days increased the weight and [3H]-leucine incorporation significantly, whereas APN significantly reduced hypertrophy in mechanically stretched vessels. Stretching the RPV for 10 minutes significantly decreased phosphorylation of LKB1, AMPK, and eNOS, while APN significantly increased p-LKB1, p-AMPK, and p-eNOS in stretched vessels. Mechanical stretch significantly increased p-ERK1/2 after 10 minutes, whereas APN significantly reduced stretch-induced ERK1/2 phosphorylation. Stretching the RPV also significantly increased ROS generation after 1 hour, whereas APN significantly decreased mechanical stretch-induced ROS production. Exogenous leptin (3.1 nM) markedly increased GATA-4 nuclear translocation in VSMCs, whereas APN significantly attenuated leptin-induced GATA-4 nuclear translocation. Our results decipher molecular mechanisms of APN-induced attenuation of mechanical stretch-mediated vascular hypertrophy, with the promising potential of ultimately translating this protective hormone into the clinic. © 2020 Crystal M. Ghantous et al.
dc.identifier.doihttps://doi.org/10.1155/2020/6425782
dc.identifier.eid2-s2.0-85086838675
dc.identifier.pmid32566092
dc.identifier.urihttp://hdl.handle.net/10938/28761
dc.language.isoen
dc.publisherHindawi Limited
dc.relation.ispartofOxidative Medicine and Cellular Longevity
dc.sourceScopus
dc.subjectAttenuation
dc.subjectLeucine
dc.subjectMinutes
dc.subjectPhosphorylation
dc.subjectProcesses
dc.subjectStretching
dc.subjectTranslocation
dc.subjectVessels
dc.subjectAdenylate kinase
dc.subjectAdiponectin
dc.subjectAnimals
dc.subjectCell nucleus
dc.subjectExtracellular signal-regulated map kinases
dc.subjectGata4 transcription factor
dc.subjectHypertrophy
dc.subjectLeptin
dc.subjectMale
dc.subjectMuscle, smooth, vascular
dc.subjectMyocytes, smooth muscle
dc.subjectNitric oxide synthase type iii
dc.subjectPortal vein
dc.subjectProtein-serine-threonine kinases
dc.subjectRats, sprague-dawley
dc.subjectReactive oxygen species
dc.subjectReceptors, adiponectin
dc.subjectRna, messenger
dc.subjectStress, mechanical
dc.subjectVascular remodeling
dc.subjectBlood vessels
dc.subjectHormones
dc.subjectMuscle
dc.subjectPathology
dc.subjectAdiponectin receptor 1
dc.subjectAdiponectin receptor 2
dc.subjectCadherin
dc.subjectEndothelial nitric oxide synthase
dc.subjectHydroxymethylglutaryl coenzyme a reductase kinase
dc.subjectMessenger rna
dc.subjectMitogen activated protein kinase 1
dc.subjectMitogen activated protein kinase 3
dc.subjectProtein kinase lkb1
dc.subjectReactive oxygen metabolite
dc.subjectTranscription factor gata 4
dc.subjectAdiponectin receptor
dc.subjectMitogen activated protein kinase
dc.subjectProtein serine threonine kinase
dc.subjectStk11 protein, rat
dc.subjectHypertrophic cardiomyopathy
dc.subjectLeucine incorporation
dc.subjectMolecular mechanism
dc.subjectNuclear translocations
dc.subjectProtective effects
dc.subjectProtein expressions
dc.subjectVascular smooth muscle cells
dc.subjectAmpk signaling
dc.subjectAnimal experiment
dc.subjectAnimal model
dc.subjectAnimal tissue
dc.subjectArticle
dc.subjectControlled study
dc.subjectDown regulation
dc.subjectHeart hypertrophy
dc.subjectHepatic portal vein
dc.subjectHypertension
dc.subjectMrna expression level
dc.subjectNonhuman
dc.subjectOrgan culture
dc.subjectProtein expression level
dc.subjectProtein phosphorylation
dc.subjectProtein synthesis
dc.subjectRat
dc.subjectTissue perfusion
dc.subjectVascular smooth muscle cell
dc.subjectAnimal
dc.subjectGenetics
dc.subjectMechanical stress
dc.subjectMetabolism
dc.subjectSmooth muscle cell
dc.subjectSprague dawley rat
dc.subjectVascular smooth muscle
dc.subjectMechanisms
dc.titleMolecular Mechanisms of Adiponectin-Induced Attenuation of Mechanical Stretch-Mediated Vascular Remodeling
dc.typeArticle

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