Contribution of electromechanical coupling between KV and CaV1.2 channels to coronary dysfunction in obesity

dc.contributor.authorBerwick, Zachary C.
dc.contributor.authorDick, Gregory M.
dc.contributor.authorO’Leary, Heather A.
dc.contributor.authorBender, Shawn B.
dc.contributor.authorGoodwill, Adam G.
dc.contributor.authorMoberly, Steven P.
dc.contributor.authorKohr Owen, Meredith
dc.contributor.authorMiller, Steven J.
dc.contributor.authorObukhov, Alexander G.
dc.contributor.authorTune, Johnathan D.
dc.contributor.departmentCellular and Integrative Physiology, School of Medicine
dc.date.accessioned2025-05-05T16:54:25Z
dc.date.available2025-05-05T16:54:25Z
dc.date.issued2013
dc.description.abstractPrevious investigations indicate that diminished functional expression of voltage-dependent K(+) (KV) channels impairs control of coronary blood flow in obesity/metabolic syndrome. The goal of this investigation was to test the hypothesis that KV channels are electromechanically coupled to CaV1.2 channels and that coronary microvascular dysfunction in obesity is related to subsequent increases in CaV1.2 channel activity. Initial studies revealed that inhibition of KV channels with 4-aminopyridine (4AP, 0.3 mM) increased intracellular [Ca(2+)], contracted isolated coronary arterioles and decreased coronary reactive hyperemia. These effects were reversed by blockade of CaV1.2 channels. Further studies in chronically instrumented Ossabaw swine showed that inhibition of CaV1.2 channels with nifedipine (10 μg/kg, iv) had no effect on coronary blood flow at rest or during exercise in lean swine. However, inhibition of CaV1.2 channels significantly increased coronary blood flow, conductance, and the balance between coronary flow and metabolism in obese swine (P < 0.05). These changes were associated with a ~50 % increase in inward CaV1.2 current and elevations in expression of the pore-forming subunit (α1c) of CaV1.2 channels in coronary smooth muscle cells from obese swine. Taken together, these findings indicate that electromechanical coupling between KV and CaV1.2 channels is involved in the regulation of coronary vasomotor tone and that increases in CaV1.2 channel activity contribute to coronary microvascular dysfunction in the setting of obesity.
dc.eprint.versionAuthor's manuscript
dc.identifier.citationBerwick ZC, Dick GM, O'Leary HA, et al. Contribution of electromechanical coupling between Kv and Ca v1.2 channels to coronary dysfunction in obesity. Basic Res Cardiol. 2013;108(5):370. doi:10.1007/s00395-013-0370-0
dc.identifier.urihttps://hdl.handle.net/1805/47762
dc.language.isoen_US
dc.publisherSpringer
dc.relation.isversionof10.1007/s00395-013-0370-0
dc.relation.journalBasic Research in Cardiology
dc.rightsPublisher Policy
dc.sourcePMC
dc.subjectCoronary
dc.subjectExercise
dc.subjectCaV1.2 channels
dc.subjectObesity
dc.subjectSwine
dc.titleContribution of electromechanical coupling between KV and CaV1.2 channels to coronary dysfunction in obesity
dc.typeArticle
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