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Stenson, K.

Publications and source records attributed to Stenson, K..

4 recordsLinked to original sources

Kinase independent function of PI3Kγ modulates calcium re-uptake by regulating phospholamban function

RationaleGenetic deletion of Phosphoinositide 3-kinase (PI3K{gamma}) in mice (PI3K{gamma}-/-) results in increased cAMP levels and enhanced ventricular rate/contractility. Whether PI3K{gamma} plays a role in cardiac contractility by altering intracellular calcium recycling is not known. ObjectiveTo understand the mechanism of PI3K{gamma} mediated regulation of cardiac contractility. Methods and ResultsCaffeine treatment of adult cardiomyocytes from PI3K{gamma}-/- mice showed significantly reduced calcium reuptake by sarcoendoplasmic reticulum (SR) indicating that PI3K{gamma} locally regulates SR function. This resulted in elevated levels of intracellular calcium for prolonged period following caffeine. Our findings show that delayed re-uptake of calcium was caused by changes in phosphorylation of phospholamban (PLN), a major regulator of SR calcium reuptake. PI3K{gamma}-/- cardiomyocytes show significantly reduced PLN phosphorylation due to increase in PLN-associated protein phosphatase (PP) activity as reflected by decreased demethylated-PP2A. Consistently, the altered calcium regulation in the cardiomyocytes of PI3K{gamma}-/- can be restored by inhibition of PP by okadaic acid. Unexpectedly, cardiomyocyate-specific overexpression of kinase-dead PI3K{gamma} PI3K{gamma}inact) in the global PI3K{gamma}-/- cardiomyocytes normalized caffeine induced calcium reuptake, restored PLN phosphorylation, and decreased PLN-associated PP activity reflected by increased demethylated-PP2A. ConclusionsThese studies bring-to-fore an unrecognized regulation of PLN by PI3K{gamma} through PP2A with implications in deleterious cardiac remodeling as PI3K{gamma} is significantly upregulated following cardiac stress.

molecular biology↗

Cardiac overexpression of microRNA-7 is associated with adverse cardiac remodeling

Role of microRNA-7 (miRNA-7) in targeting Epidermal growth factor receptor (EGFR/ERBB) family is known in dividing cancer cells while less is known about its role in terminally differentiated cardiac cells. We generated transgenic (Tg) mice with cardiomyocyte-specific overexpression of miRNA-7 to determine its role in regulating cardiac function. Despite similar survival, expression of miRNA-7 results in cardiac dilation as measured by echocardiography, instead of age-based cardiac hypertrophy observed in littermate controls. In contrast to the classical adaptive hypertrophy in response to TAC, miRNA-7 Tg mice directly undergo cardiac dilation post-TAC that is associated with increased fibrosis. Interestingly, significant loss in ERBB2 expression was observed in cardiomyocytes with no changes in ERBB1 (EGFR). Gene ontology and cellular component analysis using the cardiac proteomics data showed significant reduction in mitochondrial membrane integrity reflecting the differential enrichment/loss of proteins in miRNA-7 Tg mice compared to littermate controls. Consistently, electron microscopy showed that miRNA-7 Tg hearts had disorganized and rounded mitochondrial morphology indicating mitochondrial dysfunction. These findings show that expression of miRNA-7 uniquely results in cardiac dilation instead of adaptive hypertrophic response to cardiac stress providing insights on adverse remodeling in physiology and pathology.

physiology↗

Insulin inhibits protein phosphatase 2A to impair β-adrenergic receptor function

Insulin impairs {beta}2-adrenergic receptor ({beta}2AR) function through G protein-coupled receptor kinase 2 (GRK2) by phosphorylation but less is known about dephosphorylation mechanisms mediated by protein phosphatase 2A (PP2A). Pharmacologic or genetic inhibition of phosphoinositide 3-kinase {gamma} (PI3K{gamma}) unexpectedly resulted in significant reduction of insulin-mediated {beta}2AR phosphorylation. Interestingly, {beta}2AR-associated phosphatase activity was inhibited by insulin but was reversed by knock-down of PI3K{gamma} showing negative regulation of PP2A by PI3K{gamma}. Co-immunoprecipitation and surface plasmon resonance studies using purified proteins showed that GRK2 and PI3K{gamma} form a complex and could be recruited to {beta}2ARs as GRK2 interacts with insulin receptor substrate following insulin treatment. Consistently, {beta}-blocker pretreatment did not reduce insulin-mediated {beta}2AR phosphorylation indicating agonist- and G{beta}{gamma}-independent non-canonical regulation of receptor function. Mechanistically, PI3K{gamma} inhibits PP2A activity at the {beta}AR complex by phosphorylating an intracellular inhibitor of PP2A (I2PP2A). Knock-down or CRISPR ablation of endogenous I2PP2A unlocked PP2A inhibition mediating {beta}2AR dephosphorylation showing an unappreciated acute regulation of PP2A in mediating insulin-{beta}2AR cross-talk. SummaryInsulin impairs {beta}2-adrenergic receptor ({beta}2AR) function through G protein-coupled receptor kinase 2 (GRK2). We show that insulin simultaneously inhibits protein phosphatase 2A (PP2A) sustaining {beta}2AR functional impairment. Unexpectedly, releasing PP2A inhibition by PI3K{gamma} preserves {beta}2AR function despite intact insulin-driven GRK2-mechanisms.

biochemistry↗

beta-blocker reverses inhibition of beta-2 adrenergic receptor resensitization by hypoxia

Ischemia/hypoxia is major underlying cause for heart failure and stroke. Although beta-adrenergic receptor ({beta}AR) is phosphorylated in response to hypoxia, less is known about the underlying mechanisms. Hypoxia results in robust GRK2-mediated {beta}2AR phosphorylation but does not cause receptor internalization. However, hypoxia leads to significant endosomal-{beta}2AR phosphorylation accompanied by inhibition of {beta}2AR-associated protein phosphatase 2A (PP2A) activity impairing resensitization. Phosphoinositide 3-kinase {gamma} (PI3K{gamma}) impedes resensitization by phosphorylating endogenous inhibitor of protein phosphatase 2A, I2PP2A that inhibits PP2A activity. Hypoxia increased PI3K{gamma} activity leading to significant phosphorylation of I2PP2A resulting in inhibition of PP2A and consequently resensitization. Surprisingly, {beta}-blocker abrogated hypoxia-mediated {beta}2AR phosphorylation instead of phosphorylation in normoxia. Subjecting mice to hypoxia leads to significant cardiac dysfunction and {beta}2AR phosphorylation showing conservation of non-canonical hypoxia-mediated pathway in vivo. These findings provide mechanistic insights on hypoxia-mediated {beta}AR dysfunction which is rescued by {beta}-blocker and will have significant implications in heart failure and stroke.

biochemistry↗