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Nawaito, S. A.

Publications and source records attributed to Nawaito, S. A..

2 recordsLinked to original sources

Expression, subcellular localization, and phosphorylation of MK5 in adult cardiac ventricular fibroblasts

MAP kinase-activated protein kinase-5 (MK5) plays an important role in cardiac fibroblast function. Although p38 MAPK and atypical MAPKs and ERK3 and ERK4 have been identified as activators of MK5, the kinases that activate MK5 remain controversial. Here we examined the expression, subcellular distribution, and regulation of MK5 in cardiac ventricular myofibroblasts and myocytes. The copy numbers for MK5 and ERK4 mRNA were comparable in myocytes and myofibroblasts, whereas that of ERK3 was much higher in myofibroblasts. Interestingly, MK5 and ERK3 immunoreactivity was detected in myofibroblasts but not myocytes whereas ERK4 immunoreactivity was detected in myocytes: treating in myocytes with a proteasome inhibitor or hypertrophic agonists failed to rescue MK5 immunoreactivity. In myofibroblasts, MK5 and ERK3 immunoreactivity was predominantly nuclear and cytosolic, respectively. In serum-starved cardiac myofibroblasts, phosphothreonine-182 MK5 (pT182-MK5) immunoreactivity was predominantly nuclear but increased in intensity and relocated to the cytoplasm in response to serum, sorbitol, angiotensin II, TGF{beta}, or H2O2 and this was prevented by inhibition of p38/{beta}. Phos-tag SDS-PAGE revealed multiple slower migrating bands of MK5 immunoreactivity, indicating phosphorylation of MK5 at multiple sites. Phos-tag PAGE also revealed MK5 phosphorylation was increased with fibroblast activation and in hearts exposed to a chronic increase in afterload. MK5 and ERK3 co-immunoprecipitated and proximity ligation assays revealed ERK3 and MK5 in close proximity in myofibroblast cytoplasmic compartment. Furthermore, p38/{beta} inhibition decreased the abundance of MK5 immunoreactivity in ERK3 immunoprecipitates. Finally, deleting MK5 did not reduce the abundance of ERK3 immunoreactivity. These observations suggest that p38 and/or p38{beta} are the primary mediators of T182-MK5 phosphorylation and hence MK5 activation in cardiac myofibroblasts.

biochemistry

MK2-deficient mice are bradycardic and display delayed hypertrophic remodelling in response to a chronic increase in afterload

MAP kinase-activated protein kinase-2 (MK2) is protein serine/threonine kinase activated by p38/{beta}. Herein we examined the cardiac phenotype of pan MK2-null (MK2-/-) mice. Survival curves for male MK2+/+ and MK2-/- mice did not differ (Mantel-Cox test, P = 0.580). At 12-weeks of age, MK2-/- mice exhibited normal systolic function along with signs of possible early diastolic dysfunction; however, ageing was not associated with an abnormal reduction in diastolic function. Both R-R interval and P-R segment durations were prolonged in MK2-deficient mice. However, heart rates normalized when isolated hearts were perfused ex vivo in working mode. Ca2+ transients evoked by field stimulation or caffeine were similar in ventricular myocytes from MK2+/+ and MK2-/- mice. MK2-/- mice had lower body temperature and an age-dependent reduction in body weight. mRNA levels of key metabolic genes, including Ppargc1a, Acadm, Lipe, and Ucp3 were increased in hearts from MK2-/- mice. For equivalent respiration rates, mitochondria from MK2-/- hearts showed a significant decrease in Ca2+-sensitivity to mitochondrial permeability transition pore (mPTP) opening. Finally, the pressure overload-induced increase in heart weight/tibia length and decrease in systolic function were attenuated in MK2-/- mice two weeks, but not eight weeks, after constriction of the transverse aorta. Collectively, these results implicate MK2 in (i) autonomic regulation of heart rate, (ii) cardiac mitochondrial function, and (iii) the early stages of myocardial remodeling in response to chronic pressure overload. Key points summaryThe cardiac characterization of pan MK2-null mice showed: O_LIaltered autonomic regulation of heart rate C_LIO_LIincreased expression of key metabolic genes C_LIO_LIdecreased Ca2+-sensitivity for MPTP opening C_LIO_LIdelayed hypertrophic remodeling in response to increased afterload C_LI

physiology