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Published on: September 18, 2017
Chronic Ca2+/Calmodulin-Dependent Protein Kinase II Inhibition Rescues Advanced Heart Failure
Yixi Liu1, Qun Shao1, Heng-Jie Cheng1
1Department of Cardiology, the First Affiliated Hospital of Kunming Medical University, Kunming, China (Y.L.); Department of Cardiology, Harbin Medical University Cancer Hospital, Harbin, China (Q.S.); Department of Internal Medicine, Cardiovascular Medicine, Wake Forest School of Medicine, Winston-Salem, North Carolina (Y.L., Q.S., H.-J.C., T.L., X.Z., M.F.C., D.H., D.K., D.Z., C.-P.C.); Department of Cardiology, the First Affiliated Hospital of Harbin Medical University, Harbin, China (T.L.); and Department of Cardiology, the Second Hospital, Cheeloo College of Medicine, Shandong University, Jinan, Shandong, China (X.Z.).
Insights
Ca2+/calmodulin-dependent protein kinase II (CaMKII) inhibition reverses advanced congestive heart failure (CHF) by preventing sympathetic nervous system activation and restoring cardiomyocyte function. This cardiac CaMKII inhibition offers a promising therapeutic strategy for CHF treatment.
Area of Science:
- Cardiology
- Molecular Biology
- Pharmacology
Background:
- Ca2+/calmodulin-dependent protein kinase II (CaMKII) is upregulated in congestive heart failure (CHF), contributing to cardiac remodeling.
- CaMKII inhibition shows potential for improving CHF, but its direct cardiac effects require further investigation.
Purpose of the Study:
- To investigate the therapeutic efficacy of late-stage CaMKII inhibition in advanced CHF.
- To determine if CaMKII inhibition improves cardiomyocyte function, calcium handling, and beta-adrenergic reserve in CHF.
Main Methods:
- Congestive heart failure (CHF) was induced in rats using isoproterenol.
- Rats with CHF were treated with the CaMKII inhibitor KN-93 or its inactive analog KN-92 for 4 weeks.
- Evaluated plasma neurohormonal levels, left ventricular (LV) function, and myocyte contractility and calcium transients ([Ca2+]iT).
Main Results:
- KN-93 treatment prevented norepinephrine elevation, improved LV ejection fraction and contractility, and decreased LV relaxation time constant.
- KN-93 preserved normal myocyte contraction, relaxation, [Ca2+]iT, and beta-adrenergic reserve in CHF rats.
- KN-92 treatment did not improve cardiac function or reduce norepinephrine levels in CHF rats.
Conclusions:
- Chronic CaMKII inhibition effectively prevents CHF-induced sympathetic nervous system activation.
- CaMKII inhibition restores normal cardiomyocyte function and beta-adrenergic responsiveness, rescuing the failing heart in advanced CHF.
- Cardiac CaMKII inhibition represents a promising therapeutic target for CHF treatment.
Abstract:
Ca2+/calmodulin-dependent protein kinase II (CaMKII) is upregulated in congestive heart failure (CHF), contributing to electrical, structural, and functional remodeling. CaMKII inhibition is known to improve CHF, but its direct cardiac effects in CHF remain unclear. We hypothesized that CaMKII inhibition improves cardiomyocyte function, [Ca2+]i regulation, and β-adrenergic reserve, thus improving advanced CHF. In a 16-week study, we compared plasma neurohormonal levels and left ventricular (LV)- and myocyte-functional and calcium transient ([Ca2+]iT) responses in male Sprague-Dawley rats (10/group) with CHF induced by isoproterenol (170 mg/kg sq for 2 days). In rats with CHF, we studied the effects of the CaMKII inhibitor KN-93 or its inactive analog KN-92 (n = 4) (70 µg/kg per day, mini-pump) for 4 weeks. Compared with controls, isoproterenol-treated rats had severe CHF with 5-fold-increased plasma norepinephrine and about 50% decreases in ejection fraction (EF) and LV contractility [slope of LV end-systolic pressure-LV end-systolic volume relation (EES)] but increased time constant of LV relaxation (τ). They also showed significantly reduced myocyte contraction [maximum rate of myocyte shortening (dL/dtmax)], relaxation (dL/dtmax), and [Ca2+]iT Isoproterenol superfusion caused significantly fewer increases in dL/dtmax and [Ca2+]iT KN-93 treatment prevented plasma norepinephrine elevation, with increased basal and acute isoproterenol-stimulated increases in EF and EES and decreased τ in CHF. KN-93 treatment preserved normal myocyte contraction, relaxation, [Ca2+]iT, and β-adrenergic reserve, whereas KN-92 treatment failed to improve LV and myocyte function, and plasma norepinephrine remained high in CHF. Thus, chronic CaMKII inhibition prevented CHF-induced activation of the sympathetic nervous system, restoring normal LV and cardiomyocyte basal and β-adrenergic-stimulated contraction, relaxation, and [Ca2+]iT, thereby playing a rescue role in advanced CHF. SIGNIFICANCE STATEMENT: We investigated the therapeutic efficacy of late initiation of chronic Ca2+/calmodulin-dependent protein kinase II (CaMKII) inhibition on progression of advanced congestive heart failure (CHF). Chronic CaMKII inhibition prevented CHF-induced activation of the sympathetic nervous system and restored normal intrinsic cardiomyocyte basal and β-adrenergic receptor-stimulated relaxation, contraction, and [Ca2+]i regulation, leading to reversal of CHF progression. These data provide new evidence that CaMKII inhibition is able and sufficient to rescue a failing heart, and thus cardiac CaMKII inhibition is a promising target for improving CHF treatment.
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