CaMKIIδC Drives Early Adaptive Ca 2+ Change and Late Eccentric Cardiac Hypertrophy

Author:

Ljubojevic-Holzer Senka123,Herren Anthony W.2,Djalinac Natasa1,Voglhuber Julia13ORCID,Morotti Stefano2,Holzer Michael4,Wood Brent M.2,Abdellatif Mahmoud1,Matzer Ingrid1ORCID,Sacherer Michael1,Radulovic Snjezana1,Wallner Markus1,Ivanov Milan5,Wagner Stefan6ORCID,Sossalla Samuel76,von Lewinski Dirk1,Pieske Burkert8,Brown Joan Heller9,Sedej Simon1310ORCID,Bossuyt Julie2,Bers Donald M.2ORCID

Affiliation:

1. Department of Cardiology (S.L.-H., N.D., J.V., M.A., I.M., M.S., S.R., M.W., D.v.L., S. Sedej), Medical University of Graz, Austria.

2. Department of Pharmacology, University of California, Davis, CA (S.L.-H., A.W.H., S.M., B.M.W., J.B., D.M.B.).

3. BioTechMed Graz, Austria (S.L.-H., J.V., S. Sedej).

4. Otto-Loewi Research Centre, Division of Pharmacology (M.H.), Medical University of Graz, Austria.

5. Institute for Medical Research, University of Belgrade, Serbia (M.I.).

6. Klinik und Poliklinik für Innere Medizin II, Universitätsklinikum Regensburg, Germany (S.W., S. Sossalla).

7. Klinik für Kardiologie und Pneumologie, Georg-August-Universität Göttingen, Germany (S. Sossalla).

8. Department of Internal Medicine and Cardiology, Charité University Medicine Berlin, Germany (B.P.).

9. Department of Pharmacology, University of California San Diego, La Jolla (J.H.B.).

10. Faculty of Medicine, Institute of Physiology, University of Maribor, Slovenia (S. Sedej).

Abstract

Rationale: CaMKII (Ca 2+ -Calmodulin dependent protein kinase) δC activation is implicated in pathological progression of heart failure (HF) and CaMKIIδC transgenic mice rapidly develop HF and arrhythmias. However, little is known about early spatio-temporal Ca 2+ handling and CaMKII activation in hypertrophy and HF. Objective: To measure time- and location-dependent activation of CaMKIIδC signaling in adult ventricular cardiomyocytes, during transaortic constriction (TAC) and in CaMKIIδC transgenic mice. Methods and Results: We used human tissue from nonfailing and HF hearts, 4 mouse lines: wild-type, KO (CaMKIIδ-knockout), CaMKIIδC transgenic in wild-type (TG), or KO background, and wild-type mice exposed to TAC. Confocal imaging and biochemistry revealed disproportional CaMKIIδC activation and accumulation in nuclear and perinuclear versus cytosolic regions at 5 days post-TAC. This CaMKIIδ activation caused a compensatory increase in sarcoplasmic reticulum Ca 2+ content, Ca 2+ transient amplitude, and [Ca 2+ ] decline rates, with reduced phospholamban expression, all of which were most prominent near and in the nucleus. These early adaptive effects in TAC were entirely mimicked in young CaMKIIδ TG mice (6–8 weeks) where no overt cardiac dysfunction was present. The (peri)nuclear CaMKII accumulation also correlated with enhanced HDAC4 (histone deacetylase) nuclear export, creating a microdomain for transcriptional regulation. At longer times both TAC and TG mice progressed to overt HF (at 45 days and 11–13 weeks, respectively), during which time the compensatory Ca 2+ transient effects reversed, but further increases in nuclear and time-averaged [Ca 2+ ] and CaMKII activation occurred. CaMKIIδ TG mice lacking δB exhibited more severe HF, eccentric myocyte growth, and nuclear changes. Patient HF samples also showed greatly increased CaMKIIδ expression, especially for CaMKIIδC in nuclear fractions. Conclusions: We conclude that in early TAC perinuclear CaMKIIδC activation promotes adaptive increases in myocyte Ca 2+ transients and nuclear transcriptional responses but that chronic progression of this nuclear Ca 2+ -CaMKIIδC axis contributes to eccentric hypertrophy and HF.

Funder

Austrian Science Fund

BioTechMed-Graz

HHS | NIH | National Heart, Lung, and Blood Institute

Foundation for the National Institutes of Health

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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