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Published on: September 18, 2017
CaMKIIδC Drives Early Adaptive Ca2+ Change and Late Eccentric Cardiac Hypertrophy
Senka Ljubojevic-Holzer1,2,3, Anthony W Herren2, Natasa Djalinac1
1Department 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.
Insights
CaMKIIδC activation in the nucleus promotes early adaptive heart responses but contributes to heart failure progression. This nuclear signaling axis drives eccentric hypertrophy and cardiac dysfunction.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cardiac Physiology
Background:
- Ca2+-Calmodulin dependent protein kinase (CaMKII) δC activation is linked to heart failure (HF) progression.
- Early spatio-temporal Ca2+ handling and CaMKII activation in hypertrophy and HF remain poorly understood.
Purpose of the Study:
- To investigate the time- and location-dependent activation of CaMKIIδC signaling in adult ventricular cardiomyocytes.
- To analyze CaMKIIδC activation during transaortic constriction (TAC) and in CaMKIIδC transgenic mice.
Main Methods:
- Utilized human HF and nonfailing heart tissues.
- Employed four mouse lines: wild-type, CaMKIIδ-knockout (KO), CaMKIIδC transgenic (TG) on wild-type or KO background, and TAC-induced HF models.
- Applied confocal imaging and biochemical analyses.
Main Results:
- Disproportional CaMKIIδC activation and nuclear accumulation observed early post-TAC (5 days).
- Early adaptive increases in sarcoplasmic reticulum Ca2+ content and Ca2+ transient amplitude, linked to perinuclear CaMKIIδC.
- CaMKIIδC activation correlated with enhanced HDAC4 nuclear export, facilitating transcriptional regulation.
- Chronic TAC and TG models progressed to overt HF, with reversed Ca2+ transient effects and increased nuclear CaMKII activation.
- CaMKIIδ TG mice lacking δB showed more severe HF and eccentric myocyte growth.
- Human HF samples exhibited increased nuclear CaMKIIδ expression, particularly CaMKIIδC.
Conclusions:
- Early perinuclear CaMKIIδC activation in TAC promotes adaptive myocyte Ca2+ transients and nuclear transcriptional responses.
- Chronic activation of the nuclear Ca2+-CaMKIIδC axis contributes to eccentric hypertrophy and heart failure progression.
Rationale:
CaMKII (Ca2+-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 Ca2+ 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 Ca2+ content, Ca2+ transient amplitude, and [Ca2+] 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 Ca2+ transient effects reversed, but further increases in nuclear and time-averaged [Ca2+] 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 Ca2+ transients and nuclear transcriptional responses but that chronic progression of this nuclear Ca2+-CaMKIIδC axis contributes to eccentric hypertrophy and HF.
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