Ca 2+ Signaling in Cardiac Myocytes Overexpressing the α 1 Subunit of L-Type Ca 2+ Channel

Author:

Song Long-Sheng1,Guia António1,Muth James N.1,Rubio Marta1,Wang Shi-Qiang1,Xiao Rui-Ping1,Josephson Ira R.1,Lakatta Edward G.1,Schwartz Arnold1,Cheng Heping1

Affiliation:

1. From the Laboratory of Cardiovascular Sciences (L.-S.S., A.G., S.-Q.W., R.-P.X., I.R.J., E.G.L., H.C.), National Institute on Aging, National Institutes of Health, Baltimore, Md; and the Institute of Molecular Pharmacology and Biophysics (J.N.M., M.R., A.S.), University of Cincinnati, Cincinnati, Ohio.

Abstract

Voltage-gated L-type Ca 2+ channels (LCCs) provide Ca 2+ ingress into cardiac myocytes and play a key role in intracellular Ca 2+ homeostasis and excitation-contraction coupling. We investigated the effects of a constitutive increase of LCC density on Ca 2+ signaling in ventricular myocytes from 4-month-old transgenic (Tg) mice overexpressing the α 1 subunit of LCC in the heart. At this age, cells were somewhat hypertrophic as reflected by a 20% increase in cell capacitance relative to those from nontransgenic (Ntg) littermates. Whole cell I Ca density in Tg myocytes was elevated by 48% at 0 mV compared with the Ntg group. Single-channel analysis detected an increase in LCC density with similar conductance and gating properties. Although the overexpressed LCCs triggered an augmented SR Ca 2+ release, the “gain” function of EC coupling was uncompromised, and SR Ca 2+ content, diastolic cytosolic Ca 2+ , and unitary properties of Ca 2+ sparks were unchanged. Importantly, the enhanced I Ca entry and SR Ca 2+ release were associated with an upregulation of the Na + -Ca 2+ exchange activity (indexed by the half decay time of caffeine-elicited Ca 2+ transient) by 27% and SR Ca 2+ recycling by ≈35%. Western analysis detected a 53% increase in the Na + -Ca 2+ exchanger expression but no change in the abundance of ryanodine receptor (RyR), SERCA2, and phospholamban. Analysis of I Ca kinetics suggested that SR Ca 2+ release-dependent inactivation of LCCs remains intact in Tg cells. Thus, in spite of the modest cardiac hypertrophy, the overexpressed LCCs form functional coupling with RyRs, preserving both orthograde and retrograde Ca 2+ signaling between LCCs and RyRs. These results also suggest that a modest but sustained increase in Ca 2+ influx triggers a coordinated remodeling of Ca 2+ handling to maintain Ca 2+ homeostasis.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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