» Articles » PMID: 18790836

Impaired Ca2+ Homeostasis is Associated with Atrial Fibrillation in the Alpha1D L-type Ca2+ Channel KO Mouse

Overview
Authors
Affiliations
Soon will be listed here.
Abstract

The novel alpha1D Ca2+ channel together with alpha1C Ca2+ channel contribute to the L-type Ca2+ current (I(Ca-L)) in the mouse supraventricular tissue. However, its functional role in the heart is just emerging. We used the alpha1D gene knockout (KO) mouse to investigate the electrophysiological features, the relative contribution of the alpha1D Ca2+ channel to the global I(Ca-L), the intracellular Ca2+ transient, the Ca2+ handling by the sarcoplasmic reticulum (SR), and the inducibility of atrial fibrillation (AF). In vivo and ex vivo ECG recordings from alpha1D KO mice demonstrated significant sinus bradycardia, atrioventricular block, and vulnerability to AF. The wild-type mice showed no ECG abnormalities and no AF. Patch-clamp recordings from isolated alpha1D KO atrial myocytes revealed a significant reduction of I(Ca-L) (24.5%; P < 0.05). However, there were no changes in other currents such as I(Na), I(Ca-T), I(K), I(f), and I(to) and no changes in alpha1C mRNA levels of alpha1D KO atria. Fura 2-loaded atrial myocytes showed reduced intracellular Ca2+ transient (approximately 40%; P < 0.05) and rapid caffeine application caused a 17% reduction of the SR Ca2+ content (P < 0.05) and a 28% reduction (P < 0.05) of fractional SR Ca2+ release in alpha1D KO atria. In conclusion, genetic deletion of alpha1D Ca2+ channel in mice results in atrial electrocardiographic abnormalities and AF vulnerability. The electrical abnormalities in the alpha1D KO mice were associated with a decrease in the total I(Ca-L) density, a reduction in intracellular Ca2+ transient, and impaired intracellular Ca2+ handling. These findings provide new insights into the mechanism leading to atrial electrical dysfunction in the alpha1D KO mice.

Citing Articles

Genetics and Pharmacogenetics of Atrial Fibrillation: A Mechanistic Perspective.

Owais A, Barney M, Ly O, Brown G, Chen H, Sridhar A JACC Basic Transl Sci. 2024; 9(7):918-934.

PMID: 39170958 PMC: 11334418. DOI: 10.1016/j.jacbts.2023.12.006.


Electrophysiological basis of cardiac arrhythmia in a mouse model of myotonic dystrophy type 1.

Ginjupalli V, Cupelli M, Reisqs J, Sleiman Y, El-Sherif N, Gourdon G Front Physiol. 2023; 14:1257682.

PMID: 37811496 PMC: 10551179. DOI: 10.3389/fphys.2023.1257682.


Pathophysiology of Ca1.3 L-type calcium channels in the heart.

Zaveri S, Srivastava U, Qu Y, Chahine M, Boutjdir M Front Physiol. 2023; 14:1144069.

PMID: 37025382 PMC: 10070707. DOI: 10.3389/fphys.2023.1144069.


PI3K(p110α) as a determinant and gene therapy for atrial enlargement in atrial fibrillation.

Ezeani M, Prabhu S Mol Cell Biochem. 2022; 478(3):471-490.

PMID: 35900667 PMC: 9938077. DOI: 10.1007/s11010-022-04526-w.


mTOR Modulation of through hERG1b-Dependent Mechanisms in Lipotoxic Heart.

Aromolaran K, Do J, Bernardi J, Aromolaran A Int J Mol Sci. 2022; 23(15).

PMID: 35897638 PMC: 9329916. DOI: 10.3390/ijms23158061.


References
1.
Gaborit N, Steenman M, Lamirault G, le Meur N, Le Bouter S, Lande G . Human atrial ion channel and transporter subunit gene-expression remodeling associated with valvular heart disease and atrial fibrillation. Circulation. 2005; 112(4):471-81. DOI: 10.1161/CIRCULATIONAHA.104.506857. View

2.
Berul C, Aronovitz M, Wang P, Mendelsohn M . In vivo cardiac electrophysiology studies in the mouse. Circulation. 1996; 94(10):2641-8. DOI: 10.1161/01.cir.94.10.2641. View

3.
Qu Y, Baroudi G, Yue Y, Boutjdir M . Novel molecular mechanism involving alpha1D (Cav1.3) L-type calcium channel in autoimmune-associated sinus bradycardia. Circulation. 2005; 111(23):3034-41. DOI: 10.1161/CIRCULATIONAHA.104.517326. View

4.
Carl S, Felix K, Caswell A, Brandt N, Ball Jr W, Vaghy P . Immunolocalization of sarcolemmal dihydropyridine receptor and sarcoplasmic reticular triadin and ryanodine receptor in rabbit ventricle and atrium. J Cell Biol. 1995; 129(3):673-82. PMC: 2120452. DOI: 10.1083/jcb.129.3.673. View

5.
Terracciano C, Souza A, Philipson K, MacLeod K . Na+-Ca2+ exchange and sarcoplasmic reticular Ca2+ regulation in ventricular myocytes from transgenic mice overexpressing the Na+-Ca2+ exchanger. J Physiol. 1998; 512 ( Pt 3):651-67. PMC: 2231248. DOI: 10.1111/j.1469-7793.1998.651bd.x. View