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Physiol. Genomics 12: 147-157, 2003. First published November 26, 2002; doi:10.1152/physiolgenomics.00095.2002
1094-8341/03 $5.00
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Received 30 July 2002; accepted in final form 22 November 2002.
Physiological Genomics 12:147-157 (2003)
1094-8341/03 $5.00 © 2003 American Physiological Society

Abnormal Na channel gating in murine cardiac myocytes deficient in myotonic dystrophy protein kinase

Hwa C. Lee1,2,3,4,5, Manoj K. Patel2, Dilawaar J. Mistry2, Qingcai Wang5, Sita Reddy5, J. Randall Moorman2,3,4 and J. Paul Mounsey2,4

1 Department of Biomedical Engineering, University of Virginia Health Systems, Charlottesville, Virginia 22908
2 Department of Internal Medicine (Cardiovascular Division), University of Virginia Health Systems, Charlottesville, Virginia 22908
3 Department of Molecular Physiology and Biological Physics, University of Virginia Health Systems, Charlottesville, Virginia 22908
4 Department of Cardiovascular Research Center, University of Virginia Health Systems, Charlottesville, Virginia 22908
5 Institute for Genetic Medicine, University of Southern California School of Medicine, Los Angeles, California 90033

DMPK is a serine/threonine kinase implicated in the human disease myotonic muscular dystrophy (DM). Skeletal muscle Na channels exhibit late reopenings in Dmpk-deficient mice and peak current density is reduced, implicating DMPK in regulation of membrane excitability. Since complete heart block and sudden cardiac death occur in the disease, we tested the hypothesis that cardiac Na channels also exhibit abnormal gating in Dmpk-deficient mice. We made whole cell and cell-attached patch clamp recordings of ventricular cardiomyocytes enzymatically isolated from wild-type, Dmpk+/-, and Dmpk-/- mice. Recordings from membrane patches containing one or a few Na channels revealed multiple Na channel reopenings occurring after the macroscopic Na current had subsided in both Dmpk+/- and Dmpk-/- muscle, but only rare reopenings in wild-type muscle (>3-fold difference, P < 0.05). This resulted in a plateau of non-inactivating Na current in Dmpk-deficient muscle. The magnitude of this plateau current was independent on the magnitude of the test potential from -40 to 0 mV and was also independent of gene dose. Macroscopic Na current density was similar in wild-type and Dmpk-deficient muscle, as was steady-state Na channel gating. Decay of macroscopic currents was slowed in Dmpk-/- muscle, but not in Dmpk+/- or wild-type muscle. Entry into, and recovery from, inactivation were similar at multiple test potentials in wild-type and Dmpk-deficient muscle. Resting membrane potential was depolarized, and action potential duration was significantly prolonged in Dmpk-deficient muscle. Thus in cardiac muscle, Dmpk deficiency results in multiple late reopenings of Na channels similar to those seen in Dmpk-deficient skeletal muscle. This is reflected in a plateau of non-inactivating macroscopic Na current and prolongation of cardiac action potentials.

sodium ion channel; action potential; protein kinase; cardiac myocytes




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