Hyperpolarization‐activated cyclic nucleotide‐modulated ‘HCN’ channels confer regular and faster rhythmicity to beating mouse embryonic stem cells
- 1 February 2008
- journal article
- Published by Wiley in The Journal of Physiology
- Vol. 586 (3), 701-716
- https://doi.org/10.1113/jphysiol.2007.144329
Abstract
The hyperpolarization-activated cation current (I(f)), and the hyperpolarization-activated cyclic nucleotide-modulated 'HCN' subunits that underlie it, are important components of spontaneous activity in the embryonic mouse heart, but whether they contribute to this activity in mouse embryonic stem cell-derived cardiomyocytes has not been investigated. We address this issue in spontaneously beating cells derived from mouse embryonic stem cells (mESCs) over the course of development in culture. I(f) and action potentials were recorded from single beating cells at early, intermediate and late development stages using perforated whole-cell voltage- and current-clamp techniques. Our data show that the proportion of cells expressing I(f), and the density of I(f) in these cells, increased during development and correlated with action potential frequency and the rate of diastolic depolarization. The I(f) blocker ZD7288 (0.3 microm) reduced I(f) and the beating rate of embryoid bodies. Taken together, the activation kinetics of I(f) and results from Western blots are consistent with the presence of the HCN2 and HCN3 isoforms. At all stages of development, isoproterenol (isoprenaline) and acetylcholine shifted the voltage dependence of I(f) to more positive and negative voltages, respectively, and they also increased and decreased the beating rate of embryonic cell bodies, respectively. Together, the data suggest that current through HCN2 and HCN3 channels confers regular and faster rhythmicity to mESCs, which mirrors the developing embryonic mouse heart, and contributes to modulation of rhythmicity by autonomic stimulation.Keywords
This publication has 43 references indexed in Scilit:
- HCN4 provides a ‘depolarization reserve’ and is not required for heart rate acceleration in miceThe EMBO Journal, 2007
- HCN2 and HCN4 Isoforms Self-assemble and Co-assemble with Equal Preference to Form Functional Pacemaker ChannelsJournal of Biological Chemistry, 2007
- Developmental Changes in Cardiomyocytes Differentiated from Human Embryonic Stem Cells: A Molecular and Electrophysiological ApproachThe International Journal of Cell Cloning, 2007
- The Murine HCN3 Gene Encodes a Hyperpolarization-activated Cation Channel with Slow Kinetics and Unique Response to Cyclic NucleotidesPublished by Elsevier ,2005
- Initiation of Embryonic Cardiac Pacemaker Activity by Inositol 1,4,5-Trisphosphate–dependent Calcium SignalingMolecular Biology of the Cell, 2005
- Embryonic stem cells form an organized, functional cardiac conduction system in vitroAmerican Journal of Physiology-Heart and Circulatory Physiology, 2005
- Hyperpolarization-Activated Cation Currents: From Molecules to Physiological FunctionAnnual Review of Physiology, 2003
- Separable Gating Mechanisms in a Mammalian Pacemaker ChannelPublished by Elsevier ,2002
- Functional expression and regulation of the hyperpolarization activated non‐selective cation current in embryonic stem cell‐derived cardiomyocytesThe Journal of Physiology, 2000
- Derivation of completely cell culture-derived mice from early-passage embryonic stem cells.Proceedings of the National Academy of Sciences, 1993