An improved apparatus for the optical recording of contraction of single heart cells
BOYETT, M. R., MOORE, M., JEWELL, B. R., MONTGOMERY, R. A. P., KIRBY, M. S. & ORCHARD, C. H. (1988). An improved apparatus for the optical recording of contraction of single heart cells. Pflügers Archiv 413, 197-205.
The calcium-independent transient outward potassium current in isolated ferret right ventricular myocytes
CAMPBELL, D. L., RASMUSSON, R. L., QU, Y. & STRAUSS, H. C. (1993). The calcium-independent transient outward potassium current in isolated ferret right ventricular myocytes. Journal of General Physiology 101, 571-601.
A novel experimental chamber for single-cell voltage-clamp and patch-clamp applications with low electrical noise and excellent temperature and flow control
CANNELL, M. B. & LEDERER, W. J. (1986). A novel experimental chamber for single-cell voltage-clamp and patch-clamp applications with low electrical noise and excellent temperature and flow control. Pflügers Archiv 406, 536-539.
Slow recovery from inactivation of inward currents in mammalian myocardial fibres
GETTES, L. S. & REUTER, H. (1974). Slow recovery from inactivation of inward currents in mammalian myocardial fibres. Journal of Physiology 240, 708-724.
The dependence of plateau currents in cardiac Purkinje fibres on the interval between action potentials
HAUSWIRTH, O., NOBLE, D. & TSIEN, R. W. (1972). The dependence of plateau currents in cardiac Purkinje fibres on the interval between action potentials. Journal of Physiology 222, 27-49.
Electrophysiological mechanisms of ventricular arrhythmias resulting from myocardial ischemia and infarction
JANSE, M. J. & WIT, A. L. (1989). Electrophysiological mechanisms of ventricular arrhythmias resulting from myocardial ischemia and infarction. Physiological Reviews 69, 1049-1169.
A simple electronic circuit for monitoring changes in the duration of the action potential
KENTISH, J. C. & BOYETT, M. R. (1983). A simple electronic circuit for monitoring changes in the duration of the action potential. Pflügers Archiv 398, 233-235.
The effects of ryanodine, EGTA and low-sodium on action potentials in rat and guinea-pig ventricular myocytes: Evidence for two inward currents during the plateau
MITCHELL, M. R., POWELL, T., TERRAR, D. A. & TWIST, V. W. (1984). The effects of ryanodine, EGTA and low-sodium on action potentials in rat and guinea-pig ventricular myocytes: evidence for two inward currents during the plateau. British Journal of Pharmacology 81, 543-550.
The role of sodium-calcium exchange during the cardiac action potential
NOBLE, D., NOBLE, S. J., BETT, G. C. L., EARM, Y. E., HO, W. K. & SO, I. K. (1991). The role of sodium-calcium exchange during the cardiac action potential. Annals of the New York Academy of Sciences 639, 334-353.
Human ventricular action potential duration during short and long cycles: Rapid modulation by ischemia
TAGGART, P., SUTTON, P. M. I., BOYETT, M. R., LAB, M. J. & SWANTON, R. H. (1996) Human ventricular action potential duration during short and long cycles: rapid modulation by ischemia. Circulation 94, 2526-2534.
Calcium current restitution in mammalian ventricular myocytes is modulated by intracellular calcium
TSENG, G.-N. (1988). Calcium current restitution in mammalian ventricular myocytes is modulated by intracellular calcium. Circulation Research 63, 468-482.
Intracellular calcium transients underlying the short-term force-interval relationship in ferret ventricular myocardium
WIER, W. G. & YUE, D. T. (1986). Intracellular calcium transients underlying the short-term force-interval relationship in ferret ventricular myocardium. Journal of Physiology 376, 507-530.
Ca-dependent facilitation of cardiac Ca current is due to Ca-calmodulin-dependent protein kinase
YUAN, W. & BERS, D. M. (1994). Ca-dependent facilitation of cardiac Ca current is due to Ca-calmodulin-dependent protein kinase. American Journal of Physiology 267, H982-993.