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The Journal of Pediatrics|January 1, 1980
Accessory atrioventricular pathway in an infant: prediction of location with body surface maps and ablation with cryosurgeryD W Benson, J J Gallagher, M S Spach, et al.Circulation Research|March 1, 1986
Relating extracellular potentials and their derivatives to anisotropic propagation at a microscopic level in human cardiac muscle. Evidence for electrical uncoupling of side-to-side fiber connections with increasing ageM S Spach, P C DolberThe American Journal of Physiology|November 1, 1989
Structure of canine Bachmann's bundle related to propagation of excitationP C Dolber, M S SpachPacing and Clinical Electrophysiology : PACE|February 1, 1997
Microfibrosis produces electrical load variations due to loss of side-to-side cell connections: a major mechanism of structural heart disease arrhythmiasM S Spach, J P BoineauCritical Reviews in Biomedical Engineering|January 1, 1992
A multidimensional model of cellular effects on the spread of electrotonic currents and on propagating action potentialsM S Spach, J F HeidlageCirculation|June 1, 1982
Evolution of QRS and ST-T-wave body surface potential distributions during the first year of lifeD W Benson, M S SpachJournal of Cardiovascular Electrophysiology|February 1, 1994
Initiating reentry: the role of nonuniform anisotropy in small circuitsM S Spach, M E JosephsonStain Technology|January 1, 1987
Picrosirius red staining of cardiac muscle following phosphomolybdic acid treatmentP C Dolber, M S SpachThe American Journal of Physiology|January 1, 1983
The nature of electrical propagation in cardiac muscleM S Spach, J M KootseyCirculation Research|March 1, 1995
The stochastic nature of cardiac propagation at a microscopic level. Electrical description of myocardial architecture and its application to conductionM S Spach, J F HeidlagePageof 6