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Citations to this article

Maturation of Responsiveness to Cardioactive Drugs: DIFFERENTIAL EFFECTS OF ACETYLCHOLINE, NOREPINEPHRINE, THEOPHYLLINE, TYRAMINE, GLUCAGON, AND DIBUTYRYL CYCLIC AMP ON ATRIAL RATE IN HEARTS OF FETAL MICE
Kern Wildenthal, Jacquline R. Wakeland
Kern Wildenthal, Jacquline R. Wakeland
Published September 1, 1973
Citation Information: J Clin Invest. 1973;52(9):2250-2258. https://doi.org/10.1172/JCI107411.
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Maturation of Responsiveness to Cardioactive Drugs: DIFFERENTIAL EFFECTS OF ACETYLCHOLINE, NOREPINEPHRINE, THEOPHYLLINE, TYRAMINE, GLUCAGON, AND DIBUTYRYL CYCLIC AMP ON ATRIAL RATE IN HEARTS OF FETAL MICE

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Abstract

Freshly isolated hearts of fetal mice of gestational ages ranging between 12 and 22 days (term) were exposed to several concentrations of a variety of chronotropic agents. Acetylcholine (10−4-10−2 M) caused marked bradycardia in all hearts, even after only 12-14 days' gestation (i.e., even before cardiac innervation had occurred), and the intensity of the response increased steadily with advancing age throughout gestation. Responsiveness to norepinephrine was present but minimal at 12-14 days, so that mean atrial rate rose by < 10% with a maximal concentration of the drug (10−5 M); responsiveness became more marked by 15-16 days (just after the time atrial innervation is thought to begin) and still greater effects appeared just before term. Glucagon had no effect in hearts of < 17 days' gestational age, but caused tachycardia thereafter, indicating that cardiac responsiveness to glucagon differentiates later than does responsiveness to norepinephrine. Responses to theophyl-line in 12-14 day hearts exceeded those to norepinephrine, indicating that the drug can affect heart rate independently of its ability to cause release of endogenous catecholamines. In contrast, tyramine caused no response until 21-22 days, well after the time the beta-receptor has differentiated and after innervation is fairly well developed, suggesting that the drug's primary sympathomimetic effect is indirect rather than direct. Dibutyryl cyclic AMP did not cause tachycardia at any fetal age.

Authors

Kern Wildenthal, Jacquline R. Wakeland

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Total citations by year

Year: 2012 2011 2006 2004 2002 2001 1997 1992 1989 1987 1986 1985 1984 1983 1981 1980 1979 1978 1977 1976 1975 1973 Total
Citations: 2 1 1 1 1 2 1 1 2 1 2 1 1 1 2 2 2 7 1 2 1 1 36
Citation information
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Citations to this article (36)

Title and authors Publication Year
Physiological and genomic consequences of adrenergic deficiency during embryonic/fetal development in mice: impact on retinoic acid metabolism
K Osuala, CN Baker, HL Nguyen, C Martinez, D Weinshenker, SN Ebert
Physiological genomics 2012
Physiological and genomic consequences of adrenergic deficiency during embryonic/fetal development in mice: impact on retinoic acid metabolism
K Osuala, CN Baker, HL Nguyen, C Martinez, D Weinshenker, SN Ebert
Physiological genomics 2012
Age-related regulation of excitation–contraction coupling in rat heart
HB Kandilci, E Tuncay, EN Zeydanli, NN Sozmen, B Turan
Journal of Physiology and Biochemistry 2011
The relevance of information generated byin vitroexperimental models to clinical doxorubicin cardiotoxicity
SE Lipshultz, H Cohen, SD Colan, EH Herman
Leukemia & Lymphoma 2006
Intrinsic Cardiac Catecholamines Help Maintain Beating Activity in Neonatal Rat Cardiomyocyte Cultures
AR Natarajan, Q Rong, AN Katchman, SN Ebert
Pediatric Research 2004
Methods in Cell Biology
JW Smith
Methods in cell biology 2002
Null mutation of connexin43 causes slow propagation of ventricular activation in the late stages of mouse embryonic development
D Vaidya, HS Tamaddon, CW Lo, SM Taffet, M Delmar, GE Morley, J Jalife
Circulation research 2001
Ontogeny of humoral heart rate regulation in the embryonic mouse
GA Porter, SA Rivkees
American Journal of Physiology - Regulatory, Integrative and Comparative Physiology 2001
Drug Toxicity in Embryonic Development II
RJ Kavlock, GP Daston
1997
Physiological activities of late-gestation rat fetuses in vitro
T Suzue
Neuroscience Research 1992
Physiology and Pathophysiology of the Heart
N Sperelakis
1989
Topographical and Morphological Studies of the Cardiac Ganglia in the Prenatal Rat
KM LIU, S INOKUCHI
The Showa University Journal of Medical Sciences 1989
Acetylcholinesterase in prenatal rat heart: A marker for the early development of the cardiac conductive tissue?
WH Lamers, AT Korstschot, JA Los, AF Moorman
The Anatomical Record 1987
Developmental Neurobiology of the Autonomic Nervous System
PM Gootman
1986
Pediatric and Fundamental Electrocardiography
J Liebman, R Plonsey, Y Rudy
1986
Fetal Heart Rate Monitoring
W Künzel
1985
The Developing Heart
MJ Legato
1984
Glucagon II
PJ Lefebvre
1983
Responsiveness to drugs and hormones in the murine model of cardiac ontogenesis
WR Roeske, K Wildenthal
Pharmacology & Therapeutics 1981
Emergence of beta-adrenergic sensitivity in the developing chicken heart
S Lipshultz, J Shanfeld, S Chacko
Proceedings of the National Academy of Sciences 1981
Rate, force and cyclic adenosine 3',5'-monophosphate responses to (--)-adrenaline in neonatal rat heart tissue
TL Au, GA Collins, MJ Walker
British Journal of Pharmacology 1980
RATE, FORCE AND CYCLIC ADENOSINE 3′, 5′-MONOPHOSPHATE RESPONSES TO (-)-ADRENALINE IN NEONATAL RAT HEART TISSUE
T Au, G Collins, M Walker
British Journal of Pharmacology 1980
Ontogeny of mammalian myocardial β-adrenergic receptors
FC Chen, HI Yamamura, WR Roeske
European Journal of Pharmacology 1979
Catecholamines: Basic and Clinical Frontiers
EH LaBrosse
Catecholamines: Basic and Clinical Frontiers 1979
The postnatal development of adrenoceptor responses to agonists and electrical stimulation in rat isolated atria
NB Standen
British Journal of Pharmacology 1978
Time course for development of vagal inhibition of the heart in neonatal rats
E Mills
Life Sciences 1978
Negative chronotropic action of cyclic AMP on the fetal rat heart in organ culture
CL Eyer, WE Johnson
European Journal of Pharmacology 1978
Maturation of mammalian myocardial muscarinic cholinergic receptors
WR Roeske, HI Yamamura
Life Sciences 1978
Cyclic nucleotide phosphodiesterase and protein activator in fetal rabbit tissues
AL Singer, A Dunn, MM Appleman
Archives of Biochemistry and Biophysics 1978
THE POSTNATAL DEVELOPMENT OF ADRENOCEPTOR RESPONSES TO AGONISTS AND ELECTRICAL STIMULATION IN RAT ISOLATED ATRIA
N Standen
British Journal of Pharmacology 1978
Effects of acetylcholine on the ventricular specialized conducting system of neonatal and adult dogs
P Danilo, MR Rosen, AJ Hordof
Circulation research 1978
Chronotropic and cyclic adenosine monophosphate response of fetal rat heart in organ culture to isoproterenol, quinidine, and a dysrhythmogenic agent
CL Eyer, WE Johnson
Journal of Pharmaceutical Sciences 1977
Responsiveness to glucagon in fetal hearts. Species variability and apparent disparities between changes in beating, adenylate cyclase activation, and cyclic AMP concentration
K Wildenthal, DO Allen, J Karlsson, JR Wakeland, CM Clark
Journal of Clinical Investigation 1976
Advances in General and Cellular Pharmacology
T Narahashi, CP Bianchi
1976
Fetal mouse hearts: a model for studying ischemia
JS Ingwall, M DeLuca, HD Sybers, K Wildenthal
Proceedings of the National Academy of Sciences 1975
Development of the cardiac beta adrenergic receptor in fetal rat heart
S Martin, BA Levey, GS Levey
Biochemical and Biophysical Research Communications 1973

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