Cardiac beta-adrenergic signaling: from subcellular microdomains to heart failure.
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Fibroblast growth factor receptor 1 signaling in adult cardiomyocytes increases contractility and results in a hypertrophic cardiomyopathyGenome-wide association study of cardiac structure and systolic function in African Americans: the Candidate Gene Association Resource (CARe) studyModeling the effects of β1-adrenergic receptor blockers and polymorphisms on cardiac myocyte Ca2+ handling.Saturated high-fat diet-induced obesity increases adenylate cyclase of myocardial β-adrenergic system and does not compromise cardiac function.PKA catalytic subunit compartmentation regulates contractile and hypertrophic responses to β-adrenergic signalingMechanisms of cyclic AMP compartmentation revealed by computational models.Phospholemman is a negative feed-forward regulator of Ca2+ in β-adrenergic signaling, accelerating β-adrenergic inotropy.Robustness portraits of diverse biological networks conserved despite order-of-magnitude parameter uncertainty.Cardiac models in drug discovery and development: a review.Computational models reduce complexity and accelerate insight into cardiac signaling networksModeling cardiac β-adrenergic signaling with normalized-Hill differential equations: comparison with a biochemical model.Over-expression of microRNA-1 causes arrhythmia by disturbing intracellular trafficking system.Models of cardiac excitation-contraction coupling in ventricular myocytesβ-Adrenergic cAMP signals are predominantly regulated by phosphodiesterase type 4 in cultured adult rat aortic smooth muscle cellsCardiac myocytes and local signaling in nano-domains.Cardiac Dysfunction Induced by Obesity Is Not Related to β-Adrenergic System Impairment at the Receptor-Signalling Pathway.Interaction between phosphodiesterases in the regulation of the cardiac β-adrenergic pathway.Roles of phosphodiesterases in the regulation of the cardiac cyclic nucleotide cross-talk signaling networkMechanisms of the cyclic nucleotide cross-talk signaling network in cardiac L-type calcium channel regulation.Beta-adrenergic stimulation maintains cardiac function in Serca2 knockout mice.Roles of PKA, PI3K, and cPLA2 in the NO-mediated negative inotropic effect of beta2-adrenoceptor agonists in guinea pig right papillary muscles.Investigating β-adrenergic-induced cardiac hypertrophy through computational approach: classical and non-classical pathways.Ca(2+)-dependent large conductance K(+) currents in thalamocortical relay neurons of different rat strains.Cardiac and vascular gene profiles in an animal model of takotsubo cardiomyopathy.Epinephrine regulation of the endothelial nitric-oxide synthase: roles of RAC1 and beta3-adrenergic receptors in endothelial NO signaling.
P2860
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P2860
Cardiac beta-adrenergic signaling: from subcellular microdomains to heart failure.
description
2006 nî lūn-bûn
@nan
2006年の論文
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2006年論文
@yue
2006年論文
@zh-hant
2006年論文
@zh-hk
2006年論文
@zh-mo
2006年論文
@zh-tw
2006年论文
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2006年论文
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2006年论文
@zh-cn
name
Cardiac beta-adrenergic signaling: from subcellular microdomains to heart failure.
@ast
Cardiac beta-adrenergic signaling: from subcellular microdomains to heart failure.
@en
type
label
Cardiac beta-adrenergic signaling: from subcellular microdomains to heart failure.
@ast
Cardiac beta-adrenergic signaling: from subcellular microdomains to heart failure.
@en
prefLabel
Cardiac beta-adrenergic signaling: from subcellular microdomains to heart failure.
@ast
Cardiac beta-adrenergic signaling: from subcellular microdomains to heart failure.
@en
P2860
P356
P1476
Cardiac beta-adrenergic signaling: from subcellular microdomains to heart failure.
@en
P2093
Andrew D McCulloch
Jeffrey J Saucerman
P2860
P304
P356
10.1196/ANNALS.1380.026
P407
P577
2006-10-01T00:00:00Z