zaprinast and Hyperinsulinism

zaprinast has been researched along with Hyperinsulinism* in 1 studies

Other Studies

1 other study(ies) available for zaprinast and Hyperinsulinism

ArticleYear
cGMP phosphodiesterase inhibition improves the vascular and metabolic actions of insulin in skeletal muscle.
    American journal of physiology. Endocrinology and metabolism, 2011, Volume: 301, Issue:2

    There is considerable support for the concept that insulin-mediated increases in microvascular blood flow to muscle impact significantly on muscle glucose uptake. Since the microvascular blood flow increases with insulin have been shown to be nitric oxide-dependent inhibition of cGMP-degrading phosphodiesterases (cGMP PDEs) is predicted to enhance insulin-mediated increases in microvascular perfusion and muscle glucose uptake. Therefore, we studied the effects of the pan-cGMP PDE inhibitor zaprinast on the metabolic and vascular actions of insulin in muscle. Hyperinsulinemic euglycemic clamps (3 mU·min(-1)·kg(-1)) were performed in anesthetized rats and changes in microvascular blood flow assessed from rates of 1-methylxanthine metabolism across the muscle bed by capillary xanthine oxidase in response to insulin and zaprinast. We also characterized cGMP PDE isoform expression in muscle by real-time PCR and immunostaining of frozen muscle sections. Zaprinast enhanced insulin-mediated microvascular perfusion by 29% and muscle glucose uptake by 89%, while whole body glucose infusion rate during insulin infusion was increased by 33% at 2 h. PDE2, -9, and -10 were the major isoforms expressed at the mRNA level in muscle, while PDE1B, -9A, -10A, and -11A proteins were expressed in blood vessels. Acute administration of the cGMP PDE inhibitor zaprinast enhances muscle microvascular blood flow and glucose uptake response to insulin. The expression of a number of cGMP PDE isoforms in skeletal muscle suggests that targeting specific cGMP PDE isoforms may provide a promising avenue for development of a novel class of therapeutics for enhancing muscle insulin sensitivity.

    Topics: Animals; Aorta; Blood Glucose; Cells, Cultured; Cyclic Nucleotide Phosphodiesterases, Type 2; Energy Metabolism; Glucose Clamp Technique; Hyperinsulinism; Insulin; Male; Microcirculation; Muscle, Skeletal; Muscle, Smooth, Vascular; Phosphodiesterase Inhibitors; Purinones; Rats; Rats, Wistar

2011