Ryanodine receptors (RyRs) of pulmonary arterial smooth muscle cells (PASMCs) play important roles in major physiological processes such as hypoxic pulmonary vasoconstriction and perinatal pulmonary vasodilatation. Recent studies show that three subtypes of RyRs are coexpressed and RyR-gated Ca 2+ stores are distributed heterogeneously in systemic vascular myocytes. However, the molecular identity and subcellular distribution of RyRs have not been examined in PASMCs. In this study we detected mRNA and proteins of all three subtypes in rat intralobar PASMCs using RT-PCR and Western blot. Quantitative real-time RT-PCR showed that RyR2 mRNA was most abundant, ∼15-20 times more than the other two subtypes. Confocal fluorescence microscopy revea...
Ryanodine receptors (RyRs), intracellular calcium release channels essential for skeletal and cardia...
Ryanodine receptors (RyRs), intracellular calcium release channels essential for skeletal and cardia...
Intracellular Ca(2+) levels control both contraction and relaxation in vascular smooth muscle cells ...
In this study we examined the expression of RyR subtypes and the role of RyRs in neurotransmitter- a...
In arterial myocytes the Ca2+ mobilizing messenger NAADP evokes spatially restricted Ca2+ bursts fro...
In this study we examined the expression of RyR subtypes and the role of RyRs in neurotransmitter- a...
In arterial myocytes the Ca2+ mobilizing messenger NAADP evokes spatially restricted Ca2+ bursts fro...
In this study we examined the expression of RyR subtypes and the role of RyRs in neurotransmitter- a...
In arterial myocytes the Ca2+ mobilizing messenger NAADP evokes spatially restricted Ca2+ bursts fro...
In arterial myocytes the Ca2+ mobilizing messenger NAADP evokes spatially restricted Ca2+ bursts fro...
In arterial myocytes the Ca2+ mobilizing messenger NAADP evokes spatially restricted Ca2+ bursts fro...
In pulmonary arterial smooth muscle, Ca2+ release from the sarcoplasmic reticulum (SR) via ryanodine...
In pulmonary arterial smooth muscle, Ca2+ release from the sarcoplasmic reticulum (SR) via ryanodine...
The ryanodine receptor subtype 3 (RYR3) is expressed ubiquitously but its physiological function var...
The ryanodine receptor subtype 3 (RYR3) is expressed ubiquitously but its physiological function var...
Ryanodine receptors (RyRs), intracellular calcium release channels essential for skeletal and cardia...
Ryanodine receptors (RyRs), intracellular calcium release channels essential for skeletal and cardia...
Intracellular Ca(2+) levels control both contraction and relaxation in vascular smooth muscle cells ...
In this study we examined the expression of RyR subtypes and the role of RyRs in neurotransmitter- a...
In arterial myocytes the Ca2+ mobilizing messenger NAADP evokes spatially restricted Ca2+ bursts fro...
In this study we examined the expression of RyR subtypes and the role of RyRs in neurotransmitter- a...
In arterial myocytes the Ca2+ mobilizing messenger NAADP evokes spatially restricted Ca2+ bursts fro...
In this study we examined the expression of RyR subtypes and the role of RyRs in neurotransmitter- a...
In arterial myocytes the Ca2+ mobilizing messenger NAADP evokes spatially restricted Ca2+ bursts fro...
In arterial myocytes the Ca2+ mobilizing messenger NAADP evokes spatially restricted Ca2+ bursts fro...
In arterial myocytes the Ca2+ mobilizing messenger NAADP evokes spatially restricted Ca2+ bursts fro...
In pulmonary arterial smooth muscle, Ca2+ release from the sarcoplasmic reticulum (SR) via ryanodine...
In pulmonary arterial smooth muscle, Ca2+ release from the sarcoplasmic reticulum (SR) via ryanodine...
The ryanodine receptor subtype 3 (RYR3) is expressed ubiquitously but its physiological function var...
The ryanodine receptor subtype 3 (RYR3) is expressed ubiquitously but its physiological function var...
Ryanodine receptors (RyRs), intracellular calcium release channels essential for skeletal and cardia...
Ryanodine receptors (RyRs), intracellular calcium release channels essential for skeletal and cardia...
Intracellular Ca(2+) levels control both contraction and relaxation in vascular smooth muscle cells ...