Title of article :
Calcium and Osmotic Regulation of the Na+/H+Exchanger in Neonatal Ventricular Myocytes
Author/Authors :
Andrea N Moor، نويسنده , , Rakhilya Murtazina، نويسنده , , Larry Fliegel، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2000
Abstract :
A. N. Moor, R. Murtazina and L. Fliegel. Calcium and Osmotic Regulation of the Na+/H+exchanger in Neonatal Ventricular Myocytes. Journal of Molecular and Cellular Cardiology (2000) 32, 925–936. Intracellular pH regulation in primary cultures of neonatal cardiac myocytes has been characterized. Myocytes were exposed to hyperosmolar solutions to examine the effects on pH regulation by the Na+/H+exchanger. Exposure to 100 m NaCl, sorbitol, N-methyl-D-glucamine, or choline chloride all caused significant increases in steady state pHiin myocytes. Omission of extracellular calcium or administration of calmodulin antagonists reduced the osmotic activation of the exchanger. The myosin light-chain inhibitor ML-7 completely blocked osmotic activation of the exchanger suggesting that myosin light-chain kinase is involved in osmotic activation of the exchanger in the myocardium. The calmodulin-dependent protein kinase II inhibitor KN-93 inhibited the rate of recovery from an acute acid load as did trifluoperazine (TFP) and the calmodulin blocker W7, [N-(6-aminohexyl)-5-chloro-1-naphthalenesulfonamide]. Addition of the calcium ionophore ionomycin caused a large increase in resting pHiin isolated myocytes. However, this effect was largely resistant to HMA (5-(N,N-hexamethylene)-amiloride) indicating that an alternative mechanism of pHiregulation is responsible. The results demonstrate that the Na+/H+exchanger of the neonatal myocardium is responsive to calcium and osmotically responsive pathways and that myosin light-chain kinase is a key protein involved in mediating the osmotic response.
Keywords :
intracellular pH , calmodulin , Osmotic stress , cardiomyocytes , pH regulation.
Journal title :
Journal of Molecular and Cellular Cardiology
Journal title :
Journal of Molecular and Cellular Cardiology