首页   按字顺浏览 期刊浏览 卷期浏览 Sodium-Lithium Exchange and Sodium-Proton Exchange Are Mediated by the Same Transport S...
Sodium-Lithium Exchange and Sodium-Proton Exchange Are Mediated by the Same Transport System in Sarcolemmal Vesicles From Bovine Superior Mesenteric Artery

 

作者: Andrew Kahn,   Julius Allen,   Edward Cragoe,   Harnath Shelat,  

 

期刊: Circulation Research  (OVID Available online 1989)
卷期: Volume 65, issue 3  

页码: 818-828

 

ISSN:0009-7330

 

年代: 1989

 

出版商: OVID

 

数据来源: OVID

 

摘要:

Several laboratories have reported that Na+-Li+ countertransport activities are increased in red blood cells from patients with essential hypertension. It has been proposed that the activity of this red blood cell transport system might reflect the activity of a similar system in vascular smooth muscle. We previously demonstrated Na+-Ii+ exchange in sarcolemmal vesicles from canine artery and proposed that this transport function might be mediated by the Na+-H+ exchanger. In the present studies, however, we were unable to demonstrate Na+-Ii+ countertransport in canine red blood cells. Since bovine red blood cells have a vigorous Na+-Li+ exchanger and we previously demonstrated Na+-H+ exchange in sarcolemmal vesicles from bovine artery, we wished to determine whether bovine sarcolemmal vesicles mediate Na+-Li+ exchange and whether this transport function is mediated via the Na+-H+ exchanger. We found that an outwardly directed proton or Li+ gradient stimulated "Na+ uptake in sarcolemmal vesicles from bovine superior mesenteric artery. Li+ gradient-stimulated Na+ uptake was not due to electrical coupling between the two ions, was not affected by a change in membrane potential, and could not be explained by the parallel operation of IJ+-H+ and Na+-H+ exchange. External U+ inhibited proton gradient-stimulated Na+ uptake, and external protons inhibited LJ+ gradient-stimulated Na+ uptake. Na+ efflux from vesicles was stimulated by inwardly directed gradients for Li+ or protons, and these effects were not additive. Proton efflux from vesicles was stimulated by inwardly directed gradients for Na+ or Li+, and these effects were not additive. Finally, Na+-H+ exchange and Na+-U+ exchange in sarcolemmal vesicles were inhibited by 5-(yV-ethyl-/Y-isopropyl)aniiloride in an identical dose-dependent manner. In conclusion, Na+-Ii+ countertransport could not be demonstrated in canine red blood cells, but as is the case with bovine red blood cells, sarcolemmal vesicles from bovine artery mediate Na+-Li+ countertransport. This transport function and sarcolemmal Na+-H+ exchange are mediated via a single 5-(Ar-ethyl-Ar-isopropyl)amiloride-sensitive cation exchanger with affinity for Na+, Ll+, and protons. The cow, as opposed to the dog, may be a good animal model to test whether the activity of red blood cell Na+-LJ+ countertransport is predictive of the activity of Na+-Ii+ (and Na+-H+) exchange in vascular smooth muscle.

 

点击下载:  PDF (3703KB)



返 回