Iioka H, Moriyama I, Itoh K, Hino K, Ichijo M
Nihon Sanka Fujinka Gakkai Zasshi. 1985 Oct;37(10):2005-9.
The effect of potassium ion and membrane potential on the uptake of L-glutamate in microvilli (brush border) vesicles prepared from human term placenta was studied using a rapid filtration technique. The uptake of L-glutamate into microvilli vesicles is Na+ electrochemical gradient dependent and pre-equilibration of the vesicles with K+ stimulates L-glutamic acid uptake. Imposition of a K+ gradient (K+ in greater than K+ out) enhances Na+-dependent L-glutamate uptake. Changes in membrane potential due to the imposition of anion replacement markedly affect Na+ dependent L-glutamate uptake only in the presence of K+. However, this effect is not significant when changes in membrane potential incur following the imposition of valinomycin induced by K+ diffusion potential. The data indicate that Na+-dependent L-glutamate transport can be additionally energized by a K+ gradient. Furthermore K+ renders Na+-dependent L-glutamate transport sensitive to changes in the transmembrane potential difference.
采用快速过滤技术,研究了钾离子和膜电位对从足月人胎盘制备的微绒毛(刷状缘)小泡摄取L-谷氨酸的影响。L-谷氨酸进入微绒毛小泡的摄取依赖于Na+电化学梯度,并且用K+对小泡进行预平衡可刺激L-谷氨酸的摄取。施加K+梯度(K+内大于K+外)可增强Na+依赖的L-谷氨酸摄取。由于阴离子替代而导致的膜电位变化仅在存在K+的情况下才会显著影响Na+依赖的L-谷氨酸摄取。然而,当膜电位变化是由K+扩散电位诱导的缬氨霉素施加后产生时,这种影响并不显著。数据表明,K+梯度可额外为Na+依赖的L-谷氨酸转运提供能量。此外,K+使Na+依赖的L-谷氨酸转运对跨膜电位差的变化敏感。