Laskey R E, Adams D J, Johns A, Rubanyi G M, van Breemen C
Department of Pharmacology, University of Miami School of Medicine, Florida 33101.
J Biol Chem. 1990 Feb 15;265(5):2613-9.
The effects of membrane potential on resting and bradykinin-stimulated changes in [Ca2+]i were measured in fura-2 loaded cultured endothelial cells from bovine atria by spectrofluorimetry. The basal and bradykinin-stimulated release of endothelium-derived relaxing factor, monitored by bioassay methods, were dependent on extracellular Ca2+. Similarly, the plateau phase of the biphasic [Ca2+]i response to bradykinin stimulation exhibited a dependence on extracellular Ca2+, whereas the initial transient [Ca2+]i peak was refractory to the removal of extracellular Ca2+. The effect of membrane depolarization on the plateau phase of the bradykinin-induced change in [Ca2+]i was determined by varying [K+]o. The resting membrane potential measured under current clamp conditions was positively correlated with the extracellular [K+] (52 mV change/10-fold change in [K+]o). The observed decrease in resting and bradykinin-stimulated changes in [Ca2+]i upon depolarization is consistent with an ion transport mechanism where the influx is linearly related to the electrochemical gradient for Ca2+ entry (Em - ECa). The inhibition of bradykinin-stimulated Ca2+ entry by isotonic K+ was not due to the absence of extracellular Na+ since Li+ substitution did not inhibit the agonist-induced Ca2+ entry. In K(+)-free solutions and in the presence of ouabain, bradykinin evoked synchronized oscillations in [Ca2+]i in confluent endothelial cell monolayers. These [Ca2+]i oscillations between the plateau and resting [Ca2+]i levels were dependent on extracellular Ca2+ and K+ concentrations. Although the mechanism(s) underlying [Ca2+]i oscillations in vascular endothelial cells is unclear, these results suggest a role of the membrane conductance.
采用荧光分光光度法,在装载了fura - 2的牛心房培养内皮细胞中,测定了膜电位对静息和缓激肽刺激引起的细胞内钙离子浓度([Ca2+]i)变化的影响。通过生物测定法监测发现,内皮源性舒张因子的基础释放和缓激肽刺激释放均依赖于细胞外钙离子。同样,缓激肽刺激引起的双相[Ca2+]i反应的平台期表现出对细胞外钙离子的依赖性,而最初的瞬时[Ca2+]i峰值对去除细胞外钙离子不敏感。通过改变细胞外钾离子浓度([K+]o),确定了膜去极化对缓激肽诱导的[Ca2+]i变化平台期的影响。在电流钳条件下测得的静息膜电位与细胞外[K+]呈正相关([K+]o每变化10倍,膜电位变化52 mV)。去极化时观察到的静息和缓激肽刺激引起的[Ca2+]i变化的降低,与一种离子转运机制一致,即钙离子内流与钙离子进入的电化学梯度(Em - ECa)呈线性相关。等渗钾离子对缓激肽刺激的钙离子内流的抑制作用并非由于细胞外钠离子的缺失,因为锂离子替代并未抑制激动剂诱导的钙离子内流。在无钾离子溶液中且存在哇巴因的情况下,缓激肽在汇合的内皮细胞单层中诱发了[Ca2+]i的同步振荡。这些[Ca2+]i在平台期和静息[Ca2+]i水平之间的振荡依赖于细胞外钙离子和钾离子浓度。尽管血管内皮细胞中[Ca2+]i振荡的潜在机制尚不清楚,但这些结果提示了膜电导的作用。