Leroy Jérôme, Pereverzev Alexey, Vajna Rolf, Qin Ning, Pfitzer Gabriele, Hescheler Jürgen, Malécot Claire O, Schneider Toni, Klöckner Udo
Institute of Neurophysiology, Institute of Vegetative Physiology, University of Cologne, Robert-Koch-Strasse 39, D-50931 Köln, Germany.
Eur J Neurosci. 2003 Aug;18(4):841-55. doi: 10.1046/j.1460-9568.2003.02819.x.
Ca2+-dependent regulation of L-type and P/Q-type Ca2+ channel activity is an important mechanism to control Ca2+ entry into excitable cells. Here we addressed the question whether the activity of E-type Ca2+ channels can also be controlled by Ca2+. Switching from Ba2+ to Ca2+ as charge carrier increased within 50 s, the density of currents observed in HEK-293 cells expressing a human Cav2.3d subunit and slowed down the inactivation kinetics. Furthermore, with Ca2+ as permeant ion, recovery from inactivation was accelerated, compared to the recovery process recorded under conditions where the accumulation of [Ca2+]i was prevented. In a Ba2+ containing bath solution the Ca2+-dependent changes of E-type channel activity could be induced by dialysing the cells with 1 micro m free [Ca2+]i suggesting that an elevation of [Ca2+]i is responsible for these effects. Deleting 19 amino acids in the intracellular II-III linker (exon 19) as part of an arginine-rich region, severely impairs the Ca2+ responsiveness of the expressed channels. Interestingly, deletion of an adjacent homologue arginine-rich region activates channel activity but now independently from [Ca2+]i. As a positive feedback-regulation of channel activity this novel activation mechanism might determine specific biological functions of E-type Ca2+ channels.
L型和P/Q型Ca2+通道活性的Ca2+依赖性调节是控制Ca2+进入可兴奋细胞的重要机制。在此,我们探讨了E型Ca2+通道活性是否也受Ca2+调控这一问题。将载流子从Ba2+切换为Ca2+后,在表达人Cav2.3d亚基的HEK-293细胞中,50秒内观察到的电流密度增加,且失活动力学减慢。此外,与在防止[Ca2+]i积累的条件下记录的恢复过程相比,以Ca2+作为通透离子时,失活后的恢复加速。在含Ba2+的浴液中,用1微摩尔游离[Ca2+]i透析细胞可诱导E型通道活性的Ca2+依赖性变化,这表明[Ca2+]i升高是造成这些效应的原因。删除细胞内II-III连接子(外显子19)中作为富含精氨酸区域一部分的19个氨基酸,会严重损害所表达通道的Ca2=反应性。有趣的是,删除相邻的同源富含精氨酸区域会激活通道活性,但现在与[Ca2+]i无关。作为通道活性的一种正反馈调节,这种新的激活机制可能决定E型Ca2+通道的特定生物学功能。