Mahoney M G, Slakey L L, Benham C D, Gross D J
Program in Molecular and Cellular Biology and Department of Biochemistry and Molecular Biology, University of Massachusetts, Amherst, Massachusetts 01003, USA.
Biophys J. 1998 Oct;75(4):2050-8. doi: 10.1016/S0006-3495(98)77647-7.
In response to extracellular application of 50 microM ATP, all individual porcine aortic smooth muscle cells respond with rapid rises from basal [Ca2+]i to peak [Ca2+]i within 5 s. The time from stimulus to the peak of the [Ca2+]i response increases with decreasing concentration of ATP. At ATP concentrations of 0.5 microM and below, the time to the [Ca2+]i peak varies more significantly from cell to cell than at higher concentrations, and each cell shows complicated initiation and decay kinetics. For any individual cell, the lag phase before a response decreases with increasing concentration of ATP. An increase in lag time with decreasing ATP concentration is also observed in the absence of extracellular Ca2+, but the lag phase is more pronounced, especially at concentrations of ATP below 0.5 microM. Whole-cell patch-clamp electrophysiology shows that in porcine aortic smooth muscle cells, ATP stimulates an inward current carried mainly by Cl- ion efflux with a time course similar to the [Ca2+]i changes and no detectable current from an ATP-gated cation channel. A simple signal cascade initiation kinetics model, starting with nucleotide receptor activation leading to IP3-mediated Ca2+ release from IP3-sensitive internal stores, fits the data and suggests that the kinetics of the Ca2+ response are dominated by upstream signal cascade components.
在细胞外施加50微摩尔ATP时,所有单个猪主动脉平滑肌细胞都会在5秒内迅速从基础细胞内钙离子浓度([Ca2+]i)上升至峰值[Ca2+]i。从刺激到[Ca2+]i反应峰值的时间随着ATP浓度的降低而增加。在ATP浓度为0.5微摩尔及以下时,与较高浓度相比,细胞间达到[Ca2+]i峰值的时间差异更为显著,且每个细胞都表现出复杂的起始和衰减动力学。对于任何单个细胞,反应前的延迟期会随着ATP浓度的增加而缩短。在无细胞外钙离子的情况下,也观察到随着ATP浓度降低延迟时间增加,但延迟期更为明显,尤其是在ATP浓度低于0.5微摩尔时。全细胞膜片钳电生理学研究表明,在猪主动脉平滑肌细胞中,ATP刺激一种主要由氯离子外流介导的内向电流,其时间进程与[Ca2+]i变化相似,且未检测到来自ATP门控阳离子通道的电流。一个简单的信号级联起始动力学模型,从核苷酸受体激活开始,导致由三磷酸肌醇(IP3)介导的从IP3敏感的内部储存库中释放钙离子,符合这些数据,并表明钙离子反应的动力学主要由上游信号级联成分主导。