Parekh A B, Penner R
Department of Membrane Biophysics, Max-Planck-Institute for Biophysical Chemistry, Göttingen, Germany.
Physiol Rev. 1997 Oct;77(4):901-30. doi: 10.1152/physrev.1997.77.4.901.
Calcium influx in nonexcitable cells regulates such diverse processes as exocytosis, contraction, enzyme control, gene regulation, cell proliferation, and apoptosis. The dominant Ca2+ entry pathway in these cells is the store-operated one, in which Ca2+ entry is governed by the Ca2+ content of the agonist-sensitive intracellular Ca2+ stores. Only recently has a Ca2+ current been described that is activated by store depletion. The properties of this new current, called Ca2+ release-activated Ca2+ current (ICRAC), have been investigated in detail using the patch-clamp technique. Despite intense research, the nature of the signal that couples Ca2+ store content to the Ca2+ channels in the plasma membrane has remained elusive. Although ICRAC appears to be the most effective and widespread influx pathway, other store-operated currents have also been observed. Although the Ca2+ release-activated Ca2+ channel has not yet been cloned, evidence continues to accumulate that the Drosophila trp gene might encode a store-operated Ca2+ channel. In this review, we describe the historical development of the field of Ca2+ signaling and the discovery of store-operated Ca2+ currents. We focus on the electrophysiological properties of the prototype store-operated current ICRAC, discuss the regulatory mechanisms that control it, and finally consider recent advances toward the identification of molecular mechanisms involved in this ubiquitous and important Ca2+ entry pathway.
非兴奋性细胞中的钙内流调节着诸如胞吐作用、收缩、酶控制、基因调控、细胞增殖和凋亡等多种不同的过程。这些细胞中主要的Ca2+进入途径是储存-操作性途径,其中Ca2+的进入受激动剂敏感的细胞内Ca2+储存库中Ca2+含量的控制。直到最近才描述了一种由储存耗竭激活的Ca2+电流。利用膜片钳技术已经详细研究了这种新电流的特性,即Ca2+释放激活的Ca2+电流(ICRAC)。尽管进行了深入研究,但将Ca2+储存库含量与质膜上Ca2+通道偶联的信号的本质仍然难以捉摸。尽管ICRAC似乎是最有效且分布最广泛的内流途径,但也观察到了其他储存-操作性电流。尽管Ca2+释放激活的Ca2+通道尚未被克隆,但越来越多的证据表明果蝇trp基因可能编码一种储存-操作性Ca2+通道。在这篇综述中,我们描述了Ca2+信号领域的历史发展以及储存-操作性Ca2+电流的发现。我们重点关注典型的储存-操作性电流ICRAC的电生理特性,讨论控制它的调节机制,最后考虑在鉴定参与这种普遍且重要的Ca2+进入途径的分子机制方面的最新进展。