首页> 外文期刊>Cell Calcium: The International Interdisciplinary Forum for Research on Calcium >Permeation through store-operated CRAC channels in divalent-free solution: potential problems and implications for putative CRAC channel genes.
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Permeation through store-operated CRAC channels in divalent-free solution: potential problems and implications for putative CRAC channel genes.

机译:在没有二价的溶液中透过存储操作的CRAC通道渗透:潜在的问题和对假定的CRAC通道基因的影响。

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摘要

CRAC channels are key calcium conduits in both physiological and pathological states. Understanding how these channels are controlled is important as this will not only provide insight into a novel signal transduction pathway coupling intracellular stores to the channels in the plasma membrane, but might also be of clinical relevance. Determining the molecular identity of the CRAC channels will certainly be a major step forward.Like all Ca(2+)-selective channels, CRAC channels lose their selectivity in divalent-free external solution to support large monovalent Na(+) currents. This approach has provided new insight into channel permeation and selectivity, and identifies some interesting differences between CRAC channels and voltage-operated calcium channels (VOCCs). Studies in divalent-free solution are a double-edged sword, however. Electrophysiologists need to be wary because some of the conditions used to study I(CRAC) in divalent-free external solution, notably omission of Mg(2+)/Mg-ATP from the recording pipette solution, activates an additional current permeating through Mg(2+)-nucleotide-regulated metal ion current (MagNuM; TRPM7) channels. This channel underlies the large single-channel events that have been attributed to CRAC channels in the past and which have been used to as a tool to identify store-operated channels in native cells and recombinant expression systems.Are we any closer to identifying the elusive CRAC channel gene(s)? TRPV6 seemed a very attractive candidate, but one of the main arguments supporting it was a single-channel conductance in divalent-free solution similar to that for CRAC reported under conditions where MagNuM is active. We now know that the conductance of TRPV6 is approximately 200-fold larger than that of CRAC in native tissue. Moreover, it is unclear if TRPV6 is store-operated. Further work on TRPV6, particularly whether its single-channel conductance is still high under conditions where it apparently forms multimers with endogenous store-operated channels, and whether it is activated by a variety of store depletion protocols, will be helpful in finally resolving this issue.
机译:CRAC通道是处于生理和病理状态的关键钙通道。理解如何控制这些通道是重要的,因为这不仅将使人们深入了解将细胞内存储与质膜通道耦合的新型信号转导途径,而且可能具有临床意义。确定CRAC通道的分子身份肯定是向前迈出的重要一步。就像所有Ca(2+)选择性通道一样,CRAC通道在无二价外部溶液中失去了选择性,无法支持较大的单价Na(+)电流。这种方法提供了有关通道渗透性和选择性的新见解,并确定了CRAC通道和电压操作钙通道(VOCC)之间的一些有趣差异。但是,无二价溶液的研究是一把双刃剑。电生理学家需要警惕,因为用于研究无二价外部溶液中的I(CRAC)的某些条件(特别是从记录移液管溶液中漏掉Mg(2 +)/ Mg-ATP)会激活通过Mg( 2 +)-核苷酸调节的金属离子电流(MagNuM; TRPM7)通道。该通道是过去归因于CRAC通道的大型单通道事件的基础,这些事件已被用作识别天然细胞和重组表达系统中存储操作通道的工具。 CRAC通道基因? TRPV6似乎是一个非常有吸引力的候选物,但是支持它的主要论据之一是在无二价溶液中的单通道电导,类似于在MagNuM活跃的条件下报道的CRAC。我们现在知道,在天然组织中,TRPV6的电导率比CRAC的电导率大约大200倍。此外,还不清楚TRPV6是否由商店运营。 TRPV6的进一步研究,特别是在单价电导率在明显与内源性商店操纵型通道形成多聚体的条件下是否仍然很高,以及是否被各种商店耗竭协议激活的条件,将有助于最终解决此问题。 。

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