IAA-94

IAA - 94
  • 文章类型: Journal Article
    氯化物细胞内通道(CLIC)是以可溶性和跨膜形式存在的蛋白质家族。最新发现的CLIC6家族成员与乳房有关,卵巢,肺胃,和胰腺癌,并且还已知与多巴胺-(D(2)-样)受体相互作用。通道的可溶性结构已得到解决,但CLIC6的确切生理作用,生物物理表征,膜结构仍然未知。在这里,我们旨在使用膜片钳方法表征该通道的生物物理特性。为了确定CLIC6的生物物理特性,我们在HEK-293细胞中表达CLIC6。关于异位表达,CLIC6定位于HEK-293细胞的质膜。我们通过使用全细胞建立了CLIC6的生物物理特性,和细胞附着的配置。使用各种阴离子和钾(K+)溶液,我们确定CLIC6与溴化物-(Br-)相比,对氯化物-(Cl-)更具渗透性,Fluoride-(F-),K+离子在整个细胞配置中,加入10μMIAA-94(CLIC特异性阻断剂)后,CLIC6电流受到抑制.还发现CLIC6受pH和氧化还原电位调节。我们证明,组氨酸残基在648(H648)在C端,和N端半胱氨酸残基(C487)分别直接参与pH诱导的CLIC6的构象变化和氧化还原调节。使用qRT-PCR,我们发现CLIC6在肺和大脑中含量最高,我们记录了小鼠肺上皮细胞(MLE)中的CLIC6电流。总的来说,我们已经确定了CLIC6的生物物理特性,并将其确立为Cl-通道。
    Chloride intracellular channels (CLICs) are a family of proteins that exist in soluble and transmembrane forms. The newest discovered member of the family CLIC6 is implicated in breast, ovarian, lung gastric, and pancreatic cancers and is also known to interact with dopamine-(D(2)-like) receptors. The soluble structure of the channel has been resolved, but the exact physiological role of CLIC6, biophysical characterization, and the membrane structure remain unknown. Here, we aimed to characterize the biophysical properties of this channel using a patch-clamp approach. To determine the biophysical properties of CLIC6, we expressed CLIC6 in HEK-293 cells. On ectopic expression, CLIC6 localizes to the plasma membrane of HEK-293 cells. We established the biophysical properties of CLIC6 by using electrophysiological approaches. Using various anions and potassium (K+) solutions, we determined that CLIC6 is more permeable to chloride-(Cl-) as compared to bromide-(Br-), fluoride-(F-), and K+ ions. In the whole-cell configuration, the CLIC6 currents were inhibited after the addition of 10 μM of IAA-94 (CLIC-specific blocker). CLIC6 was also found to be regulated by pH and redox potential. We demonstrate that the histidine residue at 648 (H648) in the C terminus and cysteine residue in the N terminus (C487) are directly involved in the pH-induced conformational change and redox regulation of CLIC6, respectively. Using qRT-PCR, we identified that CLIC6 is most abundant in the lung and brain, and we recorded the CLIC6 current in mouse lung epithelial cells. Overall, we have determined the biophysical properties of CLIC6 and established it as a Cl- channel.
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  • 文章类型: Journal Article
    最初认为膜联蛋白代表除了特征明确的连接蛋白之外的第二个和冗余的间隙连接蛋白家族。然而,现在很明显,膜联蛋白作为未贴壁的膜通道起作用,而Panx1的主要作用是ATP释放通道。尽管功能角色不同,连接蛋白,innexins和pannexins具有相同的药理特性。大多数缝隙连接阻断剂也削弱了Panx1的功能,包括加贝,甲氟喹和氟芬那酸。然而,与基于连接蛋白的间隙连接通道相反,迄今为止认为对其他蛋白质非常特异的几组药物可以减弱Panx1通道活性。影响Panx1通道的药物包括几种转运抑制剂,氯通道阻断剂,线粒体抑制剂,P2X7受体配体,炎性体抑制剂和疟疾药物。这些观察结果表明,Panx1可能在更广泛的生理功能中起着广泛的作用。或者,Panx1可能与其他蛋白质共享结构域,不容易通过序列比对揭示。本文是特刊部分的一部分,标题为“间隙连接通道和半通道的当前药理学”。
    Pannexins were originally thought to represent a second and redundant family of gap junction proteins in addition to the well characterized connexins. However, it is now evident that pannexins function as unapposed membrane channels and the major role of Panx1 is that of an ATP release channel. Despite the contrasting functional roles, connexins, innexins and pannexins share pharmacological properties. Most gap junction blockers also attenuate the function of Panx1, including carbenoxolone, mefloquine and flufenamic acid. However, in contrast to connexin based gap junction channels, Panx1 channel activity can be attenuated by several groups of drugs hitherto considered very specific for other proteins. The drugs affecting Panx1 channels include several transport inhibitors, chloride channel blockers, mitochondrial inhibitors, P2X7 receptor ligands, inflammasome inhibitors and malaria drugs. These observations indicate that Panx1 may play an extended role in a wider spectrum of physiological functions. Alternatively, Panx1 may share structural domains with other proteins, not readily revealed by sequence alignments. This article is part of the Special Issue Section entitled \'Current Pharmacology of Gap Junction Channels and Hemichannels\'.
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