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Loop Gating of Connexin Hemichannels Involves Movement of Pore-lining Residues in the First Extracellular Loop Domain*

机译:连接蛋白半通道的环门控涉及孔内衬的运动。 第一个细胞外环中的残基 域*

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摘要

Unapposed connexin hemichannels exhibit robust closure in response to membrane hyperpolarization and extracellular calcium. This form of gating, termed “loop gating,” is largely responsible for regulating hemichannel opening, thereby preventing cell damage through excessive flux of ions and metabolites. The molecular components and structural rearrangements underlying loop gating remain unknown. Here, using cysteine mutagenesis in Cx50, we demonstrate that residues at the TM1/E1 border undergo movement during loop gating. Replacement of Phe43 in Cx50 with a cysteine resulted in small or no appreciable membrane currents. Bath application of dithiothreitol or TPEN (N,N,N′,N′-tetrakis(2-pyridylmethyl) ethylenediamine), reagents that exhibit strong transition metal chelating activity, led to robust currents indicating that the F43C substitution impaired hemichannel function, producing “lock-up” in a closed or poorly functional state due to formation of metal bridges. In support, Cd2+ at submicromolar concentrations (50–100 nm) enhanced lock-up of F43C hemichannels. Moreover, lock-up occurred under conditions that favored closure, indicating that the sulfhydryl groups come close enough to each other or to other residues to coordinate metal ions with high affinity. In addition to F43C, metal binding was also found for G46C, and to a lesser extent, D51C substitutions, positions found to be pore-lining in the open state using the substituted-cysteine accessibility method, but not for A40C and A41C substitutions, which were not found to reside in the open pore. These results indicate that metal ions access the cysteine side chains through the open pore and that closure of the loop gate involves movement of the TM1/E1 region that results in local narrowing of the large aqueous connexin pore.
机译:未对位的连接蛋白半通道对膜超极化和细胞外钙的响应显示出强大的闭合性。这种形式的门控,称为“环路门控”,主要负责调节半通道的开放,从而防止因离子和代谢物的通量过多而对细胞造成损害。环门控的分子组成和结构重排仍然未知。在这里,使用Cx50中的半胱氨酸诱变,我们证明了TM1 / E1边界处的残基在循环门控期间经历了运动。用半胱氨酸替代Cx50中的Phe43,导致膜电流很小或没有明显电流。在浴中应用二硫苏糖醇或TPEN(N,N,N',N'-四(2-吡啶基甲基)乙二胺)试剂,它们具有很强的过渡金属螯合活性,导致产生强电流,表明F43C取代削弱了半通道功能,产生“由于形成了金属桥,因此处于封闭或功能差的状态。在支持下,亚微摩尔浓度(50-100 nm)的Cd2 +增强了F43C半通道的锁定。而且,在有利于封闭的条件下发生了锁定,这表明巯基基团彼此足够接近或与其他残基足够接近以高亲和力配位金属离子。除了F43C以外,还发现了G46C的金属结合,以及较小程度的D51C取代,使用取代的半胱氨酸可及性方法在开放状态下发现了孔内衬,但对于A40C和A41C取代则没有发现。未被发现存在于开放的孔中。这些结果表明,金属离子通过开放的孔进入半胱氨酸侧链,而环门的关闭涉及TM1 / E1区的运动,这导致较大的水性连接蛋白孔局部变窄。

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