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最常见的囊性纤维化突变通道(ΔF508)的热不稳定性门控:核苷酸结合域 1 中的抑制突变和胞质环中的组成性突变的“挽救”。

Thermally unstable gating of the most common cystic fibrosis mutant channel (ΔF508): "rescue" by suppressor mutations in nucleotide binding domain 1 and by constitutive mutations in the cytosolic loops.

机构信息

Department of Physiology and Biophysics, University of Alabama at Birmingham, Birmingham, Alabama 35294; Gregory Fleming James Cystic Fibrosis Research Center, University of Alabama at Birmingham, Birmingham, Alabama 35294.

Department of Physiology and Biophysics, University of Alabama at Birmingham, Birmingham, Alabama 35294; Gregory Fleming James Cystic Fibrosis Research Center, University of Alabama at Birmingham, Birmingham, Alabama 35294.

出版信息

J Biol Chem. 2011 Dec 9;286(49):41937-41948. doi: 10.1074/jbc.M111.296061. Epub 2011 Sep 30.

Abstract

Most cystic fibrosis (CF) cases are caused by the ΔF508 mutation in the CF transmembrane conductance regulator (CFTR), which disrupts both the processing and gating of this chloride channel. The cell surface expression of ΔF508-CFTR can be "rescued" by culturing cells at 26-28 °C and treating cells with small molecule correctors or intragenic suppressor mutations. Here, we determined whether these various rescue protocols induce a ΔF508-CFTR conformation that is thermally stable in excised membrane patches. We also tested the impact of constitutive cytosolic loop mutations that increase ATP-independent channel activity (K978C and K190C/K978C) on ΔF508-CFTR function. Low temperature-rescued ΔF508-CFTR channels irreversibly inactivated with a time constant of 5-6 min when excised patches were warmed from 22 °C to 36.5 °C. A panel of CFTR correctors and potentiators that increased ΔF508-CFTR maturation or channel activity failed to prevent this inactivation. Conversely, three suppressor mutations in the first nucleotide binding domain rescued ΔF508-CFTR maturation and stabilized channel activity at 36.5 °C. The constitutive loop mutations increased ATP-independent activity of low temperature-rescued ΔF508-CFTR but did not enhance protein maturation. Importantly, the ATP-independent activities of these ΔF508-CFTR constructs were stable at 36.5 °C, whereas their ATP-dependent activities were not. Single channel recordings of this thermally stable ATP-independent activity revealed dynamic gating and unitary currents of normal amplitudes. We conclude that: (i) ΔF508-CFTR gating is highly unstable at physiologic temperature; (ii) most rescue protocols do not prevent this thermal instability; and (iii) ATP-independent gating and the pore are spared from ΔF508-induced thermal instability, a finding that may inform alternative treatment strategies.

摘要

大多数囊性纤维化 (CF) 病例是由 CF 跨膜电导调节因子 (CFTR) 中的 ΔF508 突变引起的,该突变破坏了氯离子通道的加工和门控。通过在 26-28°C 培养细胞并使用小分子校正剂或基因内抑制突变来“挽救”ΔF508-CFTR 的细胞表面表达。在这里,我们确定了这些不同的挽救方案是否会诱导 ΔF508-CFTR 构象,该构象在分离的膜片中具有热稳定性。我们还测试了增加 ATP 非依赖性通道活性的组成型细胞内环突变 (K978C 和 K190C/K978C) 对 ΔF508-CFTR 功能的影响。从 22°C 加热到 36.5°C 时,低温挽救的 ΔF508-CFTR 通道不可逆地失活,时间常数为 5-6 分钟。一组增加 ΔF508-CFTR 成熟或通道活性的 CFTR 校正剂和增强剂未能阻止这种失活。相反,第一核苷酸结合域中的三个抑制突变挽救了 ΔF508-CFTR 的成熟,并在 36.5°C 稳定了通道活性。组成型环突变增加了低温挽救的 ΔF508-CFTR 的 ATP 非依赖性活性,但没有增强蛋白质成熟。重要的是,这些 ΔF508-CFTR 构建体的 ATP 非依赖性活性在 36.5°C 时稳定,而其 ATP 依赖性活性则不稳定。这种热稳定的 ATP 非依赖性活性的单通道记录显示出正常幅度的动态门控和单位电流。我们得出结论:(i) ΔF508-CFTR 门控在生理温度下非常不稳定;(ii) 大多数挽救方案并不能防止这种热不稳定性;(iii) ATP 非依赖性门控和孔免受 ΔF508 诱导的热不稳定性影响,这一发现可能为替代治疗策略提供信息。

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