Departments of Medicine, University of Pittsburgh, Pittsburgh, Pennsylvania, USA; Department of Nephrology, Hunan Key Laboratory of Kidney Disease and Blood Purification, The Second Xiangya Hospital, Central South University, Changsha, Hunan, China; The Third Xiangya Hospital of Central South University, Changsha, Hunan, China.
Departments of Medicine, University of Pittsburgh, Pittsburgh, Pennsylvania, USA.
J Biol Chem. 2022 May;298(5):101860. doi: 10.1016/j.jbc.2022.101860. Epub 2022 Mar 23.
The epithelial Na channel (ENaC)/degenerin family has a similar extracellular architecture, where specific regulatory factors interact and alter channel gating behavior. The extracellular palm domain serves as a key link to the channel pore. In this study, we used cysteine-scanning mutagenesis to assess the functional effects of Cys-modifying reagents on palm domain β10 strand residues in mouse ENaC. Of the 13 ENaC α subunit mutants with Cys substitutions examined, only mutants at sites in the proximal region of β10 exhibited changes in channel activity in response to methanethiosulfonate reagents. Additionally, Cys substitutions at three proximal sites of β and γ subunit β10 strands also rendered mutant channels methanethiosulfonate-responsive. Moreover, multiple Cys mutants were activated by low concentrations of thiophilic Cd. Using the Na self-inhibition response to assess ENaC gating behavior, we identified four α, two β, and two γ subunit β10 strand mutations that changed the Na self-inhibition response. Our results suggest that the proximal regions of β10 strands in all three subunits are accessible to small aqueous compounds and Cd and have a role in modulating ENaC gating. These results are consistent with a structural model of mouse ENaC that predicts the presence of aqueous tunnels adjacent to the proximal part of β10 and with previously resolved structures of a related family member where palm domain structural transitions were observed with channels in an open or closed state.
上皮钠通道(ENaC)/ 失活钠通道家族具有相似的细胞外结构,其中特定的调节因子相互作用并改变通道门控行为。细胞外棕榈域作为连接通道孔的关键环节。在这项研究中,我们使用半胱氨酸扫描诱变来评估 Cys 修饰试剂对小鼠 ENaC 棕榈域 β10 链残基的功能影响。在研究的 13 个 ENaC α 亚基突变体中,只有位于 β10 近端区域的突变体在对甲硫磺酸试剂的反应中表现出通道活性的变化。此外,β和γ亚基 β10 链三个近端位置的 Cys 取代也使突变通道对甲硫磺酸试剂有反应。此外,多个 Cys 突变体被低浓度的亲硫 Cd 激活。使用 Na 自抑制反应评估 ENaC 门控行为,我们鉴定出四个 α、两个 β 和两个 γ 亚基 β10 链突变,改变了 Na 自抑制反应。我们的结果表明,所有三个亚基的 β10 链近端区域都可以与小的水性化合物和 Cd 相互作用,并在调节 ENaC 门控中发挥作用。这些结果与预测在 β10 近端部分附近存在水性隧道的小鼠 ENaC 结构模型一致,并且与先前解决的相关家族成员的结构一致,其中观察到棕榈域结构转变与开放或关闭状态的通道。