Kong Yifei, Shen Yufeng, Warth Tiffany E, Ma Jianpeng
Graduate Program of Structural and Computational Biology and Molecular Biophysics, Baylor College of Medicine, One Baylor Plaza, BCM-125, Houston, TX 77030, USA.
Proc Natl Acad Sci U S A. 2002 Apr 30;99(9):5999-6004. doi: 10.1073/pnas.092051099. Epub 2002 Apr 23.
The pathway of the gating conformational transition of Escherichia coli mechanosensitive channel was simulated, using the recently modeled open and closed structures, by targeted molecular dynamics method. The transition can be roughly viewed as a four-stage process. The initial motion under a lower tension load is predominantly elastic deformation. The opening of the inner hydrophobic pore on a higher tension load takes place after the major expansion of the outer channel dimension. The hypothetical N-terminal S1 helical bundle has been confirmed to form the hydrophobic gate, together with the M1 helices. The sequential breaking of the tandem hydrophobic constrictions on the M1 and S1 helices makes the two parts of the gate strictly coupled, acting as a single gate. The simulation also revealed that there is no significant energetic coupling between the inner S1 bundle and the outer M2 transmembrane helices. The molten-globular-like structural features of the S1 bundle in its intermediate open states may account for the observed multiple subconductance states. Moreover, the intermediate open states of mechanosensitive channels are not symmetric, i.e., the opening does not follow iris-like motion, which sharply contrasts to the potassium channel KcsA.
利用最近构建的开放和关闭结构模型,通过靶向分子动力学方法模拟了大肠杆菌机械敏感通道门控构象转变的途径。这种转变大致可视为一个四阶段过程。在较低张力负荷下的初始运动主要是弹性变形。在外通道尺寸大幅扩展后,在较高张力负荷下内部疏水孔打开。已证实假设的N端S1螺旋束与M1螺旋一起形成疏水门。M1和S1螺旋上串联疏水收缩的顺序断裂使门的两部分紧密耦合,作为一个单一的门起作用。模拟还表明,内部S1束与外部M2跨膜螺旋之间没有明显的能量耦合。S1束在其中间开放状态下类似熔球的结构特征可能解释了观察到的多个亚电导状态。此外,机械敏感通道的中间开放状态不对称,即开放不遵循虹膜样运动,这与钾通道KcsA形成鲜明对比。