Department of Biochemical Science and Technology, College of Life Science, National Taiwan University, Taipei, Taiwan.
Department of Biochemical Science and Technology, College of Life Science, National Taiwan University, Taipei, Taiwan.
Biophys J. 2022 Jul 19;121(14):2781-2793. doi: 10.1016/j.bpj.2022.06.010. Epub 2022 Jun 10.
Microbial rhodopsins (MRho) are vital proteins in Haloarchaea for solar light sensing in extreme living environments. Among them, Haloquadratum walsbyi (Hw) is a species known to survive high MgCl concentrations, with a total of three MRhos identified, including a high-acid-tolerance light-driven proton outward pump, HwBR, a chloride-insensitive chloride pump, HwHR, and a functionally unknown HwMR. Here, we showed that HwMR is the sole magnesium-sensitive MRho among all tested MRho proteins from Haloarchaea. We identified at least D84 as one of the key residues mediating such magnesium ion association in HwMR. Sequence analysis and molecular modeling suggested HwMR to have an extra H8 helix in the cytosolic region like those in signal-transduction-type MRho of deltarhodopsin-3 (dR-3) and Anabaena sensory rhodopsin (ASR). Further, HwMR showed a distinctly prolonged M-state formation under a high concentration of Mg. On the other hand, an H8 helix truncated mutant preserved photocycle kinetics like the wild type, but it led to missing M-state structure. Our findings clearly suggested not only that HwMR is a novel Mg-associated protein but that the association with both Mg and the H8 domain stabilizes M-state formation in HwMR. We conclude that Mg association and H8 are crucial in stabilizing HwMR M state, which is a well-known photoreceptor signaling state.
微生物视紫红质(MRho)是极端生境中 Haloarchaea 中用于感知太阳光线的重要蛋白质。其中,Haloquadratum walsbyi(Hw)是一种已知能够在高 MgCl 浓度下生存的物种,共鉴定出三种 MRho,包括一种高耐酸的光驱动质子外向泵 HwBR、一种对氯离子不敏感的氯离子泵 HwHR 和一种功能未知的 HwMR。在这里,我们表明 HwMR 是所有测试的 Haloarchaea MRho 蛋白中唯一对镁敏感的 MRho。我们确定了至少 D84 是介导 HwMR 中镁离子结合的关键残基之一。序列分析和分子建模表明,HwMR 在细胞溶质区域具有额外的 H8 螺旋,类似于 delta-视紫红质-3(dR-3)和鱼腥藻感受态视紫红质(ASR)中的信号转导型 MRho。此外,HwMR 在高浓度 Mg 下表现出明显延长的 M 态形成。另一方面,H8 螺旋截断突变体保持了与野生型相似的光循环动力学,但导致 M 态结构缺失。我们的研究结果清楚地表明,HwMR 不仅是一种新型的 Mg 相关蛋白,而且与 Mg 和 H8 结构域的结合稳定了 HwMR 的 M 态形成。我们得出结论,Mg 结合和 H8 对于稳定 HwMR 的 M 态至关重要,M 态是一种众所周知的光受体信号转导状态。