Institute of Nanobiology and Structural Biology, Global Change Research Center, Academy of Sciences of the Czech Republic, Zamek 136, 373 33, Nove Hrady, Czech Republic,
J Mol Model. 2014 Sep;20(9):2400. doi: 10.1007/s00894-014-2400-8. Epub 2014 Aug 26.
WrbA is a novel multimeric flavodoxin-like protein of unknown function. A recent high-resolution X-ray crystal structure of E. coli WrbA holoprotein revealed a methionine sulfoxide residue with full occupancy in the FMN-binding site, a finding that was confirmed by mass spectrometry. In an effort to evaluate whether methionine sulfoxide may have a role in WrbA function, the present analyses were undertaken using molecular dynamics simulations in combination with further mass spectrometry of the protein. Methionine sulfoxide formation upon reconstitution of purified apoWrbA with oxidized FMN is fast as judged by kinetic mass spectrometry, being complete in ∼5 h and resulting in complete conversion at the active-site methionine with minor extents of conversion at heterogeneous second sites. Analysis of methionine oxidation states during purification of holoWrbA from bacterial cells reveals that methionine is not oxidized prior to reconstitution, indicating that methionine sulfoxide is unlikely to be relevant to the function of WrbA in vivo. Although the simulation results, the first reported for WrbA, led to no hypotheses about the role of methionine sulfoxide that could be tested experimentally, they elucidated the origins of the two major differences between apo- and holoWrbA crystal structures, an alteration of inter-subunit distance and a rotational shift within the tetrameric assembly.
WrbA 是一种新型的未知功能的多聚黄素蛋白样蛋白。最近,大肠杆菌 WrbA 全蛋白的高分辨率 X 射线晶体结构显示,FMN 结合部位有一个甲硫氨酸亚砜残基完全占据,这一发现得到了质谱的证实。为了评估甲硫氨酸亚砜是否可能在 WrbA 功能中发挥作用,本研究采用分子动力学模拟结合进一步的蛋白质质谱分析进行了研究。动力学质谱分析表明,在氧化 FMN 再构成纯化的 apoWrbA 时,甲硫氨酸亚砜的形成很快,在约 5 小时内完成,在活性部位的甲硫氨酸完全转化,在异质第二部位有少量转化。对从细菌细胞中纯化全酶 WrbA 过程中甲硫氨酸氧化状态的分析表明,在再构成之前甲硫氨酸没有被氧化,这表明甲硫氨酸亚砜不太可能与 WrbA 在体内的功能有关。尽管模拟结果是首次报道的 WrbA 的结果,但没有提出关于甲硫氨酸亚砜在实验中可以测试的作用的假设,它们阐明了 apo- 和 holoWrbA 晶体结构之间的两个主要差异的起源,亚单位间距离的改变和四聚体组装内的旋转位移。