Liang Qiaoli, Miller Gregory T, Beeghley Chanda A, Graf Coyner B, Timkovich Russell
Department of Chemistry, University of Alabama, Tuscaloosa, AL 35487, USA.
Biophys J. 2007 Sep 1;93(5):1700-6. doi: 10.1529/biophysj.106.102772. Epub 2007 May 11.
In the cytochrome c-551 family, the heme 17-propionate caboxylate group is always hydrogen bonded to an invariant Trp-56 and conserved residues (His and Arg mainly, Lys occasionally) at position 47. The mutation of His-47 to Ala-47 for Pseudomas stutzeri ZoBell cytochrome c-551 removes this otherwise invariant hydrogen bond. The solution structure of ferrous H47A has been solved based on NMR-derived constraints. Results indicate that the mutant has very similar main chain folding compared to wild-type. However, less efficient packing of residues in the mutant surrounding the heme propionates leads to more solvent exposure for both propionate groups, which may account for decreased stability of the mutant. The mutant has a reduction potential different from wild-type, and furthermore, the pH dependence of this potential is not the same as for wild-type. The structure of the mutant suggests that these changes are related to the loss of the residue-47 propionate hydrogen bond and the loss of charge on the side chain of residue 47.
在细胞色素c-551家族中,血红素17-丙酸酯羧基总是通过氢键与不变的色氨酸-56以及47位的保守残基(主要是组氨酸和精氨酸,偶尔是赖氨酸)相连。将施氏假单胞菌佐贝尔细胞色素c-551的组氨酸-47突变为丙氨酸-47会消除这种原本不变的氢键。基于核磁共振衍生的限制条件,已解析出亚铁H47A的溶液结构。结果表明,与野生型相比,该突变体具有非常相似的主链折叠。然而,突变体中血红素丙酸酯周围残基的堆积效率较低,导致两个丙酸酯基团都有更多的溶剂暴露,这可能是突变体稳定性降低的原因。该突变体具有与野生型不同的还原电位,此外,该电位的pH依赖性也与野生型不同。突变体的结构表明,这些变化与47位残基丙酸酯氢键的丧失以及47位残基侧链电荷的丧失有关。