Department of Chemistry, University of Basel, Klingelbergstrasse 80, 4056 Basel, Switzerland.
J Biol Chem. 2011 Jul 8;286(27):23679-87. doi: 10.1074/jbc.M111.230003. Epub 2011 Apr 29.
The role of water molecules in assisting proton transfer (PT) is investigated for the proton-pumping protein ferredoxin I (FdI) from Azotobacter vinelandii. It was shown previously that individual water molecules can stabilize between Asp(15) and the buried 3Fe-4S cluster and thus can potentially act as a proton relay in transferring H(+) from the protein to the μ(2) sulfur atom. Here, we generalize molecular mechanics with proton transfer to studying proton transfer reactions in the condensed phase. Both umbrella sampling simulations and electronic structure calculations suggest that the PT Asp(15)-COOH + H(2)O + 3Fe-4S → Asp(15)-COO(-) + H(2)O + 3Fe-4S H(+) is concerted, and no stable intermediate hydronium ion (H(3)O(+)) is expected. The free energy difference of 11.7 kcal/mol for the forward reaction is in good agreement with the experimental value (13.3 kcal/mol). For the reverse reaction (Asp(15)-COO(-) + H(2)O + 3Fe-4SH(+) → Asp(15)-COOH + H(2)O + 3Fe-4S), a larger barrier than for the forward reaction is correctly predicted, but it is quantitatively overestimated (23.1 kcal/mol from simulations versus 14.1 from experiment). Possible reasons for this discrepancy are discussed. Compared with the water-assisted process (ΔE ≈ 10 kcal/mol), water-unassisted proton transfer yields a considerably higher barrier of ΔE ≈ 35 kcal/mol.
水分子在协助质子转移(PT)中的作用,针对来自固氮菌的质子泵铁氧还蛋白 I(FdI)进行了研究。先前已经表明,单个水分子可以稳定在天冬氨酸(Asp)15 和埋藏的 3Fe-4S簇之间,因此可能在将 H(+)从蛋白质转移到 μ2 硫原子的过程中充当质子中继。在这里,我们将质子转移的分子力学进行了推广,以研究凝聚相中的质子转移反应。伞状抽样模拟和电子结构计算都表明,PT Asp(15)-COOH + H2O + 3Fe-4S → Asp(15)-COO(-) + H2O + 3Fe-4S H(+)是协同的,预计不会有稳定的中间质子化氢离子(H3O(+))。正向反应的自由能差为 11.7 kcal/mol,与实验值(13.3 kcal/mol)吻合较好。对于反向反应(Asp(15)-COO(-) + H2O + 3Fe-4SH(+) → Asp(15)-COOH + H2O + 3Fe-4S),虽然正确预测了比正向反应更大的势垒,但它的定量估计过高(模拟为 23.1 kcal/mol,实验为 14.1 kcal/mol)。讨论了产生这种差异的可能原因。与水辅助过程(ΔE ≈ 10 kcal/mol)相比,无水辅助质子转移的势垒要高得多,ΔE ≈ 35 kcal/mol。