Laboratoire de Dynamique Moléculaire, Institut de Biologie Structurale Jean-Pierre Ebel, UMR CNRS/UJF/CEA 5075, 41 rue Jules Horowitz F-38027, Grenoble cedex 1, France.
Dalton Trans. 2010 Mar 28;39(12):3043-9. doi: 10.1039/b912690b. Epub 2009 Dec 14.
DFT modeling has been used to investigate a previously proposed mechanism of proton reduction catalyzed by [Ni(xbsms)Ru(CO)(2)Cl(2)] (H(2)xbsms = 1,2-bis(4-mercapto-3,3-dimethyl-2-thiabutyl)benzene), a bio-inspired mimic of NiFe hydrogenases based on a Ni-Ru framework. Protonation of the 2e(-)-reduced compound, from which a chloride anion has been eliminated, results in the formation of a semi-bridging hydride derivative with structural features comparable to those of the Ni-C state catalytic intermediate of native hydrogenases. The present study thus provides structural and functional insights into the enzymatic mechanism including the possible involvement of a bridging hydride derivative and heterolytic formation of a dihydrogen molecule on a {Ni(mu-S)(2)M} framework.
密度泛函理论建模已被用于研究 [Ni(xbsms)Ru(CO)(2)Cl(2)](H(2)xbsms = 1,2-双(4-巯基-3,3-二甲基-2-噻丁基)苯)催化质子还原的先前提出的机制,该化合物是基于 Ni-Ru 框架的 NiFe 氢化酶的生物启发模拟物。从消除了氯离子的 2e(-)还原化合物中质子化,导致形成具有与天然氢化酶的 Ni-C 状态催化中间物相当的结构特征的半桥氢化物衍生物。因此,本研究提供了对酶促机制的结构和功能见解,包括可能涉及桥连氢化物衍生物和在 {Ni(mu-S)(2)M} 框架上异裂形成氢气分子。