Literature DB >> 18633545

QM/MM studies of Ni-Fe hydrogenases: the effect of enzyme environment on the structure and energies of the inactive and active states.

Prabha Jayapal1, Mahesh Sundararajan, Ian H Hillier, Neil A Burton.   

Abstract

The catalytically active (Ni-SI and Ni-R) and inactive states (Ni-A and Ni-B) of Ni-Fe hydrogenases have been studied using density functional theory (DFT) methods. Both isolated clusters and clusters embedded in the enzyme have been used to model the Ni-A, Ni-B, Ni-SI and Ni-R states. The BP86 and B3LYP functionals were employed, and hybrid quantum mechanical (QM)/molecular mechanical (MM) methods were used for the embedded calculations. The QM/MM studies, rather than the isolated cluster calculations, were generally found to give structures which correlated better with X-ray data. The structure of the unready state (Ni-A), was correctly predicted by the QM/MM, but not by the isolated cluster calculation. Comparison with the observed crystal structure favoured the catalytically active state, Ni-SI, to be the protonated (Ni-SI(II)), rather than the unprotonated state (Ni-SI(I)). In the QM/MM studies, the binding of H(2) to Ni-SI(II) is preferred at the Ni (Ni-R(Ni)), rather than at the Fe centre (Ni-R(Fe)), in agreement with xenon binding studies, and in contrast to isolated cluster studies. These calculations cannot say with certainty which functional should be favoured, nor the preferred spin state of the catalytically active species. However, the lack of any predicted structure in which H(2) binds to the Fe centre, does favour a low spin state for Ni-SI(II), and the use of the BP86 functional. This is in agreement with recent high level ab initio calculations of a model of the Ni-SI(I) state.

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Year:  2008        PMID: 18633545     DOI: 10.1039/b804035d

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  6 in total

1.  Computational study of the electronic structure and magnetic properties of the Ni-C state in [NiFe] hydrogenases including the second coordination sphere.

Authors:  Mario Kampa; Wolfgang Lubitz; Maurice van Gastel; Frank Neese
Journal:  J Biol Inorg Chem       Date:  2012-10-05       Impact factor: 3.358

2.  Protonation states of intermediates in the reaction mechanism of [NiFe] hydrogenase studied by computational methods.

Authors:  Geng Dong; Ulf Ryde
Journal:  J Biol Inorg Chem       Date:  2016-03-03       Impact factor: 3.358

Review 3.  Biological applications of hybrid quantum mechanics/molecular mechanics calculation.

Authors:  Jiyoung Kang; Yohsuke Hagiwara; Masaru Tateno
Journal:  J Biomed Biotechnol       Date:  2012-03-28

4.  What is the trigger mechanism for the reversal of electron flow in oxygen-tolerant [NiFe] hydrogenases?

Authors:  Ian Dance
Journal:  Chem Sci       Date:  2014-12-08       Impact factor: 9.825

Review 5.  Proton Transfer in the Catalytic Cycle of [NiFe] Hydrogenases: Insight from Vibrational Spectroscopy.

Authors:  Philip A Ash; Ricardo Hidalgo; Kylie A Vincent
Journal:  ACS Catal       Date:  2017-02-23       Impact factor: 13.084

6.  [NiFe], [FeFe], and [Fe] hydrogenase models from isomers.

Authors:  Seiji Ogo; Takahiro Kishima; Takeshi Yatabe; Keishi Miyazawa; Ryunosuke Yamasaki; Takahiro Matsumoto; Tatsuya Ando; Mitsuhiro Kikkawa; Miho Isegawa; Ki-Seok Yoon; Shinya Hayami
Journal:  Sci Adv       Date:  2020-06-10       Impact factor: 14.136

  6 in total

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