Reconstitution of [Fe]-hydrogenase using model complexes.
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Matthew D. Wodrich | S. Shima | Xile Hu | J. Kahnt | K. Ataka | Tao Xu | T. Fujishiro | Dafa Chen | Katherine M. Schultz
[1] Tao Xu,et al. Hydrogen-activating models of hydrogenases , 2015 .
[2] Clémence Corminboeuf,et al. Toward functional type III [Fe]-hydrogenase biomimics for H2 activation: insights from computation. , 2015, Chemistry.
[3] W. Lubitz,et al. Hybrid [FeFe]-hydrogenases with modified active sites show remarkable residual enzymatic activity. , 2015, Biochemistry.
[4] Hai-bin Song,et al. Synthesis, structural characterization, and some properties of 2-acylmethyl-6-ester group-difunctionalized pyridine-containing iron complexes related to the active site of [Fe]-hydrogenase. , 2014, Dalton transactions.
[5] Xile Hu,et al. Synthesis and reactivity of mononuclear iron models of [Fe]-hydrogenase that contain an acylmethylpyridinol ligand. , 2014, Chemistry.
[6] R. Morris,et al. Iron(II) complexes containing unsymmetrical P-N-P' pincer ligands for the catalytic asymmetric hydrogenation of ketones and imines. , 2014, Journal of the American Chemical Society.
[7] W. Lubitz,et al. Spontaneous activation of [FeFe]-hydrogenases by an inorganic [2Fe] active site mimic. , 2013, Nature chemical biology.
[8] S. Shima,et al. Crystal structures of [Fe]-hydrogenase in complex with inhibitory isocyanides: implications for the H2-activation site. , 2013, Angewandte Chemie.
[9] Matthew D. Wodrich,et al. Electronic Elements Governing the Binding of Small Molecules to a [Fe]-Hydrogenase Mimic , 2013 .
[10] W. Lubitz,et al. Biomimetic assembly and activation of [FeFe]-hydrogenases , 2013, Nature.
[11] Xile Hu,et al. [Fe]-hydrogenase and models that contain iron-acyl ligation. , 2013, Chemistry, an Asian journal.
[12] M. Reiher,et al. Kinetic modeling of hydrogen conversion at [Fe] hydrogenase active-site models. , 2013, The journal of physical chemistry. B.
[13] Koji Ichikawa,et al. A Functional [NiFe]Hydrogenase Mimic That Catalyzes Electron and Hydride Transfer from H2 , 2013, Science.
[14] U. Linne,et al. Evidence for acyl-iron ligation in the active site of [Fe]-hydrogenase provided by mass spectrometry and infrared spectroscopy. , 2012, Dalton transactions.
[15] C. Corminboeuf,et al. Comprehensive Benchmarking of a Density-Dependent Dispersion Correction. , 2011, Journal of chemical theory and computation.
[16] A. Klamt. The COSMO and COSMO‐RS solvation models , 2011 .
[17] R. Scopelliti,et al. A five-coordinate iron center in the active site of [Fe]-hydrogenase: hints from a model study. , 2011, Angewandte Chemie.
[18] S. Shima,et al. Structure and Function of [Fe]-Hydrogenase and its Iron–Guanylylpyridinol (FeGP) Cofactor , 2011 .
[19] S. Shima,et al. Isocyanides inhibit [Fe]‐hydrogenase with very high affinity , 2011, FEBS letters.
[20] T. Rauchfuss,et al. Iron acyl thiolato carbonyls: structural models for the active site of the [Fe]-hydrogenase (Hmd). , 2010, Journal of the American Chemical Society.
[21] R. Scopelliti,et al. [Fe]-hydrogenase models featuring acylmethylpyridinyl ligands. , 2010, Angewandte Chemie.
[22] Joseph A. Wright,et al. The third hydrogenase: a ferracyclic carbamoyl with close structural analogy to the active site of Hmd. , 2010, Angewandte Chemie.
[23] Abhishek Dey,et al. Density functional theory calculations on the mononuclear non-heme iron active site of Hmd hydrogenase: role of the internal ligands in tuning external ligand binding and driving H2 heterolysis. , 2010, Journal of the American Chemical Society.
[24] S. Shima,et al. The Crystal Structure of C176A Mutated [Fe]-Hydrogenase (Hmd) Holoenzyme in Complex with Methylenetetrahydromethanopterin , 2009 .
[25] S. Shima,et al. The crystal structure of an [Fe]-hydrogenase-substrate complex reveals the framework for H2 activation. , 2009, Angewandte Chemie.
[26] Xinzheng Yang,et al. Monoiron hydrogenase catalysis: hydrogen activation with the formation of a dihydrogen, Fe-H(delta-)...H(delta+)-O, bond and methenyl-H4MPT+ triggered hydride transfer. , 2009, Journal of the American Chemical Society.
[27] C. Pickett,et al. Structural and functional analogues of the active sites of the [Fe]-, [NiFe]-, and [FeFe]-hydrogenases. , 2009, Chemical reviews.
[28] C. Cramer,et al. Universal solvation model based on solute electron density and on a continuum model of the solvent defined by the bulk dielectric constant and atomic surface tensions. , 2009, The journal of physical chemistry. B.
[29] S. Shima,et al. The crystal structure of C176A mutated [Fe]‐hydrogenase suggests an acyl‐iron ligation in the active site iron complex , 2009, FEBS letters.
[30] S. Shima,et al. The Crystal Structure of [Fe]-Hydrogenase Reveals the Geometry of the Active Site , 2008, Science.
[31] D. Truhlar,et al. The M06 suite of density functionals for main group thermochemistry, thermochemical kinetics, noncovalent interactions, excited states, and transition elements: two new functionals and systematic testing of four M06-class functionals and 12 other functionals , 2008 .
[32] Donald G Truhlar,et al. Density functionals with broad applicability in chemistry. , 2008, Accounts of chemical research.
[33] P. Vignais,et al. Occurrence, classification, and biological function of hydrogenases: an overview. , 2007, Chemical reviews.
[34] S. Shima,et al. The exchange activities of [Fe] hydrogenase (iron–sulfur-cluster-free hydrogenase) from methanogenic archaea in comparison with the exchange activities of [FeFe] and [NiFe] hydrogenases , 2007, JBIC Journal of Biological Inorganic Chemistry.
[35] Yvain Nicolet,et al. Structure/function relationships of [NiFe]- and [FeFe]-hydrogenases. , 2007, Chemical reviews.
[36] S. Shima,et al. The Iron-Sulfur Cluster-free Hydrogenase (Hmd) Is a Metalloenzyme with a Novel Iron Binding Motif* , 2006, Journal of Biological Chemistry.
[37] S. Shima,et al. Carbon monoxide as an intrinsic ligand to iron in the active site of the iron-sulfur-cluster-free hydrogenase H2-forming methylenetetrahydromethanopterin dehydrogenase as revealed by infrared spectroscopy. , 2004, Journal of the American Chemical Society.
[38] P. Chirik,et al. Preparation and molecular and electronic structures of iron(0) dinitrogen and silane complexes and their application to catalytic hydrogenation and hydrosilation. , 2004, Journal of the American Chemical Society.
[39] C. Griesinger,et al. The cofactor of the iron-sulfur cluster free hydrogenase hmd: structure of the light-inactivation product. , 2004, Angewandte Chemie.
[40] S. Shima,et al. The metal‐free hydrogenase from methanogenic archaea: evidence for a bound cofactor , 2000, FEBS letters.
[41] A. Becke. Density-functional thermochemistry. III. The role of exact exchange , 1993 .
[42] R. Thauer,et al. H2-forming methylenetetrahydromethanopterin dehydrogenase, a novel type of hydrogenase without iron-sulfur clusters in methanogenic archaea. , 1992, European journal of biochemistry.
[43] Parr,et al. Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density. , 1988, Physical review. B, Condensed matter.
[44] J. Smit,et al. A Functional [NiFe]Hydrogenase Mimic That Catalyzes Electron and Hydride Transfer from H2 , 2013 .
[45] S. Shima,et al. Preparation of [Fe]-hydrogenase from methanogenic archaea. , 2011, Methods in enzymology.
[46] T. Rauchfuss,et al. Combining acid-base, redox and substrate binding functionalities to give a complete model for the [FeFe]-hydrogenase. , 2011, Nature chemistry.
[47] J. Hiltunen,et al. THE CRYSTAL STRUCTURE , 2010 .
[48] R. Thauer,et al. N5, N10-methylenetetrahydromethanopterin dehydrogenase (H2-forming) from the extreme thermophile Methanopyrus kandleri , 2004, Archives of Microbiology.
[49] S. Shima,et al. [28] Tetrahydromethanopterin-specific enzymes from Methanopyrus kandleri , 2001 .
[50] S. Shima,et al. Tetrahydromethanopterin-specific enzymes from Methanopyrus kandleri. , 2001, Methods in enzymology.
[51] A. Becke. Density-functional thermochemistry. , 1996 .
[52] T. Bobik,et al. UNUSUAL COENZYMES OF METHANOGENESIS , 1990 .