Erwin Reisner
University of Oxford
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Chemical Society Reviews | 2010
Simone Friedle; Erwin Reisner; Stephen J. Lippard
This tutorial review describes recent progress in modeling the active sites of carboxylate-rich non-heme diiron enzymes that activate dioxygen to carry out several key reactions in Nature. The chemistry of soluble methane monooxygenase, which catalyzes the selective oxidation of methane to methanol, is of particular interest for (bio)technological applications. Novel synthetic diiron complexes that mimic structural, and, to a lesser extent, functional features of these diiron enzymes are discussed. The chemistry of the enzymes is also briefly summarized. A particular focus of this review is on models that mimic characteristics of the diiron systems that were previously not emphasized, including systems that contain (i) aqua ligands, (ii) different substrates tethered to the ligand framework, (iii) dendrimers attached to carboxylates to mimic the protein environment, (iv) two N-donors in a syn-orientation with respect to the iron-iron vector, and (v) a N-rich ligand environment capable of accessing oxygenated high-valent diiron intermediates.
Journal of the American Chemical Society | 2008
Todd C. Harrop; Zachary J. Tonzetich; Erwin Reisner; Stephen J. Lippard
The interaction of nitric oxide (NO) with iron-sulfur cluster proteins results in degradation and breakdown of the cluster to generate dinitrosyl iron complexes (DNICs). In some cases the formation of DNICs from such cluster systems can lead to activation of a regulatory pathway or the loss of enzyme activity. In order to understand the basic chemistry underlying these processes, we have investigated the reactions of NO with synthetic [2Fe-2S] and [4Fe-4S] clusters. Reaction of excess NO(g) with solutions of [Fe2S2(SR)4](2-) (R = Ph, p-tolyl (4-MeC6H4), or 1/2 (CH2)2-o-C6H4) cleanly affords the respective DNIC, [Fe(NO)2(SR)2](-), with concomitant reductive elimination of the bridging sulfide ligands as elemental sulfur. The structure of (Et4N)[Fe(NO)2(S-p-tolyl)2] was verified by X-ray crystallography. Reactions of the [4Fe-4S] clusters, [Fe4S4(SR)4](2-) (R = Ph, CH2Ph, (t)Bu, or 1/2 (CH2)-m-C6H4) proceed in the absence of added thiolate to yield Roussins black salt, [Fe4S3(NO)7](-). In contrast, (Et4N)2[Fe4S4(SPh)4] reacts with NO(g) in the presence of 4 equiv of (Et4N)(SPh) to yield the expected DNIC. For all reactions, we could reproduce the chemistry effected by NO(g) with the use of trityl-S-nitrosothiol (Ph3CSNO) as the nitric oxide source. These results demonstrate possible pathways for the reaction of iron-sulfur clusters with nitric oxide in biological systems and highlight the importance of thiolate-to-iron ratios in stabilizing DNICs.
Journal of the American Chemical Society | 2009
Oliver Lazarus; Thomas W. Woolerton; Alison Parkin; Michael J. Lukey; Erwin Reisner; Javier Seravalli; Elizabeth Pierce; Stephen W. Ragsdale; Frank Sargent; Fraser A. Armstrong
The water-gas shift (WGS) reaction (CO + H(2)O <==> CO(2) + H(2)) is of major industrial significance in the production of H(2) from hydrocarbon sources. High temperatures are required, typically in excess of 200 degrees C, using d-metal catalysts on oxide supports. In our study the WGS process is separated into two half-cell electrochemical reactions (H(+) reduction and CO oxidation), catalyzed by enzymes attached to a conducting particle. The H(+) reduction reaction is catalyzed by a hydrogenase, Hyd-2, from Escherichia coli, and CO oxidation is catalyzed by a carbon monoxide dehydrogenase (CODH I) from Carboxydothermus hydrogenoformans. This results in a highly efficient heterogeneous catalyst with a turnover frequency, at 30 degrees C, of at least 2.5 s(-1) per minimum functional unit (a CODH/Hyd-2 pair) which is comparable to conventional high-temperature catalysts.
Chemical Society Reviews | 2009
Fraser A. Armstrong; Natalie A. Belsey; James A. Cracknell; Gabrielle Goldet; Alison Parkin; Erwin Reisner; Kylie A. Vincent; Annemarie F. Wait
Inorganic Chemistry | 2004
Erwin Reisner; Vladimir B. Arion; M. Fátima C. Guedes da Silva; Roman J. Lichtenecker; Anna Eichinger; Bernhard K. Keppler; Vadim Yu. Kukushkin; Armando J. L. Pombeiro
Chemical Communications | 2009
Erwin Reisner; Juan C. Fontecilla-Camps; Fraser A. Armstrong
Inorganic Chemistry | 2003
Vladimir B. Arion; Erwin Reisner; Madeleine Fremuth; Michael A. Jakupec; Bernhard K. Keppler; Vadim Yu. Kukushkin; Armando J. L. Pombeiro
Inorganic Chemistry | 2007
Erwin Reisner; Joshua Telser; Stephen J. Lippard
Inorganic Chemistry | 2007
Erwin Reisner; Tanya C. Abikoff; Stephen J. Lippard
European Journal of Organic Chemistry | 2008
Erwin Reisner; Stephen J. Lippard