Fraser Armstrong, Ph.D.

Affiliations: 
Inorganic Chemistry Laboratory University of Oxford, Oxford, United Kingdom 
Website:
http://research.chem.ox.ac.uk/fraser-armstrong.aspx
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"Fraser Armstrong"
Bio:

http://armstrong.chem.ox.ac.uk/index.html

Cross-listing: Chemistry Tree

Parents

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A. Geoffrey Sykes grad student 1978 University of Leeds (Chemistry Tree)
Helmut Beinert post-doc UW Madison (Neurotree)
H. Allen O. Hill post-doc Oxford (Chemistry Tree)

Children

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Bhavin Siritanaratkul grad student (Chemistry Tree)
Anne Katherine Jones grad student 1998-2002 Oxford (Chemistry Tree)
Sean J. Elliott grad student 2000-2002 Oxford
Alison Parkin grad student 2004-2008 Oxford (Chemistry Tree)
Michael J. Lukey grad student 2009-2013 Oxford (Cell Biology Tree)
Sadagopan Krishnan post-doc Oxford (Chemistry Tree)
Alison Parkin post-doc Oxford (Chemistry Tree)
Kylie Vincent post-doc Oxford (Chemistry Tree)
Yatendra S Chaudhary post-doc 2010-2012 Oxford (Chemistry Tree)
Erwin Reisner research scientist 2008-2009 Oxford (Chemistry Tree)
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Publications

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Siritanaratkul B, Megarity CF, Herold RA, et al. (2024) Interactive biocatalysis achieved by driving enzyme cascades inside a porous conducting material. Communications Chemistry. 7: 132
Evans RM, Krahn N, Weiss J, et al. (2024) Replacing a Cysteine Ligand by Selenocysteine in a [NiFe]-Hydrogenase Unlocks Hydrogen Production Activity and Addresses the Role of Concerted Proton-Coupled Electron Transfer in Electrocatalytic Reversibility. Journal of the American Chemical Society
Schmidt A, Kalms J, Lorent C, et al. (2023) Stepwise conversion of the Cys[4Fe-3S] to a Cys[4Fe-4S] cluster and its impact on the oxygen tolerance of [NiFe]-hydrogenase. Chemical Science. 14: 11105-11120
Evans RM, Beaton SE, Rodriguez Macia P, et al. (2023) Comprehensive structural, infrared spectroscopic and kinetic investigations of the roles of the active-site arginine in bidirectional hydrogen activation by the [NiFe]-hydrogenase 'Hyd-2' from . Chemical Science. 14: 8531-8551
Herold RA, Reinbold R, Schofield CJ, et al. (2022) NADP(H)-dependent biocatalysis without adding NADP(H). Proceedings of the National Academy of Sciences of the United States of America. 120: e2214123120
Armstrong FA, Cheng B, Herold RA, et al. (2022) From Protein Film Electrochemistry to Nanoconfined Enzyme Cascades and the Electrochemical Leaf. Chemical Reviews
Cheng B, Heath RS, Turner NJ, et al. (2022) Deracemisation and stereoinversion by a nanoconfined bidirectional enzyme cascade: dual control by electrochemistry and selective metal ion activation. Chemical Communications (Cambridge, England)
Ash PA, Kendall-Price SET, Evans RM, et al. (2021) The crystalline state as a dynamic system: IR microspectroscopy under electrochemical control for a [NiFe] hydrogenase. Chemical Science. 12: 12959-12970
Armstrong FA. (2021) Some fundamental insights into biological redox catalysis from the electrochemical characteristics of enzymes attached directly to electrodes. Electrochimica Acta. 390: 138836
Herold RA, Reinbold R, Megarity CF, et al. (2021) Exploiting Electrode Nanoconfinement to Investigate the Catalytic Properties of Isocitrate Dehydrogenase (IDH1) and a Cancer-Associated Variant. The Journal of Physical Chemistry Letters. 12: 6095-6101
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