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The Journal of Biological Chemistry|September 22, 2006
A highly specific mechanism of histone H3-K4 recognition by histone demethylase LSD1Federico Forneris, Claudia Binda, Annachiara Dall'Aglio, et al.
Chemical Reviews|January 12, 2018
Same Substrate, Many Reactions: Oxygen Activation in FlavoenzymesElvira Romero, J Rubén Gómez Castellanos, Giovanni Gadda, et al.
The Journal of Biological Chemistry|March 24, 2021
Ancestral reconstruction of mammalian FMO1 enables structural determination, revealing unique features that explain its catalytic propertiesGautier Bailleul, Callum R Nicoll, María Laura Mascotti, et al.
ACS Chemical Biology|August 8, 2017
Baeyer-Villiger Monooxygenase FMO5 as Entry Point in Drug MetabolismFilippo Fiorentini, Elvira Romero, Marco W Fraaije, et al.
ACS Medicinal Chemistry Letters|January 28, 2012
Molecular Insights into Human Monoamine Oxidase B Inhibition by the Glitazone Anti-Diabetes DrugsClaudia Binda, Milagros Aldeco, Werner J Geldenhuys, et al.
The Journal of Biological Chemistry|May 2, 2009
A novel mammalian flavin-dependent histone demethylaseAristotele Karytinos, Federico Forneris, Antonella Profumo, et al.
The Journal of Biological Chemistry|June 11, 2023
A biosynthetic aspartate N-hydroxylase performs successive oxidations by holding intermediates at a site away from the catalytic centerLaura Rotilio, Alessandro Boverio, Quoc-Thai Nguyen, et al.
Proceedings of the National Academy of Sciences of the United States of America|September 1, 2005
Three-dimensional structure of human monoamine oxidase A (MAO A): relation to the structures of rat MAO A and human MAO BLuigi De Colibus, Min Li, Claudia Binda, et al.
Current Topics in Medicinal Chemistry|November 2, 2011
Lights and shadows on monoamine oxidase inhibition in neuroprotective pharmacological therapiesClaudia Binda, Erika M Milczek, Daniele Bonivento, et al.
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