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Bioorganic & Medicinal Chemistry Letters|September 5, 2015
Inactivation of protein tyrosine phosphatases by dietary isothiocyanatesSarah M Lewis, Ya Li, Michael J Catalano, et al.Biochemistry|August 26, 2020
Cautionary Tale of Using Tris(alkyl)phosphine Reducing Agents with NAD+-Dependent EnzymesSagar M Patel, Thomas G Smith, Martha Morton, et al.Biochemistry|October 22, 2024
Noncovalent Inhibition and Covalent Inactivation of Proline Dehydrogenase by Analogs of N-PropargylglycineJohn J Tanner, Juan Ji, Alexandra N Bogner, et al.Proceedings of the National Academy of Sciences of the United States of America|February 6, 2010
Crystal structure of the bifunctional proline utilization A flavoenzyme from Bradyrhizobium japonicumDhiraj Srivastava, Jonathan P Schuermann, Tommi A White, et al.Journal of Molecular Biology|July 1, 2008
Structural basis of the transcriptional regulation of the proline utilization regulon by multifunctional PutAYuzhen Zhou, John D Larson, Christopher A Bottoms, et al.Journal of the American Chemical Society|September 15, 2011
The biological buffer bicarbonate/CO2 potentiates H2O2-mediated inactivation of protein tyrosine phosphatasesHaiying Zhou, Harkewal Singh, Zachary D Parsons, et al.Biochemistry|July 21, 2009
Functional role for the conformationally mobile phenylalanine 223 in the reaction of methylenetetrahydrofolate reductase from Escherichia coliMoon N Lee, Desire Takawira, Andriana P Nikolova, et al.Applied and Environmental Microbiology|April 14, 2009
Characterization of a unique class C acid phosphatase from Clostridium perfringensThomas J Reilly, Deborah L Chance, Michael J Calcutt, et al.Pageof 16