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Chembiochem : a European Journal of Chemical Biology|July 8, 2016
Reverse Transcription of Threose Nucleic Acid by a Naturally Occurring DNA PolymeraseMatthew R Dunn, John C ChaputCurrent Protocols in Nucleic Acid Chemistry|June 26, 2014
An In Vitro Selection Protocol for Threose Nucleic Acid (TNA) Using DNA DisplayMatthew R Dunn, John C ChaputAnalytical Chemistry|November 18, 2017
Evaluating the Rate and Substrate Specificity of Laboratory Evolved XNA PolymerasesAli Nikoomanzar, Matthew R Dunn, John C ChaputCurrent Protocols in Nucleic Acid Chemistry|June 20, 2017
Engineered Polymerases with Altered Substrate Specificity: Expression and PurificationAli Nikoomanzar, Matthew R Dunn, John C ChaputJournal of the American Chemical Society|February 26, 2013
An efficient and faithful in vitro replication system for threose nucleic acidHanyang Yu, Su Zhang, Matthew R Dunn, et al.ACS Chemical Biology|February 11, 2016
Improving Polymerase Activity with Unnatural Substrates by Sampling Mutations in Homologous Protein ArchitecturesMatthew R Dunn, Carine Otto, Kathryn E Fenton, et al.Journal of the American Chemical Society|April 17, 2020
Generating Biologically Stable TNA Aptamers that Function with High Affinity and Thermal StabilityMatthew R Dunn, Cailen M McCloskey, Patricia Buckley, et al.Nature Communications|April 6, 2016
A general strategy for expanding polymerase function by droplet microfluidicsAndrew C Larsen, Matthew R Dunn, Andrew Hatch, et al.Nucleic Acids Research|December 18, 2015
The structural diversity of artificial genetic polymersIrina Anosova, Ewa A Kowal, Matthew R Dunn, et al.Journal of the American Chemical Society|March 19, 2015
DNA polymerase-mediated synthesis of unbiased threose nucleic acid (TNA) polymers requires 7-deazaguanine to suppress G:G mispairing during TNA transcriptionMatthew R Dunn, Andrew C Larsen, Walter J Zahurancik, et al.Pageof 15