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Plos One|September 29, 2015
Redesigning Recombinase Specificity for Safe Harbor Sites in the Human GenomeMark C Wallen, Thomas Gaj, Carlos F BarbasMolecular Therapy. Nucleic Acids|March 11, 2015
Improved cell-penetrating zinc-finger nuclease proteins for precision genome engineeringJia Liu, Thomas Gaj, Mark C Wallen, et al.Methods in Enzymology|November 16, 2014
Genome engineering with custom recombinasesThomas Gaj, Carlos F BarbasJournal of the American Chemical Society|March 12, 2014
Enhancing the specificity of recombinase-mediated genome engineering through dimer interface redesignThomas Gaj, Shannon J Sirk, Ryan D Tingle, et al.Journal of Molecular Biology|May 8, 2010
Directed evolution of an enhanced and highly efficient FokI cleavage domain for zinc finger nucleasesJing Guo, Thomas Gaj, Carlos F BarbasBiotechnology and Bioengineering|August 29, 2013
Expanding the scope of site-specific recombinases for genetic and metabolic engineeringThomas Gaj, Shannon J Sirk, Carlos F BarbasTrends in Biotechnology|May 14, 2013
ZFN, TALEN, and CRISPR/Cas-based methods for genome engineeringThomas Gaj, Charles A Gersbach, Carlos F BarbasAccounts of Chemical Research|June 1, 2014
Synthetic zinc finger proteins: the advent of targeted gene regulation and genome modification technologiesCharles A Gersbach, Thomas Gaj, Carlos F BarbasAngewandte Chemie (International Ed. in English)|September 9, 2014
Site-selective labeling of a lysine residue in human serum albuminShigehiro Asano, James T Patterson, Thomas Gaj, et al.Nucleic Acids Research|March 3, 2010
Directed evolution of recombinase specificity by split gene reassemblyCharles A Gersbach, Thomas Gaj, Russell M Gordley, et al.Pageof 21