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Current Protocols in Molecular Biology|April 16, 2014
Recombineering: genetic engineering in bacteria using homologous recombinationLynn C Thomason, James A Sawitzke, Xintian Li, et al.International Journal of Clinical Practice. Supplement|July 9, 2011
Transforming growth factor signalling: a common pathway in pulmonary arterial hypertension and systemic sclerosisN Hatton, T Frech, B Smith, et al.Molecular Microbiology|May 3, 2013
Bacterial DNA polymerases participate in oligonucleotide recombinationXin-tian Li, Lynn C Thomason, James A Sawitzke, et al.Journal of Pediatric Gastroenterology and Nutrition|July 15, 2000
Celiac disease and human leukocyte antigen genotype: accuracy of diagnosis in self-diagnosed individuals, dosage effect, and sibling riskC Lewis, L Book, J Black, et al.Methods in Enzymology|November 5, 2013
Recombineering: using drug cassettes to knock out genes in vivoJames A Sawitzke, Lynn C Thomason, Mikhail Bubunenko, et al.Nucleic Acids Research|November 9, 2013
Positive and negative selection using the tetA-sacB cassette: recombineering and P1 transduction in Escherichia coliXin-Tian Li, Lynn C Thomason, James A Sawitzke, et al.Journal of Bacteriology|April 12, 2002
Transcriptional interference by a complex formed at the centromere-like partition site of plasmid P1James A Sawitzke, Yongfang Li, Kirill Sergueev, et al.Methods in Enzymology|March 14, 2007
Recombineering: in vivo genetic engineering in E. coli, S. enterica, and beyondJames A Sawitzke, Lynn C Thomason, Nina Costantino, et al.Methods in Enzymology|November 5, 2013
Recombineering: highly efficient in vivo genetic engineering using single-strand oligosJames A Sawitzke, Lynn C Thomason, Mikhail Bubunenko, et al.Plasmid|January 19, 2012
The segregation of Escherichia coli minichromosomes constructed in vivo by recombineeringJames A Sawitzke, Brenda Youngren, Lynn C Thomason, et al.Pageof 3