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  1. 1.   Sequencing-based functional assays for classification of BRCA2 variants in mouse ESCs
  2. Biswas,Kajal; Mitrophanov,Alex; Sahu,Sounak; Sullivan,Teresa; Southon,Eileen; Nousome,Darryl; Reid, Susan; Narula, Sakshi; Smolen, Julia; Sengupta, Trisha; Riedel-Topper, Maximilian; Kapoor, Medha; Babbar, Anav; Stauffer,Stacey; Cleveland, Linda; Tandon, Mayank; Malys,Tyler; Sharan,Shyam
  3. Cell Reports Methods. 2023, Nov 20; 3(11): 100628.
  1. 2.   Recombineering: Genetic Engineering in Escherichia coli Using Homologous Recombination
  2. Thomason,Lynn; Costantino, Nina; Li, Xintian; Court,Don
  3. Current Protocols. 2023, Feb; 3(2): e656.
  1. 3.   Recombineering in Non-Model Bacteria
  2. Corts, Anna; Thomason,Lynn; Costantino, Nina; Court,Don
  3. Current Protocols. 2022, Dec; 2(12): e605.
  1. 4.   ? Recombineering Used to Engineer the Genome of Phage T7
  2. Jensen, Jordan D; Parks, Adam R; Adhya, Sankar; Rattray,Alison; Court,Don
  3. Antibiotics (Basel, Switzerland). 2020, Nov 13; 9(11): pii: E805.
  1. 5.   Efficient and Precise Genome Editing in Shewanella with Recombineering and CRISPR/Cas9-Mediated Counter-Selection
  2. Corts, Anna D.; Thomason,Lynn; Gill, Ryan T.; Gralnick, Jeffrey A.
  3. ACS SYNTHETIC BIOLOGY. 2019, Aug; 8(8): 1877-1889.
  1. 6.   Characterization of transgenic mice expressing cancer-associated variants of human NOTCH1
  2. Berquam-Vrieze, K. E.; Swing, D. A.; Tessarollo, L.; Dupuy, A. J.
  3. Genesis. 2012, Feb; 50(2): 112-118.
  1. 7.   Transgenic mice expressing Cre-recombinase specifically in retinal rod bipolar neurons
  2. Zhang, X. M.; Chen, B. Y.; Ng, A. H. L.; Tanner, J. A.; Tay, D.; So, K. F.; Rachel, R. A.; Copeland, N. G.; Jenkins, N. A.; Huang, J. D.
  3. Investigative Ophthalmology & Visual Science. 2005, OCT; 46(10): 3515-3520.
  1. 8.   Simple and highly efficient BAC recombineering using gaIK selection
  2. Warming, S.; Costantino, N.; Court, D. L.; Jenkins, N. A.; Copeland, N. G.
  3. Nucleic Acids Research. 2005 33(4, Art. No. e36):
  1. 9.   Highly restricted expression cerebellar Purkinje cells
  2. Zhang, X. M.; Ng, A. H. L.; Tanner, J. A.; Wu, W. T.; Copeland, N. G.; Jenkins, N. A.; Huang, J. D.
  3. Genesis. 2004, SEP; 40(1): 45-51.
  1. 10.   In vivo recombineering of bacteriophage lambda by PCR fragments and single-strand oligonucleotides
  2. Oppenheim, A. B.; Rattray, A. J.; Bubunenko, M.; Thomason, L. C.; Court, D. L.
  3. Virology. 2004 319(2): 185-189.
  1. 11.   Mini-lambda: a tractable system for chromosome and BAC engineering
  2. Court, D. L.; Swaminathan, S.; Yu, D. G.; Wilson, H.; Baker, T.; Bubunenko, M.; Sawitzke, J.; Sharan, S. K.
  3. Gene. 2003 315: 63-69.
  1. 12.   Enhanced levels of lambda red-mediated recombinants in mismatch repair mutants
  2. Costantino, N.; Court, D. L.
  3. Proceedings of the National Academy of Sciences of the United States of America. 2003 100(26): 15748-15753.
  1. 13.   E-coli cell-cycle regulation by bacteriophage lambda
  2. Sergueev, K.; Court, D.; Reaves, L.; Austin, S.
  3. Journal of Molecular Biology. 2002 324(2): 297-307.
  1. 14.   Genetic engineering using homologous recombination
  2. Court, D. L.; Sawitzke, J. A.; Thomason, L. C.
  3. Annual Review of Genetics. 2002 36: 361-388.
  1. 15.   Manipulating the Mouse Genome Using Recombineering
  2. Biswas,Kajal; Sharan,Shyam
  3. Advancements in genetic engineering. 2013 2(2): pii: 108. .
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