The site-specific integration reaction of Listeria phage A118 integrase, a serine recombinase
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Reid C. Johnson | N. Avliyakulov | Sridhar Mandali | Nuraly K Avliyakulov | Reid C Johnson | Sridhar Mandali | Gautam Dhar | Michael J Haykinson | M. Haykinson | Gautam Dhar
[1] Jamie Rossjohn,et al. Identification of the Structural and Functional Domains of the Large Serine Recombinase TnpX from Clostridium perfringens* , 2005, Journal of Biological Chemistry.
[2] K. Mouw,et al. Architecture of a Serine Recombinase-DNA Regulatory Complex , 2008, Molecular cell.
[3] Graham F Hatfull,et al. Integration and excision by the large serine recombinase φRv1 integrase , 2005, Molecular microbiology.
[4] P. Yuan,et al. Tetrameric structure of a serine integrase catalytic domain. , 2008, Structure.
[5] Margaret C. M. Smith,et al. Diversity in the serine recombinases , 2002, Molecular microbiology.
[6] Margaret C. M. Smith,et al. In vitro site-specific integration of bacteriophage DNA catalyzed by a recombinase of the resolvase/invertase family. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[7] T. Steitz,et al. The crystal structure of the catalytic domain of the site-specific recombination enzyme gamma delta resolvase at 2.7 A resolution. , 1990, Cell.
[8] D. Portnoy,et al. Construction, Characterization, and Use of Two Listeria monocytogenes Site-Specific Phage Integration Vectors , 2002, Journal of bacteriology.
[9] Reid C. Johnson,et al. Intrasubunit and intersubunit interactions controlling assembly of active synaptic complexes during Hin-catalyzed DNA recombination. , 2011, Journal of molecular biology.
[10] Graham F Hatfull,et al. Synapsis in phage Bxb1 integration: selection mechanism for the correct pair of recombination sites. , 2005, Journal of molecular biology.
[11] Makoto Shirai,et al. In vivo and in vitro characterization of site-specific recombination of actinophage R4 integrase. , 2011, The Journal of general and applied microbiology.
[12] M. Komatsu,et al. In vitro characterization of the site-specific recombination system based on actinophage TG1 integrase , 2009, Molecular Genetics and Genomics.
[13] Milind Gupta,et al. Sequences in attB that affect the ability of ϕC31 integrase to synapse and to activate DNA cleavage , 2007, Nucleic acids research.
[14] Reid C. Johnson,et al. The Hin dimer interface is critical for Fis-mediated activation of the catalytic steps of site-specific DNA inversion , 1996, Current Biology.
[15] K. Hammer,et al. Resolvase-like recombination performed by the TP901-1 integrase. , 2001, Microbiology.
[16] Phoebe A Rice,et al. Structural basis for catalytic activation of a serine recombinase. , 2011, Structure.
[17] Recombining DNA by protein swivels. , 2011, Structure.
[18] Margaret C. M. Smith,et al. A phage protein that binds φC31 integrase to switch its directionality , 2011, Molecular microbiology.
[19] Reid C. Johnson,et al. Architecture of the Hin Synaptic Complex during Recombination The Recombinase Subunits Translocate with the DNA Strands , 2004, Cell.
[20] N. Grindley,et al. Mechanisms of site-specific recombination. , 2003, Annual review of biochemistry.
[21] G. D. Duyne. A structural view of cre-loxp site-specific recombination. , 2001 .
[22] F. Neidhardt,et al. Culture Medium for Enterobacteria , 1974, Journal of bacteriology.
[23] Reid C. Johnson,et al. Mechanical constraints on Hin subunit rotation imposed by the Fis/enhancer system and DNA supercoiling during site-specific recombination. , 2009, Molecular cell.
[24] Paul A. Rowley,et al. A motif in the C-terminal domain of ϕC31 integrase controls the directionality of recombination , 2008, Nucleic acids research.
[25] C. Branda,et al. Talking about a revolution: The impact of site-specific recombinases on genetic analyses in mice. , 2004, Developmental cell.
[26] Andrew R McEwan,et al. Site-specific recombination by phiC31 integrase and other large serine recombinases. , 2010, Biochemical Society transactions.
[27] D. Sherratt,et al. Site-specific recombination by Tn3 resolvase: Topological changes in the forward and reverse reactions , 1989, Cell.
[28] B. Sauer. Site-specific recombination: developments and applications. , 1994, Current opinion in biotechnology.
[29] T. Steitz,et al. Crystal structure of the site-specific recombinase gamma delta resolvase complexed with a 34 bp cleavage site. , 1996, Cell.
[30] Eric C. Olivares,et al. A phage integrase directs efficient site-specific integration in human cells. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[31] G. S. Manning. The molecular theory of polyelectrolyte solutions with applications to the electrostatic properties of polynucleotides , 1978, Quarterly Reviews of Biophysics.
[32] O. Byron,et al. Solution structure of the Tn3 resolvase-crossover site synaptic complex. , 2004, Molecular cell.
[33] Yong Xiong,et al. Structure of a synaptic gammadelta resolvase tetramer covalently linked to two cleaved DNAs. , 2005, Science.
[34] T. Steitz,et al. The crystal structure of the catalytic domain of the site-specific recombination enzyme γδ resolvase at 2.7 Å resolution , 1990, Cell.
[35] Paul A. Rowley,et al. DNA binding and synapsis by the large C-terminal domain of ϕC31 integrase , 2009, Nucleic acids research.
[36] M Frank-Kamenetskii,et al. Conformational and thermodynamic properties of supercoiled DNA. , 1992, Journal of molecular biology.
[37] Michele P Calos,et al. Phage integrases: biology and applications. , 2004, Journal of molecular biology.
[38] N. Grindley. The Movement of Tn3-Like Elements: Transposition and Cointegrate Resolution , 2002 .
[39] Andrea Raab,et al. Zinc is essential for high-affinity DNA binding and recombinase activity of φC31 integrase , 2011, Nucleic acids research.
[40] Wei Yang,et al. Crystal structure of the site-specific recombinase γδ resolvase complexed with a 34 by cleavage site , 1995, Cell.
[41] Reid C. Johnson,et al. The Hin recombinase assembles a tetrameric protein swivel that exchanges DNA strands , 2009, Nucleic acids research.
[42] Xiaoming Ding,et al. Highly Efficient In Vitro Site-Specific Recombination System Based on Streptomyces Phage φBT1 Integrase , 2008, Journal of bacteriology.
[43] P. Herron,et al. Mobile DNA II , 2004, Heredity.
[44] Jay D. Gralla,et al. DNA dynamic flexibility and protein recognition: Differential stimulation by bacterial histone-like protein HU , 1988, Cell.
[45] Phoebe A Rice,et al. New insight into site-specific recombination from Flp recombinase-DNA structures. , 2003, Annual review of biophysics and biomolecular structure.
[46] Jason J. Hoyt,et al. A diversity of serine phage integrases mediate site-specific recombination in mammalian cells , 2006, Molecular Genetics and Genomics.
[47] J. Rossjohn,et al. Two distinct regions of the large serine recombinase TnpX are required for DNA binding and biological function , 2006, Molecular microbiology.
[48] G. V. Van Duyne,et al. A structural view of cre-loxp site-specific recombination. , 2001, Annual review of biophysics and biomolecular structure.
[49] R C Johnson,et al. Intermediates in Hin‐mediated DNA inversion: a role for Fis and the recombinational enhancer in the strand exchange reaction. , 1989, The EMBO journal.
[50] Reid C. Johnson. Bacterial Site-Specific DNA Inversion Systems , 2002 .
[51] D. Endy,et al. Rewritable digital data storage in live cells via engineered control of recombination directionality , 2012, Proceedings of the National Academy of Sciences.
[52] M. Loessner,et al. Complete nucleotide sequence, molecular analysis and genome structure of bacteriophage A118 of Listeria monocytogenes : implications for phage evolution , 2000, Molecular microbiology.
[53] Alan M. Lambowitz,et al. Mobile DNA III , 2002 .
[54] G. Hatfull,et al. The orientation of mycobacteriophage Bxb1 integration is solely dependent on the central dinucleotide of attP and attB. , 2003, Molecular cell.
[55] Yong Xiong,et al. Structure of a Synaptic γδ Resolvase Tetramer Covalently Linked to Two Cleaved DNAs , 2005, Science.
[56] K. Hammer,et al. Novel Organization of Genes Involved in Prophage Excision Identified in the Temperate Lactococcal Bacteriophage TP901-1 , 1999, Journal of bacteriology.