Continuous Multiplexed Phage Genome Editing Using Recombitrons
暂无分享,去创建一个
S. L. Shipman | Seth L. Shipman | A. González-Delgado | Karen Zhang | Santi Bhattarai-Kline | C. Fishman | Kate D. Crawford
[1] Vivek K. Mutalik,et al. Phage therapy: From biological mechanisms to future directions , 2023, Cell.
[2] Vivek K. Mutalik,et al. Broad-spectrum CRISPR-Cas13a enables efficient phage genome editing , 2022, Nature Microbiology.
[3] Sam P. B. van Beljouw,et al. Approaches for bacteriophage genome engineering. , 2022, Trends in biotechnology.
[4] G. Zeller,et al. Bacterial retrons encode phage-defending tripartite toxin–antitoxin systems , 2022, Nature.
[5] F. Simmel,et al. Cell-free production of personalized therapeutic phages targeting multidrug-resistant bacteria. , 2022, Cell chemical biology.
[6] George M. Church,et al. Recording gene expression order in DNA by CRISPR addition of retron barcodes , 2021, Nature.
[7] S. L. Shipman,et al. Retron reverse transcriptase termination and phage defense are dependent on host RNase H1 , 2022, Nucleic acids research.
[8] Alan D. Lopez,et al. Global burden of bacterial antimicrobial resistance in 2019: a systematic analysis , 2022, The Lancet.
[9] S. L. Shipman,et al. Precise genome editing across kingdoms of life using retron-derived DNA , 2021, Nature Chemical Biology.
[10] P. Boulanger,et al. Strategies for Bacteriophage T5 Mutagenesis: Expanding the Toolbox for Phage Genome Engineering , 2021, Frontiers in Microbiology.
[11] Christopher J. Gregg,et al. Characterizing the portability of phage-encoded homologous recombination proteins , 2020, Nature Chemical Biology.
[12] Jonathan L. Schmid-Burgk,et al. Diverse enzymatic activities mediate antiviral immunity in prokaryotes , 2020, Science.
[13] R. Sorek,et al. Bacterial Retrons Function In Anti-Phage Defense , 2020, Cell.
[14] A. Górski,et al. Phage Therapy in Poland – a Centennial Journey to the First Ethically Approved Treatment Facility in Europe , 2020, Frontiers in Microbiology.
[15] Daniel B. Goodman,et al. High-throughput functional variant screens via in vivo production of single-stranded DNA , 2020, Proceedings of the National Academy of Sciences.
[16] Christopher J. Gregg,et al. Improved bacterial recombineering by parallelized protein discovery , 2020, Proceedings of the National Academy of Sciences.
[17] Ilya J. Finkelstein,et al. Retrons and their applications in genome engineering , 2019, Nucleic acids research.
[18] C. Richardson,et al. Gp2.5, the multifunctional bacteriophage T7 single-stranded DNA binding protein. , 2019, Seminars in cell & developmental biology.
[19] Barrett R. Morrow,et al. Retroelement-Based Genome Editing and Evolution. , 2018, ACS synthetic biology.
[20] Rotem Sorek,et al. Systematic discovery of antiphage defense systems in the microbial pangenome , 2018, Science.
[21] K. Datsenko,et al. The action of Escherichia coli CRISPR–Cas system on lytic bacteriophages with different lifestyles and development strategies , 2017, Nucleic acids research.
[22] J. O'Neill,et al. Tackling drug-resistant infections globally: final report and recommendations , 2016 .
[23] István Nagy,et al. A highly precise and portable genome engineering method allows comparison of mutational effects across bacterial species , 2016, Proceedings of the National Academy of Sciences.
[24] Haeyoung Jeong,et al. Complete Genome Sequence of Escherichia coli Strain BL21 , 2015, Genome Announcements.
[25] T. Lu,et al. Genomically encoded analog memory with precise in vivo DNA writing in living cell populations , 2014, Science.
[26] N. Costantino,et al. Location of the unique integration site on an Escherichia coli chromosome by bacteriophage lambda DNA in vivo , 2014, Proceedings of the National Academy of Sciences.
[27] István Nagy,et al. Conditional DNA repair mutants enable highly precise genome engineering , 2014, Nucleic acids research.
[28] U. Qimron,et al. Efficient engineering of a bacteriophage genome using the type I-E CRISPR-Cas system , 2014, RNA biology.
[29] S. Werten. Identification of the ssDNA-binding protein of bacteriophage T5 , 2013, Bacteriophage.
[30] Peter Uetz,et al. The protein interaction map of bacteriophage lambda , 2011, BMC Microbiology.
[31] G. Church,et al. Lambda Red Recombineering in Escherichia coli Occurs Through a Fully Single-Stranded Intermediate , 2010, Genetics.
[32] M. Lewis,et al. The bacteriophage lambda CI protein finds an asymmetric solution. , 2009, Current opinion in structural biology.
[33] M. Piuri,et al. BRED: A Simple and Powerful Tool for Constructing Mutant and Recombinant Bacteriophage Genomes , 2008, PloS one.
[34] H. Seitz,et al. Bacteriophage replication modules. , 2006, FEMS microbiology reviews.
[35] B. Wanner,et al. One-step inactivation of chromosomal genes in Escherichia coli K-12 using PCR products. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[36] L. Enquist,et al. Downstream regulation of int gene expression by the b2 region in phage lambda. , 1981, Gene.
[37] H. Delius,et al. Multiple origins and circular structures in replicating T5 bacteriophage DNA , 1976, Journal of virology.
[38] D. Dressler,et al. Bacteriophage T7 DNA replication: a linear replicating intermediate (gradient centrifugation-electron microscopy-E. coli-DNA partial denaturation). , 1972, Proceedings of the National Academy of Sciences of the United States of America.
[39] E. Lingohr,et al. Enumeration of bacteriophages using the small drop plaque assay system. , 2009, Methods in molecular biology.
[40] L. Fortier,et al. Phage production and maintenance of stocks, including expected stock lifetimes. , 2009, Methods in molecular biology.
[41] E. Lingohr,et al. Enumeration of bacteriophages by double agar overlay plaque assay. , 2009, Methods in molecular biology.