A genome-wide cytotoxicity screen of Cluster F1 mycobacteriophage Girr reveals novel inhibitors of Mycobacterium smegmatis growth
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R. Pollenz | V. Carter | Michael Chase | Louis Otero | Emma L. Stewart | John C. Bland | Danielle Heller | Sydney Miller | Sydni Schlosser | Caitlyn Coleman | Ryan T. Morgan | Rajvi N. Thakkar | Kaylee Barnhill | Abbigail Biggs | Hayley Clark | M. Daffner | Caitlyn J. Deam | Alyssa Finocchiaro | V. Franco | Thomas Fuller | Juan Gallardo Pinera | Mae E. Horne | Zoe Howard | Olivia Kanahan | Chris M. Miklaszewski | Oluwatobi Onalaja | Shivani Padhye | Emily Rainey | Fareed Rasul | Alexandra Rodier | A. Sciacchitano
[1] J. Ren,et al. Bacteriophages inhibit and evade cGAS-like immune function in bacteria , 2023, Cell.
[2] R. Pollenz,et al. Bioinformatic characterization of endolysins and holin-like membrane proteins in the lysis cassette of phages that infect Gordonia rubripertincta , 2022, PloS one.
[3] Steven G. Cresawn,et al. PhaMMseqs: a new pipeline for constructing phage gene phamilies using MMseqs2 , 2022, G3.
[4] Gil Amitai,et al. Discovery of phage determinants that confer sensitivity to bacterial immune systems , 2022, Cell.
[5] D. Mavrodi,et al. Systematic overexpression of genes encoded by mycobacteriophage Waterfoul reveals novel inhibitors of mycobacterial growth , 2022, G3.
[6] Gil Amitai,et al. An expanding arsenal of immune systems that protect bacteria from phages , 2022, bioRxiv.
[7] A. Tivey,et al. Search and sequence analysis tools services from EMBL-EBI in 2022 , 2022, Nucleic Acids Res..
[8] Konstantinos D. Tsirigos,et al. DeepTMHMM predicts alpha and beta transmembrane proteins using deep neural networks , 2022, bioRxiv.
[9] M. Laub,et al. Toxin-Antitoxin Systems as Phage Defense Elements. , 2022, Annual review of microbiology.
[10] Gil Amitai,et al. Cyclic CMP and cyclic UMP mediate bacterial immunity against phages , 2021, Cell.
[11] G. Hatfull,et al. Toward a Phage Cocktail for Tuberculosis: Susceptibility and Tuberculocidal Action of Mycobacteriophages against Diverse Mycobacterium tuberculosis Strains , 2021, mBio.
[12] Johannes Söding,et al. Protein Sequence Analysis Using the MPI Bioinformatics Toolkit , 2020, Current protocols in bioinformatics.
[13] G. Hatfull. Actinobacteriophages: Genomics, Dynamics, and Applications. , 2020, Annual review of virology.
[14] G. Hatfull,et al. Identification of mycobacteriophage toxic genes reveals new features of mycobacterial physiology and morphology , 2020, Scientific Reports.
[15] P. C. Fineran,et al. The arms race between bacteria and their phage foes , 2020, Nature.
[16] R. Schooley,et al. Engineered bacteriophages for treatment of a patient with a disseminated drug resistant Mycobacterium abscessus , 2019, Nature Medicine.
[17] G. Hatfull,et al. More Evidence of Collusion: a New Prophage-Mediated Viral Defense System Encoded by Mycobacteriophage Sbash , 2019, mBio.
[18] G. Hatfull,et al. Yet More Evidence of Collusion: a New Viral Defense System Encoded by Gordonia Phage CarolAnn , 2019, mBio.
[19] G. Hatfull,et al. Mycobacteriophage ZoeJ: A broad host-range close relative of mycobacteriophage TM4. , 2019, Tuberculosis.
[20] G. Hatfull. Mycobacteriophages. , 2018, Microbiology spectrum.
[21] Maria João Catalão,et al. Mycobacteriophage Lysis Enzymes: Targeting the Mycobacterial Cell Envelope , 2018, Viruses.
[22] G. Hatfull,et al. Mycobacteriophage Fruitloop gp52 inactivates Wag31 (DivIVA) to prevent heterotypic superinfection , 2018, Molecular microbiology.
[23] Steven G. Cresawn,et al. Genome Sequences of Mycobacteriophages Amgine, Amohnition, Bella96, Cain, DarthP, Hammy, Krueger, LastHope, Peanam, PhelpsODU, Phrank, SirPhilip, Slimphazie, and Unicorn , 2017, Genome Announcements.
[24] P. Uetz,et al. Virus-host protein-protein interactions of mycobacteriophage Giles , 2017, Scientific Reports.
[25] Travis N. Mavrich,et al. Bacteriophages of Gordonia spp. Display a Spectrum of Diversity and Genetic Relationships , 2017, mBio.
[26] Graham F. Hatfull,et al. PhagesDB: the actinobacteriophage database , 2017, Bioinform..
[27] Courtney J. Robinson,et al. Prophage-mediated defence against viral attack and viral counter-defence , 2017, Nature Microbiology.
[28] Whole genome? , 2015, Nature Genetics.
[29] T. Pupko,et al. Revealing bacterial targets of growth inhibitors encoded by bacteriophage T7 , 2014, Proceedings of the National Academy of Sciences.
[30] C. Richardson,et al. Genetic Requirements for Sensitivity of Bacteriophage T7 to Dideoxythymidine , 2014, Journal of bacteriology.
[31] K. Pogliano,et al. Functional requirements for bacteriophage growth: gene essentiality and expression in mycobacteriophage Giles , 2013, Molecular microbiology.
[32] Y. Chawla,et al. Development of a New Generation of Vectors for Gene Expression, Gene Replacement, and Protein-Protein Interaction Studies in Mycobacteria , 2013, Applied and Environmental Microbiology.
[33] C. Richardson,et al. Characterization of a Nucleotide Kinase Encoded by Bacteriophage T7* , 2012, The Journal of Biological Chemistry.
[34] G. Hatfull,et al. Mycobacteriophage Endolysins: Diverse and Modular Enzymes with Multiple Catalytic Activities , 2012, PloS one.
[35] Graham F. Hatfull,et al. Phamerator: a bioinformatic tool for comparative bacteriophage genomics , 2011, BMC Bioinformatics.
[36] J. Moniz-Pereira,et al. A Second Endolysin Gene Is Fully Embedded In-Frame with the lysA Gene of Mycobacteriophage Ms6 , 2011, PloS one.
[37] L. Eggeling,et al. The cytotoxic early protein 77 of mycobacteriophage L5 interacts with MSMEG_3532, an L‐serine dehydratase of Mycobacterium smegmatis , 2011, Journal of basic microbiology.
[38] J. Rybniker,et al. Insights into the function of the WhiB‐like protein of mycobacteriophage TM4 – a transcriptional inhibitor of WhiB2 , 2010, Molecular microbiology.
[39] Graham F Hatfull,et al. Mycobacteriophage Lysin B is a novel mycolylarabinogalactan esterase , 2009, Molecular microbiology.
[40] J. Rybniker,et al. Identification of three cytotoxic early proteins of mycobacteriophage L5 leading to growth inhibition in Mycobacterium smegmatis. , 2008, Microbiology.
[41] C. Richardson,et al. Gene 1.7 of bacteriophage T7 confers sensitivity of phage growth to dideoxythymidine , 2008, Proceedings of the National Academy of Sciences.
[42] Samuel Wagner,et al. Rationalizing membrane protein overexpression. , 2006, Trends in biotechnology.
[43] Sabine Ehrt,et al. Controlling gene expression in mycobacteria with anhydrotetracycline and Tet repressor , 2005, Nucleic acids research.
[44] J. Pelletier,et al. Antimicrobial drug discovery through bacteriophage genomics , 2004, Nature Biotechnology.
[45] W. Jacobs,et al. Origins of Highly Mosaic Mycobacteriophage Genomes , 2003, Cell.
[46] J. Walker,et al. Over-production of proteins in Escherichia coli: mutant hosts that allow synthesis of some membrane proteins and globular proteins at high levels. , 1996, Journal of molecular biology.