Population Dynamics of Phage and Bacteria in Spatially Structured Habitats Using Phage λ and Escherichia coli
暂无分享,去创建一个
[1] I. Wang,et al. Holins: the protein clocks of bacteriophage infections. , 2000, Annual review of microbiology.
[2] K. Sneppen,et al. Minimal gene regulatory circuits that can count like bacteriophage lambda. , 2009, Journal of molecular biology.
[3] R. Collier,et al. Appendix: a model of plaque formation. , 1981, Gene.
[4] R. Novick,et al. The gene for toxic shock toxin is carried by a family of mobile pathogenicity islands in Staphylococcus aureus , 1998, Molecular microbiology.
[5] Sergei Maslov,et al. Well-temperate phage: optimal bet-hedging against local environmental collapses , 2013, Scientific Reports.
[6] Drew Endy,et al. Determination of cell fate selection during phage lambda infection , 2008, Proceedings of the National Academy of Sciences.
[7] François Taddei,et al. Viruses' Life History: Towards a Mechanistic Basis of a Trade-Off between Survival and Reproduction among Phages , 2006, PLoS biology.
[8] Markus W. Covert,et al. A Forward-Genetic Screen and Dynamic Analysis of Lambda Phage Host-Dependencies Reveals an Extensive Interaction Network and a New Anti-Viral Strategy , 2010, PLoS genetics.
[9] G. Thon,et al. Localization and properties of a silencing element near the mat3-M mating-type cassette of Schizosaccharomyces pombe. , 1999, Genetics.
[10] Kim Sneppen,et al. Why Do Phage Play Dice? , 2009, Journal of Virology.
[11] R. Hendrix,et al. Bacteriophage lambda PaPa: not the mother of all lambda phages. , 1992, Science.
[12] Jeffrey H. Miller. Experiments in molecular genetics , 1972 .
[13] E. Chapman-McQuiston,et al. On kinetics of phage adsorption. , 2007, Biophysical journal.
[14] Sylvain Moineau,et al. Bacteriophage resistance mechanisms , 2010, Nature Reviews Microbiology.
[15] Ido Golding,et al. Single-virus tracking reveals a spatial receptor-dependent search mechanism. , 2011, Biophysical journal.
[16] Roger W. Hendrix,et al. Phage Genomics Small Is Beautiful , 2002, Cell.
[17] J. Bull,et al. Phenotypic Resistance and the Dynamics of Bacterial Escape from Phage Control , 2014, PloS one.
[18] A. Lwoff. LYSOGENY , 1953 .
[19] Charles Nicholson,et al. Ion-selective microelectrodes and diffusion measurements as tools to explore the brain cell microenvironment , 1993, Journal of Neuroscience Methods.
[20] Daniel Campos,et al. Approximate solution to the speed of spreading viruses. , 2004, Physical review. E, Statistical, nonlinear, and soft matter physics.
[21] W. Whitman,et al. Prokaryotes: the unseen majority. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[22] A. L. Koch. The growth of viral plaques during the enlargement phase. , 1964, Journal of theoretical biology.
[23] F. M. Stewart,et al. Resource-Limited Growth, Competition, and Predation: A Model and Experimental Studies with Bacteria and Bacteriophage , 1977, The American Naturalist.
[24] F. M. Stewart,et al. The population biology of bacterial viruses: why be temperate. , 1984, Theoretical Population Biology.
[25] J. McCaskill,et al. Replication of viruses in a growing plaque: a reaction-diffusion model. , 1992, Biophysical journal.
[26] Matthew K. Waldor,et al. Lysogenic Conversion by a Filamentous Phage Encoding Cholera Toxin , 1996, Science.
[27] Eberhard O Voit,et al. Collective decision making in bacterial viruses. , 2008, Biophysical journal.
[28] M. P. Jackson,et al. Nucleotide sequence analysis and comparison of the structural genes for Shiga-like toxin I and Shiga-like toxin II encoded by bacteriophages from Escherichia coli 933 , 1987 .
[29] B. Kerr,et al. Local migration promotes competitive restraint in a host–pathogen 'tragedy of the commons' , 2006, Nature.
[30] Vicenç Méndez,et al. Time-delayed spread of viruses in growing plaques. , 2002, Physical review letters.
[31] S. Svenningsen,et al. A Quorum-Sensing-Induced Bacteriophage Defense Mechanism , 2013, mBio.
[32] Mark Ptashne,et al. A Genetic Switch, Phage Lambda Revisited , 2004 .
[33] A. D. Kaiser. Mutations in a temperate bacteriophage affecting its ability to lysogenize Escherichia coli. , 1957, Virology.
[34] A. Oppenheim,et al. Phage Lambda CIII: A Protease Inhibitor Regulating the Lysis-Lysogeny Decision , 2007, PloS one.
[35] C. Suttle. Marine viruses — major players in the global ecosystem , 2007, Nature Reviews Microbiology.
[36] L. You,et al. Amplification and spread of viruses in a growing plaque. , 1999, Journal of theoretical biology.
[37] Kim Sneppen,et al. Phage and bacteria support mutual diversity in a narrowing staircase of coexistence , 2014, The ISME Journal.
[38] J. Yin,et al. A quantifiable phenotype of viral propagation. , 1991, Biochemical and biophysical research communications.
[39] V. J. Freeman,et al. STUDIES ON THE VIRULENCE OF BACTERIOPHAGE-INFECTED STRAINS OF CORYNEBACTERIUM DIPHTHERIAE , 1951, Journal of bacteriology.
[40] P. Kourilsky,et al. Lysogenization by bacteriophage lambda. III. Multiplicity dependent phenomena occuring upon infection by lambda. , 1975, Biochimie.
[41] T. Thingstad. Elements of a theory for the mechanisms controlling abundance, diversity, and biogeochemical role of lytic bacterial viruses in aquatic systems , 2000 .
[42] Tin Yau Pang,et al. Recombinant transfer in the basic genome of Escherichia coli , 2015, Proceedings of the National Academy of Sciences.
[43] A. D. Kaiser. A genetic study of the temperate coliphage. , 1955, Virology.
[44] Forest Rohwer,et al. Here a virus, there a virus, everywhere the same virus? , 2005, Trends in microbiology.
[45] M. Belfort,et al. Isolation, characterization and deletion mapping of amber mutations in the cII gene of phage λ , 1975 .
[46] S. Altuvia,et al. Control of bacteriophage lambda CII activity by bacteriophage and host functions , 1984, Journal of bacteriology.
[47] M. Waldor,et al. Phage regulatory circuits and virulence gene expression. , 2005, Current opinion in microbiology.
[48] M. Belfort,et al. Activation of the lambda int gene by the cii and ciii gene products. , 1976, Virology.
[49] Kira S. Makarova,et al. Comparative genomics of defense systems in archaea and bacteria , 2013, Nucleic acids research.
[50] D. Zipser,et al. Inversion of the G DNA segment of phage Mu controls phage infectivity , 1978, Nature.
[51] L. Enquist,et al. Experimental Methods for Use with Lambda , 1983 .
[52] A. M. Pappenheimer. Diphtheria toxin. , 1952, Annual review of biochemistry.
[53] C. Nicholson,et al. Quantitative dual‐probe microdialysis: evaluation of [3H]mannitol diffusion in agar and rat striatum , 2002, Journal of neurochemistry.
[54] Allan Campbell,et al. CONDITIONS FOR THE EXISTENCE OF BACTERIOPHAGE , 1961 .
[55] Philippe Kourilsky,et al. Lysogenization by bacteriophage lambda , 1973, Molecular and General Genetics MGG.
[56] G. Christie,et al. Interactions between satellite bacteriophage P4 and its helpers. , 1990, Annual review of genetics.
[57] U. Qimron,et al. The Escherichia coli CRISPR System Protects from λ Lysogenization, Lysogens, and Prophage Induction , 2010, Journal of bacteriology.
[58] D. Court,et al. Switches in bacteriophage lambda development. , 2005, Annual review of genetics.
[59] Romain Gallet,et al. Effects of bacteriophage traits on plaque formation , 2011, BMC Microbiology.
[60] C. Nicholson,et al. Ion diffusion modified by tortuosity and volume fraction in the extracellular microenvironment of the rat cerebellum. , 1981, The Journal of physiology.
[61] F. Delsuc. Comparative Genomics , 2010, Lecture Notes in Computer Science.
[62] Kim Sneppen,et al. Coexistence of phage and bacteria on the boundary of self-organized refuges , 2012, Proceedings of the National Academy of Sciences.
[63] Nir Friedman,et al. Quantitative kinetic analysis of the bacteriophage λ genetic network , 2005 .
[64] S. Levin,et al. Coevolutionary arms races between bacteria and bacteriophage. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[65] Kim Sneppen,et al. Functional Alignment of Regulatory Networks: A Study of Temperate Phages , 2005, PLoS Comput. Biol..