Bacteriophages and Bacterial Plant Diseases
暂无分享,去创建一个
Aidan Coffey | Olivia McAuliffe | Colin Hill | S. Abedon | R. P. Ross | C. Hill | A. Coffey | O. McAuliffe | J. O'mahony | Colin Buttimer | Jim O’Mahony | Colin Buttimer | R. Ross | J. O'Mahony | R. Ross | C. Hill | Benjamin K Chan | Robert Czajkowski | Buttimer C Mcauliffe | Ross Rp | Hill C O 'mahony | Coffey A | Jim O 'mahony | R. Ross | C. Hill | Benjamin K. Chan | Jim O 'mahony | C. Hill
[1] W. Whitman,et al. Perspective Prokaryotes : The unseen majority , 1998 .
[2] F. Twort. AN INVESTIGATION ON THE NATURE OF ULTRA-MICROSCOPIC VIRUSES. , 1915 .
[3] Z. Orosz-Kovács,et al. The nectary as the primary site of infection by Erwinia amylovora (Burr.) Winslow et al.: a mini review , 2003, Plant Systematics and Evolution.
[4] S. Williams,et al. The Effect of pH on Soil Actinophage , 1981 .
[5] W. Wechter,et al. “Light-tagged” bacteriophage as a diagnostic tool for the detection of phytopathogens , 2013, Bioengineered.
[6] John T. Wilson,et al. Effect of surfactants on the survival and sorption of viruses. , 2002, Environmental science & technology.
[7] M. Das,et al. Control of Pierce's Disease by Phage , 2015, PloS one.
[8] A. Obradović,et al. Improved Efficacy of Newly Formulated Bacteriophages for Management of Bacterial Spot on Tomato. , 2003, Plant disease.
[9] C. Lu,et al. Sub-lethal exposure to neonicotinoids impaired honey bees winterization before proceeding to colony collapse disorder , 2014 .
[10] B. McDonald,et al. Pathogen population genetics, evolutionary potential, and durable resistance. , 2002, Annual review of phytopathology.
[11] Takashi Yamada,et al. Loss of virulence of the phytopathogen Ralstonia solanacearum through infection by φRSM filamentous phages. , 2012, Phytopathology.
[12] K. Evans,et al. Distribution and economic importance , 1998 .
[13] T. H. Smits,et al. Diversity, Evolution, and Functionality of Clustered Regularly Interspaced Short Palindromic Repeat (CRISPR) Regions in the Fire Blight Pathogen Erwinia amylovora , 2011, Applied and Environmental Microbiology.
[14] N. Piqué,et al. Virulence Factors of Erwinia amylovora: A Review , 2015, International journal of molecular sciences.
[15] S. H. Boer. Blackleg of potato , 2004 .
[16] L. Marraffini,et al. CRISPR Interference Limits Horizontal Gene Transfer in Staphylococci by Targeting DNA , 2008, Science.
[17] G. Vallad,et al. Soil-based systemic delivery and phyllosphere in vivo propagation of bacteriophages , 2012, Bacteriophage.
[18] G. Stotzky,et al. Adsorption of coliphages T1 and T7 to clay minerals , 1982, Applied and environmental microbiology.
[19] K. Toyota,et al. Recent Trends in Control Methods for Bacterial Wilt Diseases Caused by Ralstonia solanacearum , 2015, Microbes and environments.
[20] K. Severinov,et al. Analysis of CRISPR system function in plant pathogen Xanthomonas oryzae. , 2009, FEMS microbiology letters.
[21] Eunjung Roh,et al. Biocontrol of Pectobacterium carotovorum subsp. carotovorum using bacteriophage PP1. , 2013, Journal of microbiology and biotechnology.
[22] E. Lojkowska,et al. Occurrence of Pectobacterium wasabiae in potato field samples , 2013, European Journal of Plant Pathology.
[23] Alan L. Jones,et al. Fire Blight Management in the Twenty-first Century: Using New Technologies that Enhance Host Resistance in Apple. , 2003, Plant disease.
[24] M. López,et al. Survival Strategy of Erwinia amylovora against Copper: Induction of the Viable-but-Nonculturable State , 2006, Applied and Environmental Microbiology.
[25] H. Lee,et al. Biocontrol potential of a lytic bacteriophage PE204 against bacterial wilt of tomato. , 2012, Journal of microbiology and biotechnology.
[26] M. H. Ahmad,et al. Characterization of a cowpea (Vigna unguiculata) rhizobiophage and its effect on cowpea nodulation and growth , 1994, Biology and Fertility of Soils.
[27] C. Suttle. The significance of viruses to mortality in aquatic microbial communities , 1994, Microbial Ecology.
[28] Luanne Lohr,et al. FACTORS AFFECTING INTERNATIONAL DEMAND AND TRADE IN ORGANIC FOOD PRODUCTS , 2000 .
[29] D. Mcphail,et al. COPPER ACCUMULATION DISTRIBUTION AND FRACTIONATION IN VINEYARD SOIL OF VICTORIA , 2004 .
[30] G. Salmond,et al. Evaluation of phenotypic and molecular typing techniques for determining diversity in Erwinia carotovora subsp. atroseptica , 1999, Journal of applied microbiology.
[31] T. Blom,et al. Bacteriophages and the control of Erwinia carotovora subsp. carotovora , 2007 .
[32] J. A. Veen,et al. Control of blackleg and tuber soft rot of potato caused by Pectobacterium and Dickeya species: a review. , 2011 .
[33] J. Mergaert,et al. Phylogenetic position of phytopathogens within the Enterobacteriaceae. , 1998, Systematic and applied microbiology.
[34] P. Marrone. The Market and Potential for Biopesticides , 2014 .
[35] K. Geider,et al. Tasmancin and lysogenic bacteriophages induced from Erwinia tasmaniensis strains. , 2012, Microbiological research.
[36] J. M. Hirst,et al. COPPER ACCUMULATION IN THE SOILS OF APPLE ORCHARDS NEAR WISBECH , 1961 .
[37] Jinyun Li,et al. Foliar application of biofilm formation-inhibiting compounds enhances control of citrus canker caused by Xanthomonas citri subsp. citri. , 2014, Phytopathology.
[38] H. Ackermann,et al. 5500 Phages examined in the electron microscope , 2007, Archives of Virology.
[39] Ann Oakley,et al. Living in two worlds , 1998 .
[40] S. Lerbs-Mache,et al. Functional Analysis of Two Maize cDNAs Encoding T7-like RNA Polymerases , 1999, Plant Cell.
[41] T. Denny. Plant pathogenic Ralstonia species , 2007 .
[42] P. R. Scott,et al. Plant disease: a threat to global food security. , 2005, Annual review of phytopathology.
[43] W.-S. Kim,et al. Control of the fire blight pathogen with bacteriophages. , 2006 .
[44] C. Allen,et al. Diversity and distribution of Ralstonia solanacearum strains in Guatemala and rare occurrence of tomato fruit infection , 2008 .
[45] A. Simao-Beaunoir,et al. Genetic and physiological determinants of Streptomyces scabies pathogenicity. , 2009, Molecular plant pathology.
[46] A. Obradović,et al. XYLELLA FASTIDIOSA: ITS BIOLOGY, DIAGNOSIS, CONTROL AND RISKS , 2010 .
[47] C. Gerba,et al. Comparative adsorption of human enteroviruses, simian rotavirus, and selected bacteriophages to soils , 1979, Applied and environmental microbiology.
[48] T. Börner,et al. Mitochondrial and chloroplast phage-type RNA polymerases in Arabidopsis. , 1997, Science.
[49] D. Ritchie,et al. Copper- and streptomycin-resistant strains and host differentiated races of Xanthomonas campestris pv. vesicatoria in North Carolina. , 1991 .
[50] C. Gerba,et al. Persistence of Viruses in Desert Soils Amended with Anaerobically Digested Sewage Sludge , 1992, Applied and environmental microbiology.
[51] M. Sasser,et al. Prevention - the key to controlling bacterial spot and bacterial speck of tomato. , 1980 .
[52] D. Mcphail,et al. Copper accumulation, distribution and fractionation in vineyard soils of Victoria, Australia , 2004 .
[53] M. Loessner,et al. The tail-associated depolymerase of Erwinia amylovora phage L1 mediates host cell adsorption and enzymatic capsule removal, which can enhance infection by other phage. , 2014, Environmental microbiology.
[54] Kabir P. Tumber,et al. Pierce's disease costs California $104 million per year , 2014 .
[55] W. Whitman,et al. Prokaryotes: the unseen majority. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[56] Takashi Yamada. Filamentous phages of Ralstonia solanacearum: double-edged swords for pathogenic bacteria , 2013, Front. Microbiol..
[57] Adrian Ponce León Door,et al. Detection of streptomycin resistance in Erwinia amylovora strains isolated from apple orchards in Chihuahua, Mexico , 2013 .
[58] 田中 博,et al. Control of tobacco bacterial wilt by an avirulent strain of Pseudomonas solanacearum M4S and its bacteriophage. , 1990 .
[59] R. Czajkowskiab,et al. Control of blackleg and tuber soft rot of potato caused by Pectobacterium and Dickeya species : a review , 2011 .
[60] Takashi Yamada,et al. Characterization of Bacteriophages Cp1 and Cp2, the Strain-Typing Agents for Xanthomonas axonopodis pv. citri , 2013, Applied and Environmental Microbiology.
[61] A. Obradović,et al. Management of Tomato Bacterial Spot in the Field by Foliar Applications of Bacteriophages and SAR Inducers. , 2004, Plant disease.
[62] S. S. Hirano,et al. Population Biology and Epidemiology of Pseudomonas Syringae , 1990 .
[63] H. Mahler,et al. Chelating agent shock of bacteriophage T5. , 1968, Journal of virology.
[64] E. Lojkowska,et al. Genomic, Proteomic and Morphological Characterization of Two Novel Broad Host Lytic Bacteriophages ΦPD10.3 and ΦPD23.1 Infecting Pectinolytic Pectobacterium spp. and Dickeya spp. , 2015, PloS one.
[65] N. Schaad,et al. Bacterial spot - worldwide distribution, importance and review. , 2005 .
[66] D. Hopkins,et al. Xylella fastidiosa: Cause of Pierce's Disease of Grapevine and Other Emergent Diseases. , 2002, Plant disease.
[67] S. Abedon,et al. Bacteriophage prehistory , 2011, Bacteriophage.
[68] Adrian Ponce de León Door,et al. Detection of streptomycin resistance in Erwinia amylovora strains isolated from apple orchards in Chihuahua, Mexico , 2013, European Journal of Plant Pathology.
[69] M. Brunner,et al. Bacteriophage Release in a Lysogenic Strain of Agrobacterium tumefaciens , 1969, Journal of virology.
[70] G. Salmond,et al. Viral Evasion of a Bacterial Suicide System by RNA–Based Molecular Mimicry Enables Infectious Altruism , 2012, PLoS genetics.
[71] J. Vanneste. Fire Blight: The Disease and its Causative Agent, Erwinia amylovora , 2000 .
[72] C. Bender,et al. The phytotoxin coronatine from Pseudomonas syringae pv. tomato DC3000 functions as a virulence factor and influences defence pathways in edible brassicas. , 2007, Molecular plant pathology.
[73] J. M. Dow,et al. Pathogenomics of Xanthomonas: understanding bacterium–plant interactions , 2011, Nature Reviews Microbiology.
[74] G. Salmond,et al. Exploitation of a new flagellatropic phage of Erwinia for positive selection of bacterial mutants attenuated in plant virulence: towards phage therapy , 2010, Journal of applied microbiology.
[75] G. Sundin,et al. Cell Surface Attachment Structures Contribute to Biofilm Formation and Xylem Colonization by Erwinia amylovora , 2011, Applied and Environmental Microbiology.
[76] C. Goyer. Isolation and characterization of phages Stsc1 and Stsc3 infecting Streptomyces scabiei and their potential as biocontrol agents , 2005 .
[77] M. Pirhonen,et al. Bacteriophage T4 resistant mutants of the plant pathogen Erwinia carotovora. , 1988, Microbial pathogenesis.
[78] M. Loessner,et al. Protection of Erwinia amylovora bacteriophage Y2 from UV-induced damage by natural compounds , 2015, Bacteriophage.
[79] J. Flaherty,et al. H-mutant bacteriophages as a potential biocontrol of bacterial blight of geranium , 2001 .
[80] J. Wolf,et al. Assessment of recent outbreaks of Dickeya sp. (syn. Erwinia chrysanthemi) slow wilt in potato crops in Israel , 2009, European Journal of Plant Pathology.
[81] G. H. Coons,et al. Investigations on the blackleg disease of potato , 1925 .
[82] S. Abedon,et al. Why Bacteriophage Encode Exotoxins and other Virulence Factors , 2005, Evolutionary bioinformatics online.
[83] M. Kowalczuk,et al. Poly-γ-Glutamic Acid: Biodegradable Polymer for Potential Protection of Beneficial Viruses , 2016, Materials.
[84] M. Loessner,et al. The Terminally Redundant, Nonpermuted Genome of Listeria Bacteriophage A511: a Model for the SPO1-Like Myoviruses of Gram-Positive Bacteria , 2008, Journal of bacteriology.
[85] R. Goodman,et al. Extracellular Polysaccharide of Erwinia amylovora: a Correlation with Virulence , 1979, Applied and environmental microbiology.
[86] T. Kovács,et al. Bacteriophage therapy against plant, animal and human pathogens , 2015 .
[87] N. Schaad,et al. Reclassification of the xanthomonads associated with bacterial spot disease of tomato and pepper. , 2004, Systematic and applied microbiology.
[88] T. Ikeda,et al. Identification and characterization of T3/T7 bacteriophage-like RNA polymerase sequences in wheat , 1999, Plant Molecular Biology.
[89] Nicola K. Petty,et al. Identification of Bacteriophages for Biocontrol of the Kiwifruit Canker Phytopathogen Pseudomonas syringae pv. actinidiae , 2014, Applied and Environmental Microbiology.
[90] Role of host protein glutaredoxin 3 in the control of transcription during bacteriophage Φ2954 infection , 2010, Proceedings of the National Academy of Sciences.
[91] C. Allen,et al. Moderate Temperature Fluctuations Rapidly Reduce the Viability of Ralstonia solanacearum Race 3, Biovar 2, in Infected Geranium, Tomato, and Potato Plants , 2010, Applied and Environmental Microbiology.
[92] Christine L. Sun,et al. Major bacterial lineages are essentially devoid of CRISPR-Cas viral defence systems , 2016, Nature Communications.
[93] L. Wilkinson. Félix d'Herelle and the origins of molecular biology , 2001, Medical History.
[94] A. Svircev,et al. Isolation and characterization of eight bacteriophages infecting Erwinia amylovora and their potential as biological control agents in British Columbia, Canada , 2011 .
[95] R. P. Ross,et al. Bacteriophage-resistance systems in dairy starter strains: molecular analysis to application , 2002, Antonie van Leeuwenhoek.
[96] W. G. Bonn,et al. Distribution and economic importance of fire blight. , 2000 .
[97] M. Goto,et al. Bacteriophages of Plant Pathogens , 1963 .
[98] R. Czajkowski. Bacteriophages of Soft Rot Enterobacteriaceae-a minireview. , 2016, FEMS microbiology letters.
[99] Young-Kee Kim,et al. Bacteriophages of Pseudomonas tolaasii for the biological control of brown blotch disease , 2011 .
[100] P. V. van Helden,et al. Phage-based detection of bacterial pathogens. , 2014, The Analyst.
[101] S. Schuster,et al. Insights into Genome Plasticity and Pathogenicity of the Plant Pathogenic Bacterium Xanthomonas campestris pv. vesicatoria Revealed by the Complete Genome Sequence , 2005, Journal of bacteriology.
[102] M. Pérombelon. Potato diseases caused by soft rot erwinias: an overview of pathogenesis , 2002, Plant Pathology.
[103] R. Tenreiro,et al. First Report of Bacterial Speck of Tomato Caused by Pseudomonas syringae pv. tomato Race 1 in Portugal. , 2010, Plant disease.
[104] D. Smitley. Spread ofPseudomonas syringaepv.tomatoand Role of Epiphytic Populations and Environmental Conditions in Disease Development , 1982 .
[105] D. Considine. Foods and Food Production Encyclopedia , 1995 .
[106] J. Vanneste,et al. Migration of Erwinia amylovora in host plant tissues. , 2000 .
[107] M. Takita,et al. Copper resistance of biofilm cells of the plant pathogen Xylella fastidiosa , 2008, Applied Microbiology and Biotechnology.
[108] Ry Young,et al. Characterization of Novel Virulent Broad-Host-Range Phages of Xylella fastidiosa and Xanthomonas , 2013, Journal of bacteriology.
[109] Marko Pfeifer,et al. An Introduction To Genetic Analysis , 2016 .
[110] M. Pirhonen,et al. Dickeya species: an emerging problem for potato production in Europe , 2011 .
[111] R. Christen,et al. Elevation of three subspecies of Pectobacterium carotovorum to species level: Pectobacterium atrosepticum sp. nov., Pectobacterium betavasculorum sp. nov. and Pectobacterium wasabiae sp. nov. , 2003, International journal of systematic and evolutionary microbiology.
[112] L. Gold,et al. The Rex system of bacteriophage lambda: tolerance and altruistic cell death. , 1992, Genes & development.
[113] J. Elphinstone,et al. Rapid phylogenetic identification of members of the Pseudomonas syringae species complex using the rpoD locus , 2011 .
[114] S. S. Hirano,et al. Bacteria in the Leaf Ecosystem with Emphasis onPseudomonas syringae—a Pathogen, Ice Nucleus, and Epiphyte , 2000, Microbiology and Molecular Biology Reviews.
[115] S. He,et al. Pseudomonas syringae pv. tomato DC3000: a model pathogen for probing disease susceptibility and hormone signaling in plants. , 2013, Annual review of phytopathology.
[116] J. Zhuang,et al. Virus retention and transport as influenced by different forms of soil organic matter. , 2003, Journal of environmental quality.
[117] G. Preston,et al. Pseudomonas syringae pv. tomato: the right pathogen, of the right plant, at the right time. , 2000, Molecular plant pathology.
[118] Peter C. Fineran,et al. Csy4 is responsible for CRISPR RNA processing in Pectobacterium atrosepticum , 2011, RNA biology.
[119] E. Bidnenko,et al. Phage abortive infection in lactococci: variations on a theme. , 2005, Current opinion in microbiology.
[120] M. F. D'Herelle. Sur un microbe invisible antagoniste des bacilles dysenteriques , 1961 .
[121] M. Pirhonen,et al. Occurrence of bacteriophage T4 receptor in Erwinia carotovora , 1988, Molecular and General Genetics MGG.
[122] L. M. Smith,et al. Factors Affecting Survival of Bacteriophage on Tomato Leaf Surfaces , 2007, Applied and Environmental Microbiology.
[123] S. Sillankorva,et al. Bacteriophage Therapy , 2018, Methods in Molecular Biology.
[124] H. Aldwinckle,et al. Isolation of Streptomycin-Resistant Isolates of Erwinia amylovora in New York. , 2008, Plant disease.
[125] J. S. Angle,et al. Phage coating of soybean seed reduces nodulation by indigenous soil bradyrhizobia , 1992 .
[126] M. Loessner,et al. Novel Virulent and Broad-Host-Range Erwinia amylovora Bacteriophages Reveal a High Degree of Mosaicism and a Relationship to Enterobacteriaceae Phages , 2011, Applied and Environmental Microbiology.
[127] Takashi Yamada,et al. Biocontrol of Ralstonia solanacearum by Treatment with Lytic Bacteriophages , 2011, Applied and Environmental Microbiology.
[128] Sang-Wook Han,et al. Genetic Diversity of Pectobacterium carotovorum subsp. brasiliensis Isolated in Korea , 2014, The plant pathology journal.
[129] J. B. Jones,et al. Control of Citrus Canker and Citrus Bacterial Spot with Bacteriophages. , 2008, Plant disease.
[130] Kathryn S. Lilley,et al. The phage abortive infection system, ToxIN, functions as a protein–RNA toxin–antitoxin pair , 2009, Proceedings of the National Academy of Sciences.
[131] K. Djelouah,et al. DETECTION OF XYLELLA FASTIDIOSA IN OLIVE TREES BY MOLECULAR AND SEROLOGICAL METHODS , 2014 .
[132] G. Amy,et al. The reversibility of virus attachment to mineral surfaces , 1996 .
[133] F. Allerberger,et al. Detecting streptomycin in apples from orchards treated for fire blight. , 2009, The Journal of antimicrobial chemotherapy.
[134] J. Foley,et al. Yield Trends Are Insufficient to Double Global Crop Production by 2050 , 2013, PloS one.
[135] E. Tiligada,et al. Antiphage activity in extracts of plants growing in Greece. , 1997, Phytomedicine : international journal of phytotherapy and phytopharmacology.
[136] D. Gent,et al. Management of Xanthomonas Leaf Blight of Onion with Bacteriophages and a Plant Activator. , 2007, Plant disease.
[137] Jeffrey B. Jones,et al. Survival of Pseudomonas syringae pv. tomato in association with tomato seed, soil, host tissue, and epiphytic weed hosts in Georgia , 1983 .
[138] B. Mangin,et al. Resistance of tomato line Hawaii7996 to Ralstonia solanacearum Pss4 in Taiwan is controlled mainly by a major strain-specific locus. , 2000, Molecular plant-microbe interactions : MPMI.
[139] J. Glasner,et al. Host range and molecular phylogenies of the soft rot enterobacterial genera pectobacterium and dickeya. , 2007, Phytopathology.
[140] E. Lojkowska,et al. Isolation and characterization of novel soilborne lytic bacteriophages infecting Dickeya spp. biovar 3 ('D. solani'). , 2014 .
[141] L. Király,et al. Penetration and translocation of Erwinia amylovora-specific bacteriophages in apple - a possibility of enhanced control of fire blight , 2015, European journal of plant pathology.
[142] J. Erskine. Characteristics of Erwinia amylovora bacteriophage and its possible role in the epidemology of fire blight. , 1973, Canadian journal of microbiology.
[143] C. Oh,et al. Isolation and Characterization of Bacteriophages Against Pseudomonas syringae pv. actinidiae Causing Bacterial Canker Disease in Kiwifruit. , 2016, Journal of microbiology and biotechnology.
[144] P. Sobiczewski,et al. Control of fire blight (Erwinia amylovora) by a novel strain 49M of Pseudomonas graminis from the phyllosphere of apple (Malus spp.) , 2016, European Journal of Plant Pathology.
[145] M. Fatmi. Use of Oxos, a Complex of Hydrogen Peroxide, Acetic Acid and Silver Ion, to Control Bacterial Speck of Tomato ( Pseudomonas syringae pv. tomato ) and Angular Leaf Spot of Melon ( P. s. pv. lachrymans ) , 2003 .
[146] G. Salmond,et al. Top 10 plant pathogenic bacteria in molecular plant pathology. , 2012, Molecular plant pathology.
[147] A. Toussaint,et al. Characterization and virulence properties of Erwinia chrysanthemi lipopolysaccharide-defective, phi EC2-resistant mutants , 1987, Journal of bacteriology.
[148] T. Kuo,et al. A long lytic cycle in filamentous phage Cf1tv infectingXanthomonas campestris pv.citri , 2005, Archives of Virology.
[149] K. Wommack,et al. Virioplankton: Viruses in Aquatic Ecosystems , 2000, Microbiology and Molecular Biology Reviews.
[150] F. Blattner,et al. Genome of Bacteriophage P1 , 2004, Journal of bacteriology.
[151] B. Dell,et al. Novel in vivo use of a polyvalent Streptomyces phage to disinfest Streptomyces scabies-infected seed potatoes , 2001 .
[152] Terri A. Camesano,et al. Nanotechnology to Aid Chemical and Biological Defense , 2015 .
[153] U. Henning,et al. Superinfection exclusion by T-even-type coliphages. , 1994, Trends in microbiology.
[154] Evelien M. Adriaenssens,et al. T4-Related Bacteriophage LIMEstone Isolates for the Control of Soft Rot on Potato Caused by ‘Dickeya solani’ , 2012, PloS one.
[155] G. Salmond,et al. Two mobile Pectobacterium atrosepticum prophages modulate virulence. , 2010, FEMS microbiology letters.
[156] S. Lindow,et al. Living in two worlds: the plant and insect lifestyles of Xylella fastidiosa. , 2008, Annual review of phytopathology.
[157] J. Woolliams,et al. What is Genetic Diversity , 2007 .
[158] G. Salmond,et al. Phage‐selected lipopolysaccharide mutants of Pectobacterium atrosepticum exhibit different impacts on virulence , 2010, Journal of applied microbiology.
[159] D. Jenkins,et al. Detection of Ralstonia solanacearum in natural substrates using phage amplification integrated with real-time PCR assay. , 2009, Journal of microbiological methods.
[160] J. Klumpp,et al. Characterization of Novel Bacteriophages for Biocontrol of Bacterial Blight in Leek Caused by Pseudomonas syringae pv. porri , 2016, Front. Microbiol..