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Phytopathology|March 17, 2011
Biological control of Rhizoctonia root rot on bean by phenazine- and cyclic lipopeptide-producing Pseudomonas CMR12aJolien D'aes, Gia Khuong Hoang Hua, Katrien De Maeyer, et al.Applied and Environmental Microbiology|July 2, 2013
pA506, a conjugative plasmid of the plant epiphyte Pseudomonas fluorescens A506Virginia O Stockwell, Edward W Davis, Alyssa Carey, et al.Frontiers in Plant Science|April 6, 2018
Long-Term Irrigation Affects the Dynamics and Activity of the Wheat Rhizosphere MicrobiomeDmitri V Mavrodi, Olga V Mavrodi, Liam D H Elbourne, et al.ACS Applied Bio Materials|January 8, 2022
Using Aldehyde Synergism To Direct the Design of Degradable Pro-Antimicrobial NetworksDahlia N Amato, Douglas V Amato, Yetunde Adewunmi, et al.Applied and Environmental Microbiology|December 17, 2009
Diversity and evolution of the phenazine biosynthesis pathwayDmitri V Mavrodi, Tobin L Peever, Olga V Mavrodi, et al.Acta Biomaterialia|December 23, 2017
A bio-based pro-antimicrobial polymer network via degradable acetal linkagesDouglas V Amato, Dahlia N Amato, Logan T Blancett, et al.Phytopathology|November 11, 2011
Biological control of take-all by fluorescent Pseudomonas spp. from Chinese wheat fieldsMing-Ming Yang, Dmitri V Mavrodi, Olga V Mavrodi, et al.Genome Announcements|November 19, 2016
Genome Sequence of Mycobacterium Phage WaterfoulPaige N Jackson, Ella K Embry, Christa O Johnson, et al.Microbiology Resource Announcements|June 22, 2019
Discovery and Characterization of Bacteriophage LuckyBarnesSavannah L Underwood, Amanda Foto, Amanda F Ray, et al.Environmental Microbiology|April 25, 2018
Phenazine-1-carboxylic acid and soil moisture influence biofilm development and turnover of rhizobacterial biomass on wheat root surfacesMelissa K LeTourneau, Matthew J Marshall, John B Cliff, et al.Pageof 6