Motility and chemotaxis in Agrobacterium tumefaciens surface attachment and Biofilm formation

被引:147
作者
Merritt, Peter M. [1 ]
Danhorn, Thomas [1 ]
Fuqua, Clay [1 ]
机构
[1] Indiana Univ, Dept Biol, Bloomington, IN 47405 USA
关键词
D O I
10.1128/JB.00566-07
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Bacterial motility mechanisms, including swimming, swarming, and twitching, are known to have important roles in biofilm formation, including colonization and the subsequent expansion into mature structured surface communities. Directed motility requires chemotaxis functions that are conserved among many bacterial species. The biofilm-forming plant pathogen Agrobacterium tumefaciens drives swimming motility by utilizing a small group of flagella localized to a single pole or the subpolar region of the cell. There is no evidence for twitching or swarming motility in A. tumefaciens. Site-specific deletion mutations that resulted in either aflagellate, flagellated but nonmotile, or flagellated but nonchemotactic A. tumefaciens derivatives were examined for biofilm formation under static and flowing conditions. Nonmotile mutants were significantly deficient in biofilm formation under static conditions. Under flowing conditions, however, the aflagellate mutant rapidly formed aberrantly dense, tall biofilms. In contrast, a nonmotile mutant with unpowered flagella was clearly debilitated for biofilm formation relative to the wild type. A nontumbling chemotaxis mutant was only weakly affected with regard to biofilm formation under nonflowing conditions but was notably compromised in flow, generating less adherent biomass than the wild type, with a more dispersed cellular arrangement. Extragenic suppressor mutants of the chemotaxis-impaired, straight-swimming phenotype were readily isolated from motility agar plates. These mutants regained tumbling at a frequency similar to that of the wild type. Despite this phenotype, biofilm formation by the suppressor mutants in static cultures was significantly deficient. Under flowing conditions, a representative suppressor mutant manifested a phenotype similar to yet distinct from that of its nonchemotactic parent.
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收藏
页码:8005 / 8014
页数:10
相关论文
共 46 条
[21]   Biofilm formation by Pseudomonas aeruginosa wild type, flagella and type IV pili mutants [J].
Klausen, M ;
Heydorn, A ;
Ragas, P ;
Lambertsen, L ;
Aaes-Jorgensen, A ;
Molin, S ;
Tolker-Nielsen, T .
MOLECULAR MICROBIOLOGY, 2003, 48 (06) :1511-1524
[22]   4 NEW DERIVATIVES OF THE BROAD-HOST-RANGE CLONING VECTOR PBBR1MCS, CARRYING DIFFERENT ANTIBIOTIC-RESISTANCE CASSETTES [J].
KOVACH, ME ;
ELZER, PH ;
HILL, DS ;
ROBERTSON, GT ;
FARRIS, MA ;
ROOP, RM ;
PETERSON, KM .
GENE, 1995, 166 (01) :175-176
[23]   Quorum sensing-controlled biofilm development in Serratia liquefaciens MG1 [J].
Labbate, M ;
Queek, SY ;
Koh, KS ;
Rice, SA ;
Givskov, M ;
Kjelleberg, S .
JOURNAL OF BACTERIOLOGY, 2004, 186 (03) :692-698
[24]   Flagellar motility is critical for Listeria monocytogenes biofilm formation [J].
Lemon, Katherine P. ;
Higgins, Darren E. ;
Kolter, Roberto .
JOURNAL OF BACTERIOLOGY, 2007, 189 (12) :4418-4424
[25]   Type IV pili and twitching motility [J].
Mattick, JS .
ANNUAL REVIEW OF MICROBIOLOGY, 2002, 56 :289-314
[26]   RAPID, SIMPLE METHOD FOR STAINING BACTERIAL FLAGELLA [J].
MAYFIELD, CI ;
INNISS, WE .
CANADIAN JOURNAL OF MICROBIOLOGY, 1977, 23 (09) :1311-1313
[27]   Bacterial gliding motility: Multiple mechanisms for cell movement over surfaces [J].
McBride, MJ .
ANNUAL REVIEW OF MICROBIOLOGY, 2001, 55 :49-75
[28]   EFFICIENT TRANSFORMATION OF AGROBACTERIUM-TUMEFACIENS BY ELECTROPORATION [J].
MERSEREAU, M ;
PAZOUR, GJ ;
DAS, A .
GENE, 1990, 90 (01) :149-151
[29]   COORDINATE REGULATION AND SENSORY TRANSDUCTION IN THE CONTROL OF BACTERIAL VIRULENCE [J].
MILLER, JF ;
MEKALANOS, JJ ;
FALKOW, S .
SCIENCE, 1989, 243 (4893) :916-922
[30]   A NOVEL SUICIDE VECTOR AND ITS USE IN CONSTRUCTION OF INSERTION MUTATIONS - OSMOREGULATION OF OUTER-MEMBRANE PROTEINS AND VIRULENCE DETERMINANTS IN VIBRIO-CHOLERAE REQUIRES TOXR [J].
MILLER, VL ;
MEKALANOS, JJ .
JOURNAL OF BACTERIOLOGY, 1988, 170 (06) :2575-2583