Biofilm formation assessment in Sinorhizobium meliloti reveals interlinked control with surface motility

被引:36
作者
Amaya-Gomez, Carol V. [1 ]
Hirsch, Ann M. [2 ,3 ]
Soto, Maria J. [1 ]
机构
[1] CSIC, Estn Expt Zaidin, Dept Microbiol Suelo & Sistemas Simbiot, E-18008 Granada, Spain
[2] Univ Calif Los Angeles, Dept Mol Cell & Dev Biol, Los Angeles, CA 90095 USA
[3] Univ Calif Los Angeles, Inst Mol Biol, Los Angeles, CA 90095 USA
来源
BMC MICROBIOLOGY | 2015年 / 15卷
基金
美国国家科学基金会;
关键词
FadD; Iron; Rhizobium; RirA; Root colonization; Siderophore; Swarming; PSEUDOMONAS-AERUGINOSA; SWARMING MOTILITY; IRON; SIDEROPHORE; SYSTEM; RHIZOBACTIN-1021; BIOSURFACTANTS; ALFALFA; EXOPOLYSACCHARIDE; BIOSYNTHESIS;
D O I
10.1186/s12866-015-0390-z
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Background: Swarming motility and biofilm formation are opposite, but related surface-associated behaviors that allow various pathogenic bacteria to colonize and invade their hosts. In Sinorhizobium meliloti, the alfalfa endosymbiont, these bacterial processes and their relevance for host plant colonization are largely unexplored. Our previous work demonstrated distinct swarming abilities in two S. meliloti strains (Rm1021 and GR4) and revealed that both environmental cues (iron concentration) and bacterial genes (fadD, rhb, rirA) play crucial roles in the control of surface motility in this rhizobial species. In the current study, we investigate whether these factors have an impact on the ability of S. meliloti to establish biofilms and to colonize host roots. Results: We found that strain GR4, which is less prone to translocate on solid surfaces than strain Rm1021, is more efficient in developing biofilms on glass and plant root surfaces. High iron conditions, known to prevent surface motility in a wild-type strain of S. meliloti, promote biofilm development in Rm1021 and GR4 strains by inducing the formation of more structured and thicker biofilms than those formed under low iron levels. Moreover, three different S. meliloti mutants (fadD, rhb, and rirA) that exhibit an altered surface translocation behavior compared with the wild-type strain, establish reduced biofilms on both glass and alfalfa root surfaces. Iron-rich conditions neither rescue the defect in biofilm formation shown by the rhb mutant, which is unable to produce the siderophore rhizobactin 1021 (Rhb1021), nor have any impact on biofilms formed by the iron-response regulator rirA mutant. On the other hand, S. meliloti FadD loss-of-function mutants do not establish normal biofilms irrespective of iron levels. Conclusions: Our studies show that siderophore Rhb1021 is not only required for surface translocation, but also for biofilm formation on glass and root surfaces by strain Rm1021. In addition, we present evidence for the existence of control mechanisms that inversely regulate swarming and biofilm formation in S. meliloti, and that contribute to efficient plant root colonization. One of these mechanisms involves iron levels and the iron global regulator RirA. The other mechanism involves the participation of the fatty acid metabolism-related enzyme FadD.
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页数:14
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共 67 条
  • [11] Quorum signal molecules as biosurfactants affecting swarming in Rhizobium etli
    Daniels, Ruth
    Reynaert, Sven
    Hoekstra, Hans
    Verreth, Christel
    Janssens, Joost
    Braeken, Kristien
    Fauvart, Maarten
    Beullens, Serge
    Heusdens, Christophe
    Lambrichts, Ivo
    De Vos, Dirk E.
    Vanderleyden, Jos
    Vermant, Jan
    Michiels, Jan
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2006, 103 (40) : 14965 - 14970
  • [12] Rhamnolipid surfactant production affects biofilm architecture in Pseudomonas aeruginosa PAO1
    Davey, ME
    Caiazza, NC
    O'Toole, GA
    [J]. JOURNAL OF BACTERIOLOGY, 2003, 185 (03) : 1027 - 1036
  • [13] Microbial biofilms: from ecology to molecular genetics
    Davey, ME
    O'toole, GA
    [J]. MICROBIOLOGY AND MOLECULAR BIOLOGY REVIEWS, 2000, 64 (04) : 847 - +
  • [14] Investigations of Rhizobium biofilm formation
    Fujishige, NA
    Kapadia, NN
    De Hoff, PL
    Hirsch, AM
    [J]. FEMS MICROBIOLOGY ECOLOGY, 2006, 56 (02) : 195 - 206
  • [15] Rhizobium common nod genes are required for biofilm formation
    Fujishige, Nancy A.
    Lum, Michelle R.
    De Hoff, Peter L.
    Whitelegge, Julian P.
    Faull, Kym F.
    Hirsch, Ann M.
    [J]. MOLECULAR MICROBIOLOGY, 2008, 67 (03) : 504 - 515
  • [16] Role of Specific Quorum-Sensing Signals in the Regulation of Exopolysaccharide II Production within Sinorhizobium meliloti Spreading Colonies
    Gao, Mengsheng
    Coggin, Andrew
    Yagnik, Kruti
    Teplitski, Max
    [J]. PLOS ONE, 2012, 7 (08):
  • [17] Increase in Rhamnolipid Synthesis under Iron-Limiting Conditions Influences Surface Motility and Biofilm Formation in Pseudomonas aeruginosa
    Glick, Rivka
    Gilmour, Christie
    Tremblay, Julien
    Satanower, Shirley
    Avidan, Ofir
    Deziel, Eric
    Greenberg, E. Peter
    Poole, Keith
    Banin, Ehud
    [J]. JOURNAL OF BACTERIOLOGY, 2010, 192 (12) : 2973 - 2980
  • [18] Green MR, 2012, Cold spring harbor, Vfourth
  • [19] Transcriptional profiling of Legionella pneumophila biofilm cells and the influence of iron on biofilm formation
    Hindre, Thomas
    Bruggemann, Holger
    Buchrieser, Carmen
    Hechard, Yann
    [J]. MICROBIOLOGY-SGM, 2008, 154 : 30 - 41
  • [20] Iron-responsive regulation of biofilm formation in Staphylococcus aureus involves fur-dependent and fur-independent mechanisms
    Johnson, M
    Cockayne, A
    Williams, PH
    Morrissey, JA
    [J]. JOURNAL OF BACTERIOLOGY, 2005, 187 (23) : 8211 - 8215