Borrelia burgdorferi Uniquely Regulates Its Motility Genes and Has an Intricate Flagellar Hook-Basal Body Structure
Open Access
- 15 March 2008
- journal article
- research article
- Published by American Society for Microbiology in Journal of Bacteriology
- Vol. 190 (6) , 1912-1921
- https://doi.org/10.1128/jb.01421-07
Abstract
Borrelia burgdorferi is a flat-wave, motile spirochete that causes Lyme disease. Motility is provided by periplasmic flagella (PFs) located between the cell cylinder and an outer membrane sheath. The structure of these PFs, which are composed of a basal body, a hook, and a filament, is similar to the structure of flagella of other bacteria. To determine if hook formation influences flagellin gene transcription in B. burgdorferi, we inactivated the hook structural gene flgE by targeted mutagenesis. In many bacteria, completion of the hook structure serves as a checkpoint for transcriptional control of flagellum synthesis and other chemotaxis and motility genes. Specifically, the hook allows secretion of the anti-sigma factor FlgM and concomitant late gene transcription promoted by σ28. However, the control of B. burgdorferi PF synthesis differs from the control of flagellum synthesis in other bacteria; the gene encoding σ28 is not present in the genome of B. burgdorferi, nor are any σ28 promoter recognition sequences associated with the motility genes. We found that B. burgdorferi flgE mutants lacked PFs, were rod shaped, and were nonmotile, which substantiates previous evidence that PFs are involved in both cell morphology and motility. Although most motility and chemotaxis gene products accumulated at wild-type levels in the absence of FlgE, mutant cells had markedly decreased levels of the flagellar filament proteins FlaA and FlaB. Further analyses showed that the reduction in the levels of flagellin proteins in the spirochetes lacking FlgE was mediated at the posttranscriptional level. Taken together, our results indicate that in B. burgdorferi, the completion of the hook does not serve as a checkpoint for transcriptional regulation of flagellum synthesis. In addition, we also present evidence that the hook protein in B. burgdorferi forms a high-molecular-weight complex and that formation of this complex occurs in the periplasmic space.Keywords
This publication has 75 references indexed in Scilit:
- Analysis of the RpoS regulon in Borrelia burgdorferi in response to mammalian host signals provides insight into RpoS function during the enzootic cycleMolecular Microbiology, 2007
- Evidence that RpoS (σ S ) in Borrelia burgdorferi Is Controlled Directly by RpoN (σ 54 /σ N )Journal of Bacteriology, 2007
- Identification of Specific Chemoattractants and Genetic Complementation of a Borrelia burgdorferi Chemotaxis Mutant: Flow Cytometry-Based Capillary Tube Chemotaxis AssayApplied and Environmental Microbiology, 2007
- Identification of Potential Virulence Determinants by Himar1 Transposition of Infectious Borrelia burgdorferi B31Infection and Immunity, 2006
- The Three-Dimensional Structure of the Flagellar Rotor from a Clockwise-Locked Mutant of Salmonella enterica Serovar TyphimuriumJournal of Bacteriology, 2006
- CheX Is a Phosphorylated CheY Phosphatase Essential forBorrelia burgdorferiChemotaxisJournal of Bacteriology, 2005
- Analysis of theospCRegulatory Element Controlled by the RpoN-RpoS Regulatory Pathway inBorrelia burgdorferiJournal of Bacteriology, 2005
- Combined Effects of Blood and Temperature Shift on Borrelia burgdorferi Gene Expression as Determined by Whole Genome DNA ArrayInfection and Immunity, 2004
- In Vitro Culture of Borrelia garinii Results in Loss of Flagella and Decreased InvasivenessInfection and Immunity, 2002
- Complementation of a Treponema denticola flgE Mutant with a Novel Coumermycin A1-Resistant T. denticola Shuttle Vector SystemInfection and Immunity, 2002