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Construction and characterization of a fimA mutant of Porphyromonas gingivalis
N Hamada1, K Watanabe, C Sasakawa
1Department of Oral Microbiology, Kanagawa Dental College, Yokosuka, Japan.
Abstract:
Although fimbriae of Porphyromonas gingivalis have been implicated as playing a major role in adherence to gingival tissue surfaces, no conclusive genetic evidence has yet been obtained. The fimA gene, the determinant for the major fimbrial subunit protein, was cloned and sequenced (D. P. Dickinson, M. A. Kubiniec, F. Yoshimura, and R. J. Genco, J. Bacteriol. 170:1658-1665, 1988). We undertook to inactivate the fimA gene by a homologous recombination technique and examined the fimA mutant for changes in surface properties, including production of fimbriae, adherence to human gingival fibroblasts and epithelial cells, hemagglutinating activity, and surface hydrophobicity. To inactivate the fimA gene, we disrupted a fimA clone by insertion of a DNA segment containing an erythromycin resistance (Emr) gene. This was then delivered into P. gingivalis ATCC 33277 from an Escherichia coli K-12 strain, SM10 lambda pir, by using a mobilizable suicide vector, pGP704; recombination at the fimA locus led to the isolation of a fimA mutant. Disruption of the fimA locus and disappearance of FimA production were confirmed by Southern hybridization with a fimA-specific DNA probe and Western immunoblotting with a monoclonal antibody against the FimA protein, respectively. The fimA mutant constructed failed to express long (0.5- to 1.0-micron) fimbriae from the bacterial surface and had a diminished adhesive capacity to tissue-cultured human gingival fibroblasts and epithelial cells. Observation of the bacteria adhering to human gingival fibroblasts by scanning electron microscopy revealed that the wild-type strain had dramatic local changes in the appearance of the microvilli at the point of contact with large bacterial clumps, whereas the fimA mutant did not. In contrast, neither the hemagglutinating activity nor the surface hydrophobicity was changed in the fimA mutant. These data thus constitute the first direct genetic evidence demonstrating that the FimA protein of P. gingivalis is essential for the interaction of the organism with human gingival tissue cells through a function(s) encoded by the fimA gene.
Insights
Genetic inactivation of the fimA gene in Porphyromonas gingivalis demonstrated that the FimA protein is essential for bacterial adherence to human gingival cells. This study provides the first direct genetic evidence for fimA
Area of Science:
- Microbiology
- Genetics
- Oral Health
Background:
- Porphyromonas gingivalis fimbriae are implicated in adherence to gingival tissues.
- Conclusive genetic evidence for this role has been lacking.
- The fimA gene encodes the major fimbrial subunit protein.
Purpose of the Study:
- To genetically inactivate the fimA gene in P. gingivalis.
- To investigate the role of the FimA protein in bacterial surface properties and adherence.
- To provide direct genetic evidence for fimA's function in host cell interaction.
Main Methods:
- Homologous recombination was used to disrupt the fimA gene.
- An erythromycin resistance gene was inserted into the fimA clone.
- A mobilizable suicide vector facilitated gene transfer into P. gingivalis.
- Southern hybridization and Western immunoblotting confirmed fimA disruption and FimA absence.
- Adherence assays with human gingival fibroblasts and epithelial cells were performed.
Main Results:
- The fimA mutant failed to produce long fimbriae.
- The fimA mutant exhibited diminished adherence to human gingival fibroblasts and epithelial cells.
- Scanning electron microscopy showed altered bacterial-host cell interactions in the wild-type compared to the mutant.
- Hemagglutinating activity and surface hydrophobicity remained unchanged in the fimA mutant.
Conclusions:
- The FimA protein is essential for P. gingivalis adherence to human gingival tissue cells.
- This study provides the first direct genetic evidence for the role of fimA in host cell interaction.
- The fimA gene encodes a crucial factor for the virulence of P. gingivalis.