|
|
||||||||
Critical Reviews in Oral Biology & Medicine, Vol 10, 120-138, Copyright © 1999 by International & American Associations for Dental Research
ARTICLES |
M. K. Yeung
Department of Pediatric Dentistry, University of Texas Health Science Center at San Antonio, 78284, USA.
Members of the genus Actinomyces are predominant primary colonizers of the oral cavity and play an important role in initiating plaque development. These bacteria have evolved unique mechanisms that favor colonization and persistence in this micro-environment. The expression of cell-surface fimbriae is correlated with the ability of these bacteria to adhere to specific receptors on the tooth and mucosal surfaces, and to interact with other plaque bacteria. The elaboration of sialidase is thought to enhance fimbriae-mediated adherence by unmasking the fimbrial receptors on mammalian cells. The presence of certain cell-associated or extracellular enzymes, including those involved in sucrose or urea metabolism, may provide the means for these bacteria to thrive under conditions when other growth nutrients are not available. Moreover, these enzyme activities may influence the distribution of other plaque bacteria and promote selection for Actinomyces spp. in certain ecological niches. The recent development of a genetic transfer system for Actinomyces spp. has allowed for studies the results of which demonstrate the existence of multiple genes involved in fimbriae synthesis and function, and facilitated the construction of allelic replacement mutants at each gene locus. Analyses of these mutants have revealed a direct correlation between the synthesis of assembled fimbriae and the observed adherence properties. Further genetic analysis of the various enzyme activities detected from strains of Actinomyces should allow for an assessment of the role of these components in microbial ecology, and their contribution to the overall success of Actinomyces spp. as a primary colonizer and a key player in oral health and disease.
This article has been cited by other articles:
![]() |
A. H. Nobbs, R. Rosini, C. D. Rinaudo, D. Maione, G. Grandi, and J. L. Telford Sortase A Utilizes an Ancillary Protein Anchor for Efficient Cell Wall Anchoring of Pili in Streptococcus agalactiae Infect. Immun., August 1, 2008; 76(8): 3550 - 3560. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. Mishra, A. Das, J. O. Cisar, and H. Ton-That Sortase-Catalyzed Assembly of Distinct Heteromeric Fimbriae in Actinomyces naeslundii J. Bacteriol., April 15, 2007; 189(8): 3156 - 3165. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. Swierczynski and H. Ton-That Type III Pilus of Corynebacteria: Pilus Length Is Determined by the Level of Its Major Pilin Subunit. J. Bacteriol., September 1, 2006; 188(17): 6318 - 6325. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. H. Gaspar and H. Ton-That Assembly of Distinct Pilus Structures on the Surface of Corynebacterium diphtheriae J. Bacteriol., February 15, 2006; 188(4): 1526 - 1533. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. M. Cerdeno-Tarraga, A. Efstratiou, L. G. Dover, M. T. G. Holden, M. Pallen, S. D. Bentley, G. S. Besra, C. Churcher, K. D. James, A. De Zoysa, et al. The complete genome sequence and analysis of Corynebacterium diphtheriae NCTC13129 Nucleic Acids Res., November 15, 2003; 31(22): 6516 - 6523. [Abstract] [Full Text] [PDF] |
||||
![]() |
H. K. Kuramitsu MOLECULAR GENETIC ANALYSIS OF THE VIRULENCE OF ORAL BACTERIAL PATHOGENS: AN HISTORICAL PERSPECTIVE Crit. Rev. Oral. Biol. Med., September 1, 2003; 14(5): 331 - 344. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. A. Schell, M. Karmirantzou, B. Snel, D. Vilanova, B. Berger, G. Pessi, M.-C. Zwahlen, F. Desiere, P. Bork, M. Delley, et al. The genome sequence of Bifidobacterium longum reflects its adaptation to the human gastrointestinal tract PNAS, October 29, 2002; 99(22): 14422 - 14427. [Abstract] [Full Text] [PDF] |
||||
![]() |
Y. Takahashi, K. Konishi, J. O. Cisar, and M. Yoshikawa Identification and Characterization of hsa, the Gene Encoding the Sialic Acid-Binding Adhesin of Streptococcus gordonii DL1 Infect. Immun., March 1, 2002; 70(3): 1209 - 1218. [Abstract] [Full Text] [PDF] |
||||
![]() |
L. J. Bergeron and R. A. Burne Roles of Fructosyltransferase and Levanase-Sucrase of Actinomyces naeslundii in Fructan and Sucrose Metabolism Infect. Immun., September 1, 2001; 69(9): 5395 - 5402. [Abstract] [Full Text] [PDF] |
||||
![]() |
L. J. Bergeron, E. Morou-Bermudez, and R. A. Burne Characterization of the Fructosyltransferase Gene of Actinomyces naeslundii WVU45 J. Bacteriol., July 1, 2000; 182(13): 3649 - 3654. [Abstract] [Full Text] |
||||
| HOME | HELP | FEEDBACK | SUBSCRIPTIONS | ARCHIVE | SEARCH | TABLE OF CONTENTS |
| IADR Journals | Advances in Dental Research ® | Journal of Dental Research ® | Critical Reviews (1990-2004) |