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Research Article

Microbial Ecology of Marginal Gingivitis

Pages 149-159 | Published online: 11 Jul 2009

References

  • Consensus Report. Dental Plaque-Induced Gingival Diseases. Ann Periodontol 1999; 4: 18–9.
  • Mariotti A. Dental Plaque Induced Gingival Diseases. Ann Periodontol 1999; 4: 7–17.
  • Armitage GC. Development of a Classification System for Periodontal Diseases and Conditions. Ann Periodontol 1999; 4: 1–6.
  • The American Academy of Periodontology, Proceedings of the World Workshop in Clinical Periodontitis. Chicago: The American Academy of Periodontology. 1989; 1:23-24.
  • Beck JD, Loe H. Epidemiological Principles in Studying Periodontal Diseases. Periodontol 2000 1993; 2: 34–45.
  • Galgut PN, O'Mullane D. Statistical Analysis of Data Derived from Clinical Variables of Plaque and Gingivitis. J Clin Periodontol 1998; 25: 549–53.
  • Mithlemann HR, Son S. Gingival Sulcus Bleeding-A Leading Symptom in Initial Gingivitis. Hely Odontol Acta 1971; 15: 107–13.
  • Loe H, Theilade E, Jenson SB. Experimental Gingivitis in Man. J Periodontol 1965; 36: 177–87.
  • U.S. Public Health Service NCHS. Periodontal Disease in Adults, United States 1960–1962. PHS Publ. No. 1000. Vol. Series 11 No. 12. 1965, Washington DC: Government Printing Office.
  • U.S. Public Health Service NCHS, Periodontal Diseases and Oral Hygiene Among Children, United States. DHEW Pub-lication No. (HSM) 72–1060. Vol. Series 11 No. 117. 1972, Washington DC: Government Printing Office.
  • Stamm JW. Epidemiology of Gingivitis. J Clin Periodontol 1986; 13: 360–6.
  • U.S. Public Health Service NIDR. Oral Health of United States Adults; National Findings. NIH Publ. No. 87–2868. Bethesda MD: NIDR, 1987.
  • Bhat M. Periodontal Health of 14-17-year-old US Schoolchildren. J Public Health Dent 1991; 51: 5–11.
  • Page RC, Schroeder HE. Pathogenesis of Inflammatory Periodontal Disease. Lab Invest 1976; 33: 235–9.
  • Ranney RR. Classification of Periodontal Diseases. Periodontology 2000 1993; 2: 13–25.
  • Ellen RP. Oral colonization by gram-positive bacteria significant to periodontal disease. In: Genco RJ, Mergenhagen SE, eds. Host-parasite interactions in periodontal diseases. Washington, D.C.: American Society for Microbiology, 1982: 98–111.
  • Duchin S, van Houte J. Relationship of Streptococcus mutans and lactobacilli to incipient smooth surface dental caries in man. Archs Oral Biol 1978; 23: 779–86.
  • Liljemark WF, Bloomquist CG, Uhl LA, Schaffer EM, Wolff LF, Pihlstrom BL, et al. Distribution of oral Haemophilus species in dental plaque from a large adult population. Infect Immun 1984; 46: 778–86.
  • van Houte J, Green DB. Relationship between the concentration of bacteria in saliva and the colonization of teeth in humans. Infect Immun 1974; 9: 624–30.
  • Marsh PD. The significance of maintaining the stability of the natural microflora of the mouth. Brit Dent J 1991; 171: 174–7.
  • Marsh PD. Host defenses and microbial homeostasis: Role of microbial interactions. J Dent Res 1989; 68(Spec Iss): 1567–75.
  • Levine MJ, Tabak LA, Reddy M, Mandel ID. Nature of salivary pellicles in microbial adherence: role of salivary mucins. In: Mergenhagen S, Rosan B, eds. Molecular basis of oral microbial adhesion. Washington, D.C.: American Society for Microbiology, 1985: 125–30.
  • Rykke M, Rolla G. Effect of silicone oil on protein adsorption to hydroxyapatite in vitro and on pellicle formation in vivo. Scand J Dent Res 1990; 98: 401–11.
  • Rykke M, Rolla G, Sonju T. Effect of sodium lauryl sulfate on protein adsorption to hydroxyapatite in vitro and on pellicle formation in vivo. Scand J Dent 1990; 98: 135–43.
  • Rykke M, Sonju T, Rolla G. Interindividual and longitudinal studies of amino acid composition of pellicle collected in vivo. Scand J Dent Res 1990; 98: 129–34.
  • Rykke M, Rolla G. Effect of two organic phosphonates on protein adsorption in vitro and on pellicle formation in vivo. Scand J Dent Res 1990; 98: 486–96.
  • Tabak LA, Levine MJ, Jain NK, Bryan AR, Cohen RE, Monte LD, et al. Adsorption of human salivary mucins to hydroxyapatite. Archs Oral Biol 1985; 30: 423–7.
  • Tabak LA, Bowen WH. Roles of saliva (pellicle), diet, and nutrition on plaque formation. J Dent Res 1989; 68(Spec. Iss.): 1560–6.
  • Bennick A. Salivary proline-rich proteins. Molec and Cellular Biochem 1982; 45: 83–99.
  • Sonju T, Glantz P-O. Chemical composition of salivary integuments formed in vivo on solids with some established surface characteristics. Archs oral Biol 1975; 20: 687–91.
  • Baier RE, Glantz P-O. Characterization of oral in vivo films formed on different types of solid surfaces. Acta Odontol Scand 1978; 36: 289–301.
  • Espe MJ, Liljemark WF, Bloomquist CG, Douglas WH. Comparison of plaque formation on Enamel, Visie-dispers and SiluxTM. J Dent Res 1991; 70: 294.
  • Vassilakos N, Rundegren J, Arnebrant T, Glantz P-O. Adsorption from salivary fractions at solid/liquid and air/liquid interfaces. Archs Oral Biol 1992; 37: 549–57.
  • Resch D, Douglas W, Liljemark WF, Bloomquist C. Dynamic contact angle measurements at hard surface interfaces using the Wilhelmy technique. J Dent Res 1993; 72: 383.
  • Doyle RJ, Oakley JD, Murphy KR, McAlister D, Taylor KG. Graphical analyses of adherence data. In: Mergenhagen SE, Rosan B, eds Molecular basis of oral microbial adhe-sion. Washington, D.C.: American Society for Microbiology, 1985: 109–13.
  • Quirynen M, Marechal M, Busscher HJ, Weerkamp AH, Arends J, Darius PL, et al. The influence of surface free-en-ergy on planimetric plaque growth in man. J Dent Res 1989; 68: 796–9.
  • Quirynen M, Marechal M, Busscher HJ, Weerkamp AH, Darius PL, van Steenberghe D. The influence of surface free energy and surface roughness on early plaque formation. An in vivo study in man. J Clin Periodontol 1990; 17: 138–44.
  • Busscher HJ, Weerkamp AH. Specific and non-specific inter-actions in bacterial adhesion on solid substrata. FEMS Microbiol Rev 1987; 46: 165–73.
  • Glantz P-O, Baier RE. Recent studies on nonspecific aspects of intraoral adhesion. J Adhesion 1986; 20: 227–44.
  • Weerkamp AH, van der Mei HC, Busscher HJ. The surface free energy of oral streptococci after being coated with saliva and its relation to adhesion in the mouth. J Dent Res 1985; 64: 1204–10.
  • Weerkamp AH, Uyen HM, Busscher HJ. Effect of zeta potential and surface energy on bacterial adhesion to un-coated and saliva-coated human enamel and dentin. J Dent Res 1988; 67: 1483–7.
  • Hillman JD, van Houte J, Gibbons RJ. Sorption of bacteria to human enamel powder. Archs Oral Biol 1970; 15: 899–903.
  • van Houte J, Gibbons RJ, Banghart SB. Adherence as a determinant of the presence of Streptococcus salivarius and Streptococcus sanguis on the human tooth surface. Archs Oral Biol 1970; 15: 1025–34.
  • van Houte J, Gibbons RJ, Pulkkinen AJ. Adherence as an ecological determinant for streptococci in the human mouth. Archs Oral Biol 1971; 16: 1131–41.
  • Gibbons RJ. Bacterial adhesion to oral tissues: a model for infectious diseases. J Dent Res 1989; 68: 750–60.
  • Gibbons RJ. Microbial ecology: adherent interactions which may affect microbial ecology in the mouth. J Dent Res 1984; 63: 378–85.
  • Scholler M, Klein JP, Sommer P, Frank R. Common anti-gens of streptococcal and nonstreptococcal oral bacteria: Characterizaton of wall-associated protein and comparison with extracellular protein antigen. Infect Immun 1983; 40: 1186–91.
  • Boyd J, McBride BC. Fractionation of hemagglutinating and bacterial binding adhesins of Bacteroides gingivalis. Infect Immun 1984; 45: 403–9.
  • Duchesne P, Grenier D, Mayrand D. Demonstration of adherence properties of Porphyromonas gin givalis outer membrane vesicles using a new microassay. Oral Microbiol Immunol 1995; 10: 76–80.
  • Fives-Taylor PM, Macrina FL, Pritchard TJ, Peene SS. Expression of Streptococcus sanguis antigens in Escherichia coli: cloning of a structural gene for adhesion fimbriae. Infect Immun 1987; 55: 123–8.
  • Ganeshkumar N, Song M, McBride BC. Cloning of a Strep-tococcus sanguis adhesin which mediates binding to saliva-coated hydroxyapatite. Infect Immun 1988; 56: 1150–7.
  • Haapasalo M, Muller K-H, Uitto V-J, Leung WK, McBride BC. Characterization, cloning and binding properties of the major 53-kilodalton Treponema denticola surface antigen. Infect Immun 1992; 60: 2058–65.
  • Hasty DL, Ofek I, Courtney HS, Doyle RJ. Multiple ad-hesins of streptococci. Infect Immun 1992; 60: 2147–52.
  • Issacson RE. Pilus adhesins. In: Savage DC, Fletcher, eds. Bacterial Adhesion, Mechanisms and Physiological Signifi-cance. New York, London: Plenum Press, 1985: 307–36.
  • Jenkinson HF. Adherence, coaggregation, and hydrophobicity of Streptococcus gordonii associated with expression of cell surface lipoproteins. Infect Immun 1992; 60: 1225–8.
  • Lai CH, Bloomquist C, Liljemark WF. Purification and characterization of an outer membrane protein adhesin from Haemophilus parainfluenzae HP-28. Infect Immun 1990; 58: 3833–9.
  • Lamont RJ, Rosan B, Baker CT, Nelson GM. Characterization of an adhesin antigen of Streptococcus sanguis G9B. Infect Immun 1988; 56: 2417–23.
  • Liljemark WF, Bloomquist CG. Isolation of a protein-containing cell surface component from Streptococcus sanguis which affects its adherence to saliva-coated hydroxyapatite. Infect Immun 1981; 34: 428–34.
  • London J, Allen J. Purification and characterization of a Bactero ides loeschei adhesin that interacts with procaryotic and eucaryotic cells. J Bacteriol 1990; 172: 2527–34.
  • Murray PA, Levine MJ, Reddy MS, Tabak LA, Bergey EJ. Preparation of a sialic acid-binding protein from Streptococ-cus mills KS32AR. Infect Immun 1986; 53: 359–65.
  • Murray PA, Kern DG, Winkler JR. Identification of a galactose-binding lectin on Fusobacterium nucleatum FN-2. Infect Immun 1988; 56: 1314–9.
  • Nyberg G, Stromberg N, Jonsson A, Karlsson K-A, Normark S. Erythrocyte gangliosides act as receptors for Neisse-ria subj7ava: identification of the Sia-1 adhesin. Infect Immun 1990; 58: 2555–63.
  • Rosan B, Baker CT, Nelson GM, Berman R, Lamont RJ, Demuth DR. Cloning and expression of an adhesin antigen of Streptococcus sanguis G9B in Escherichia coli. J Gen Microbiol 1989; 135: 531–8.
  • Sharma A, Sojar HT, Lee J-Y, Genco RJ. Expression of a functional Porphyromonas gingivalis fimbrillin polypeptide in Escherichia coli: purification, physicochemical and immuno-chemical characterization, and binding characteristics. Infect Immun 1993; 61: 3570–3.
  • Tokuda M, Okahashi N, Takahashi I, Nakai M, Nagaoka S, Kawagoe M, et al. Complete nucleotide sequence of the gene for a surface protein antigen of Streptococcus sobrinus. Infect Immun 1991; 59: 3309–12.
  • Wu-Yuan CD, Gill RE. An 87-kilodalton glucan-binding protein of Streptococcus sobrinus B13. Infect Immun 1992; 60: 5291–3.
  • Correia F, DiRienzo JM, McKay T, Rosan B. Cloning and nucleotide sequence analysis of a new member of the strepto-coccal 37-kDa adhesin family. J Dent Res 1995; 74(AADR Abstracts): 200.
  • Morris EJ, McBride BC. Adherence of Streptococcus sanguis to saliva-coated hydroxyapatite: evidence of two binding sites. Infect Immun 1984; 43: 656–63.
  • Cowan MM, Taylor KG, Doyle RJ. Role of sialic acid in the kinetics of Streptococcus sanguis adhesion to artificial pelli-cle. Infect Immun 1987; 55: 1552–7.
  • Gibbons RJ, Moreno EC, Etherden I. Concentration-dependent multiple binding sites on saliva-treated hydroxyapatite for Streptococcus sanguis. Infect Immun 1983; 39: 280–9.
  • Gibbons RJ, Etherden I, Peros W. Aspects of the attachment of oral streptococci to experimental pellicles. In: Mer-genhagen SE, Rosan B, eds Molecular Basis of Oral Microbial Adhesion. Washington, D.C.: American Society for Microbiology, 1985: 77–84.
  • Liljemark WF, Bloomquist CG, Fenner U. Characteristics of the adherence of oral haemophilus species to an experi-mental salivary pellicle and to other oral bacteria. In: Mer-genhagen SE, Rosan B, eds Molecular Basis of Oral Microbial Adhesion. Washington D.C.: American Society for Microbiology, 1985: 94–102.
  • Cisar JO, Kolenbrander PE, McIntire FC. Specificity of coaggregation reactions between human oral streptococci and strains of Actinomyces viscosus or Actinomyces naeslundii. Infect Immun 1979; 24: 742–52.
  • Clark WB, Wheeler TT, Cisar JO. Specific inhibition of adsorption of Actinomyces viscosus T14V to saliva-treated hydroxyapatite by antibody against type 1 fimbriae. Infect Immun 1984; 43: 497–501.
  • Kolenbrander PE. Intergeneric coaggregation among human oral bacteria and ecology of dental plaque. Ann Rev Micro-biol 1988; 42: 627–56.
  • Kolenbrander PE, London J. Adhere today, here tomorrow: Oral bacterial adherence. J Bacteriol 1993; 175: 3247–52.
  • McIntire FC. Specific surface components and microbial coaggregation. In: Mergenhagen SE, Rosan B, eds. Molecu-lar Basis of Oral Microbial Adhesion. Washington, D.C.: American Society for Microbiology, 1985: 153–8.
  • Liljemark WF, Fenner LJ, Bloomquist CG. In vivo coloniza-tion of salivary pellicle by Haemophilus, Actinomyces and Streptococcus species. Caries Res 1986; 20: 481–97.
  • Syed SA, Loesche WJ. Bacteriology of human experimental gingivitis: effect of plaque age. Infect Immun 1978; 21: 821–9.
  • Hawkins BW, Cannon RD, Jenkinson HF. Interactions of Actinomyces naeslundii strains T14V and ATCC 12104 with saliva, collagen and fibrinogen. Archs Oral Biol 1993; 38: 533–5.
  • Liu T, Gibbons RJ, Hay DI. Streptococcus cricetus and Streptococcus rattus bind to different segments of collagen molecules. Oral Microbiol Immunol 1990; 5: 143–8.
  • Liu T, Gibbons RJ. Binding of streptococci of the `mutans' group to type 1 collagen associated with apatitic surfaces. Oral Microbiol Immunol 1990; 5: 131–6.
  • Switalski LM, Butcher WG, Caufield PC, Lantz MS. Colla-gen mediates adhesion of Streptococcus mutans to human dentin. Infect Immun 1993; 61: 4119–25.
  • Gibbons RJ, Hay DI. Human salivary acidic proline-rich proteins and statherin promote the attachment of Actino-myces viscosus LY7 to apatitic surfaces. Infect Immun 1988; 56: 439–45.
  • Gibbons RJ, Spinell DM. Salivary-induced aggregation of plaque bacteria. In: McHugh WD, ed. Dental Plaque. New York: Churchill Livingstone, 1969: 207–15.
  • Hay DI, Gibbons RJ, Spinell DM. Characteristics of some high molecular weight constituents with bacterial aggregat-ing activity from whole saliva and dental plaque. Caries Res 1971; 5: 111–23.
  • Gibbons RJ, van Houte J. Bacterial adherence and the formation of dental plaques. In: Beachey EH, ed Bacterial Adherence (Receptors and Recognition), Series B, vol. 6. London: Chapman Hall, 1980: 61–104.
  • Liljemark WF, Schauer SV. Competitive binding among oral streptococci to hydroxyapatite. J Dent Res 1977; 56: 157–65.
  • Rosan B, Appelbaum B, Golub E, Malamud D, Mandel ID. Enhanced saliva-mediated bacterial aggregation and de-creased bacterial adhesion in caries-resistant versus caries-susceptible individuals. Infect Immun 1982; 38: 1056–9.
  • Ligtenberg MM, Walgreen-Weterings E, Veerman ECI, de Graaff J, Nieuw Amerongen AV. Adherence of Streptococ-cus gordonii HG 222 in the presence of saliva. Antonie van Leeuwenhoek 1993; 64: 39–45.
  • Kashket S, Donaldson CG. Saliva-induced aggregation of oral streptococci. J Bacteriol 1972; 112: 1127–33.
  • Demuth DR, Davis CA, Corner AM, Lamont RJ, Leboy PS, Malamud D. Cloning and expression of a Streptococcus sanguis surface antigen that interacts with a human salivary agglutinin. Infect Immun 1988; 56: 2484–90.
  • Demuth DR, Berthold P, Leboy PS, Golub EE, Davis CA, Malamud D. Saliva-mediated aggregation of Enterococcus faecalis transformed with a Streptococcus sanguis gene en-coding the SSP-5 surface antigen. Infect Immun 1989; 57: 1470–5.
  • Ericson T, Arwin H. Molecular basis of saliva-mediated aggregation. In: Mergenhagen SE, Rosan B, eds. Molecular Basis of Oral Microbial Adhesion. Washington, D.C.: Amer-ican Society for Microbiology, 1985: 144–50.
  • Ericson T, Pruitt K, Wedel H. The reaction of salivary substances with bacteria. J Oral Path 1975; 4: 307–23.
  • Lamont RJ, Demuth DR, Davis CA, Malamud D, Rosan B. Salivary-agglutinin-mediated adherence of Streptococcus mu-tans to early plaque bacteria. Infect Immun 1991; 59: 3446–50.
  • Liljemark WF, Bloomquist CG, Ofstehage JC. Aggregation and adherence of Streptococcus sanguis: Role of human salivary immunoglobulin A. Infect Immun 1979; 26: 1104–10.
  • Rundegren J, Arnold RR. Differentiation and interaction of secretory immunoglobulin A and a calcium-dependent parotid agglutinin for several bacterial strains. Infect Immun 1987; 55: 288–92.
  • Rundegren JL, Arnold RR. Bacteria-agglutinating charac-teristics of secretory IgA and a salivary agglutinin. Advs Med Biol 1987; 216B: 1005–13.
  • Rudney JD, Ji Z, Larson CJ, Liljemark WF, Hickey KL. Saliva protein binding to layers of oral streptococci in vitro and in vivo. J Dent Res 1995; 74: 1280–8.
  • Demuth DR, Golub EE, Malamud D. Streptococcal-host interactions: Structural and functional analysis of a Strepto-coccus sanguis receptor for a human salivary glycoprotein. J Biological Chem 1990; 265: 7120–6.
  • Demuth DR, Lammey MS, Huck M, Lally ET, Malamud D. Comparison of Streptococcus mutans and Streptococcus san-guis receptors for human salivary agglutinin. Microbial Path 1990; 9: 199–211.
  • Ellen RP, Fillery ED, Chan KH, Grove DA. Sialidase-en-hanced lectin-like mechanism for Actinomyces viscosus and Actinomyces naeslundii hemagglutination. Infect Immun 1980; 27: 335–43.
  • Liljemark WF, Bloomquist CG, Fenner LJ, Antonelli PJ, Coulter MC. Effect of neuraminidase on the adherence to salivary pellicle of Streptococcus sanguis and Streptococcus mitis. Caries Res 1989; 23: 141–5.
  • Hay DI, Ahern JM, Schluckebier SK, Schlesinger DH. Hu-man salivary acidic proline-rich protein polymorphisms and biosynthesis studied by high-performance liquid chromatog-raphy. J Dent Res 1994; 73: 1717–26.
  • Kishimoto E, Hay DI, Gibbons RJ. Inhibition of adhesion-promoting activity of a human salivary protein which pro-motes adhesion of Streptococcus mutans JBP to hydroxyapatite. FEMS Microbiol Lett 1991; 90: 19–22.
  • Schlesinger DH, Hay DI, Schluckebier SK, Ahern JM. Pri-mary structure of a novel human salivary acidic proline-rich protein. Peptide Res. 1994; 7: 242–7.
  • Schwartz SS, Hay DI, Schluckebier SK. Inhibition of cal-cium phosphate precipitation by human salivary statherin: structure-activity relationships. Calcif Tissue Int 1992; 50: 511–7.
  • Gibbons RJ, Hay DI. Human salivary acidic proline-rich proteins and statherin promote the attachment of Actin° - myces viscosus LY7 to apatitic surfaces. Infect Immun 1988; 56: 439–45.
  • Gibbons RJ, Hay DI, Schlesinger DH. Delineation of a segment of adsorbed salivary acidic proline-rich proteins which promotes adhesion of Streptococcus gordonii to ap-atitic surfaces. Infect Immun 1991; 59: 2948–54.
  • Raj PA, Johnsson M, Levine MJ, Nancollas GH. Salivary statherin. Dependence on sequence, charge, hydrogen bond-ing potency, and helical conformation for adsorption to hydroxyapatite and inhibition of mineralization. J Biol Chem 1992; 267: 5968–76.
  • Ramasubbu N, Thomas LM, Bhandary KK, Levine MJ. Structural characteristics of human salivary statherin: a model for boundary lubrication at the enamel surface. Crit Rev Oral Biol Med 1993; 4: 363–70.
  • Crowley PJ, Brady LJ, Piacentini DA, Bleiweis AS. Identifi-cation of a salivary agglutinin-binding domain within cell surface adhesin PI of Streptococcus mutans. Infect Immun 1993; 61: 1547–52.
  • Prakobphol A, Levine MJ, Tabak LA, Reddy MS. Purifica-tion of a low-molecular-weight, mucin-type glycoprotein from human submandibular-sublingual saliva. Carbohydr Res 1982; 108: 111–22.
  • Skopek RJ, Liljemark WF. The influence of saliva on inter-bacterial adherence. Oral Microbiol Immunol 1994; 9: 19–24.
  • Gibbons RJ, Nygaard M. Interbacterial aggregation of plaque bacteria. Archs Oral Biol 1970; 15: 1397–400.
  • Slots J, Gibbons RJ. Attachment of Bacteroides melanino-genicus subsp. asaccharolyticus to oral surfaces and its possi-ble role in colonization of the mouth and of periodontal pockets. Infect Immun 1978; 19: 254–64.
  • Kolenbrander PE, Andersen RN. Multigeneric aggregations among oral bacteria: a network of independent cell-to-cell interactions. Infect Immun 1986; 168: 851–9.
  • Komiyama K, Gibbons RJ. Inhibition of lactose-reversible adherence between Actinomyces viscosus and oral strepto-cocci by salivary components. Caries Res 1984; 18: 193–200.
  • Skopek RJ, Liljemark WF, Bloomquist CG, Rudney JD. Dental plaque development on defined streptococcal sur-faces. Oral Microbiol Immunol 1993; 8: 16–23.
  • Scheie AA, Eggen KH, Rolla G. Glucosyltransferase activity in human in vivo formed enamel pellicle and in whole saliva. Scand J Dent Res 1987; 95: 212–5.
  • Hiroi T, Fukushima K, Kantake I, Namiki Y, Ikeda T. De novo glucan synthesis by mutans streptococcal glucosyltrans-ferases present in pellicle promoted firm binding of Strepto-coccus gordonii to tooth surfaces. FEMS Microbiol Lett 1992; 96: 193–8.
  • Schilling KM, Bowen WH. Glucans synthesized in situ in experimental salivary pellicle function as specific binding sites for Streptococcus mutans. Infect Immun 1992; 60: 284–95.
  • Gibbons RJ, Cohen L, Hay DI. Strains of Streptococcus mutans and Streptococcus sobrinus attach to different pellicle receptors. Infect Immun 1986; 52: 555–61.
  • Bloomquist C, Lundebrek R, McClintock K, Resch D, Dunny G, Reilly B, et al. An extracellular bacterial factor which STARTS bacterial DNA replication. J Dent Res 1994; 73: 1599.
  • Carlsson J, Egelberg J. Effect of diet on early plaque forma-tion in man. Odont Revy 1965; 16: 112–25.
  • de Stoppelaar JD, van Houte J, Dirks OB. The effect of carbohydrate restriction on the presence of Streptococcus mutans, Streptococcus sanguis and iodophilic polysaccharide-producing bacteria in human dental plaque. Caries Res 1970; 4: 114–23.
  • McCabe RM, Donkersloot JA. Adherence of Veillonella species mediated by extracellular glucosyltransferase from Streptococcus salivarius. Infect Immun 1977; 18: 726–34.
  • Hsu SD, Cisar JO, Sandberg AL, Kilian M. Adhesive prop-erties of viridans streptococcal species. Microb Ecol in Hlth Dis 1994; 7: 125–37.
  • Orstavik D. Initial bacterial adhesion to surfaces: Ecological implications in dental plaque formation. In: ten Cate JM, Leach SA, Arends J, eds. Bacterial Adhesion and Preventive Dentistry. Oxford, England: IRL Press, 1984: 153–66.
  • Gibbons RJ, Kapsimalis B, Socransky SS. The source of salivary bacteria. Archs Oral Biol 1964; 9: 101–3.
  • Loesche WJ. Ecology of the oral flora. In: Nisengard RJ, Newman MG, eds. Oral Microbiology and Immunology. Philadelphia, PA: W.B. Saunders Co, 1988: 307–19.
  • Bloomquist CG, Reilly BE, Liljemark WF. Adherence, accu-mulation and cell division of a natural adherent bacterial population. J Bacteriol 1996; 178: 1172–7.
  • Robinson PJ. Gingivitis: a prelude to periodontitis? J Clin Dent 1995; 6 Spec No: 41.
  • Darveau RP, Tanner A, Page RC. The microbial challenge in periodotitis. Periodontology 2000 1997; 14: 12–32.
  • Raber-Durlacher JE, van Steenbergen TJM, van der Velden U, de Graaff J, Abraham-Inpijn L. Experimental gingivitis during pregnancy and post-partum: clinical, endocrinologi-cal, and microbiological aspects. J Clin Periodont 1994; 29: 549–58.
  • Wolff L, Dahlén G, Aeppli D. Bacteria as risk markers for periodontitis. J Periodontol 1994; 64: 498–510.
  • Marsh PD. Microbiological aspects of the chemical con-trol of plaque and gingivitis. J Dent Res 1991; 71: 1431–8.