Abstract
High-molecular-weight polymers of alpha-1,6-linked D-glucans are insoluble in alcohol solutions. Whole, but not parotid, saliva prevented the precipitation of D-glucans by 80% (vol/vol) ethanol, showing that the whole saliva contained a factor which complexed with the glucan to render it alcohol soluble. The glucan-binding factor was retained on a column of Sephacryl S-200 which had been preequilibrated with 80% ethanol. The factor was then eluted with water. Passive hemagglutination assays revealed that the glucan-binding factor could sensitize erythrocytes to agglutination with anti-poly(glycerolphosphate), suggesting that the active glucan-binding component with lipoteichoic acid. The glucan-solubilizing factor was resistant to heat (100 degrees C), proteases, sialidase, lysozyme, lactoperoxidase, trichloroacetic acid, and Triton X-100. When sucrose was added to saliva, a suspension of Streptococcus cricetus AHT, or a suspension of Streptococcus sanguis 10556, relatively large amounts of glucan-binding factor were released in a soluble form. In addition, penicillin G caused the release of the glucan-solubilizing component from a suspension of S. cricetus AHT. It is suggested that whole saliva contains a component, tentatively identified as lipoteichoic acid, which can complex with glucans in a relatively hydrophobic solvent. This type of complex formation may be important in the adhesion of oral streptococci to saliva-coated surfaces.
MeSH Terms
Glucans/metabolism
Humans
Lipopolysaccharides/metabolism
Saliva/analysis,microbiology
Solubility
Streptococcus/physiology
Teichoic Acids/metabolism
Chemicals
Glucans
Lipopolysaccharides
Teichoic Acids
lipoteichoic acid
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Cowan M M
Health Sciences Center, University of Louisville, Kentucky 40292.
Parrish K
Kessler R E
Pyle C
Taylor K G
Ciardi J E
Doyle R J
References (27)
27 references, click to expand
-
Release of lipoteichoic acid from Streptococcus sanguis: stimulation of release during penicillin treatment.
J Bacteriol. 1979 Mar;137(3):1180-4
PMID: 438118
-
Positive coooperativity in the binding of Streptococcus sanguis to hydroxylapatite.
Infect Immun. 1982 Jan;35(1):157-65
PMID: 6172378
-
High amounts of lipoteichoic acid in sucrose-induced plaque in vivo.
Caries Res. 1980;14(4):235-8
PMID: 6769589
-
Effects of penicillin on group A streptococci: loss of viability appears to precede stimulation of release of lipoteichoic acid.
Antimicrob Agents Chemother. 1981 Jan;19(1):39-43
PMID: 7018386
-
Analysis of hexose phosphates and sugar mixtures with the anthrone reagent.
J Biol Chem. 1954 May;208(1):55-9
PMID: 13174514
-
Formation of molecular complexes between a structurally defined M protein and acylated or deacylated lipoteichoic acid of Streptococcus pyogenes.
J Bacteriol. 1982 Feb;149(2):426-33
PMID: 7035430
-
The activity of glucosyltransferase adsorbed onto saliva-coated hydroxyapatite.
J Dent Res. 1988 Jan;67(1):2-8
PMID: 11039035
-
The synthesis of teichoic acids. V. Polyglucosylglycerol phosphate and polygalactosylglycerol phosphate.
J Biol Chem. 1966 Jan 25;241(2):494-506
PMID: 4285661
-
Determination of fructose and fructose-yielding carbohydrates with cold anthrone.
Anal Biochem. 1967 Apr;19(1):193-4
PMID: 6048683
-
Studies on the group F antigen of lactobacilli: detection of antibodies by haemagglutination.
J Gen Microbiol. 1970 Mar;60(3):315-22
PMID: 5487617
-
Isolation of the teichoic acid of Bacillus subtilis 168 by affinity chromatography.
Prep Biochem. 1973;3(1):13-8
PMID: 4199049
-
Relationship between cell-bound dextransucrase and the agglutination of Streptococcus mutans.
Infect Immun. 1975 Sep;12(3):512-20
PMID: 809356
-
Soluble macromolecular complexes involving bacterial teichoic acids.
J Bacteriol. 1975 Oct;124(1):341-7
PMID: 240807
-
Adsorption of Streptococcus mutans lipoteichoic acid to hydroxyapatite.
Scand J Dent Res. 1977 Sep;85(6):387-91
PMID: 271337
-
Excretion of lipoteichoic acid by group A streptococci. Influence of penicillin on excretion and loss of ability to adhere to human oral mucosal cells.
J Clin Invest. 1978 Mar;61(3):671-7
PMID: 346604
-
Absence of glycerol teichoic acids in certain oral streptococci.
Science. 1978 Sep 8;201(4359):918-20
PMID: 684416
-
Surface fibrils may be responsible for the salivary glycoprotein-mediated aggregation of the oral bacterium Streptococcus sanguis.
Arch Oral Biol. 1981;26(11):945-9
PMID: 6950710
-
Blood-group-reactive glycoprotein from human saliva interacts with lipoteichoic acid on the surface of Streptococcus sanguis cells.
Arch Oral Biol. 1982;27(3):261-8
PMID: 6953942
-
Hydrophobic interactions and the adherence of Streptococcus sanguis to hydroxylapatite.
Infect Immun. 1982 Nov;38(2):637-44
PMID: 6292108
-
Association of lipids with proteins and glycoproteins in human saliva.
J Dent Res. 1983 Jan;62(1):24-7
PMID: 6571849
-
Adsorption of glucosyltransferase to saliva coated hydroxyapatite. Possible mechanism for sucrose dependent bacterial colonization of teeth.
Scand J Dent Res. 1983 Apr;91(2):112-7
PMID: 6304864
-
Effects of substitution on polyglycerol phosphate-specific antibody binding to lipoteichoic acids.
Infect Immun. 1983 Aug;41(2):549-55
PMID: 6409810
-
Chemical and immunological characterization of a novel amphipathic antigen from biotype B Streptococcus sanguis.
J Gen Microbiol. 1985 Aug;131(8):1981-8
PMID: 3932593
-
Comparative analysis of the localization of lipoteichoic acid in Streptococcus agalactiae and Streptococcus pyogenes.
Infect Immun. 1987 Oct;55(10):2383-6
PMID: 3308704
-
Isolation of a glucan-binding domain of glucosyltransferase (1,6-alpha-glucan synthase) from Streptococcus sobrinus.
Infect Immun. 1988 Apr;56(4):880-4
PMID: 2964413
-
Protein measurement with the Folin phenol reagent.
J Biol Chem. 1951 Nov;193(1):265-75
PMID: 14907713
-
Characterization and localization of the enzymatic deacylation of lipoteichoic acid in group A streptococci.
J Exp Med. 1979 Dec 1;150(6):1498-509
PMID: 390087