Literature DB >> 2613439

Complete primary structure of statherin, a potent inhibitor of calcium phosphate precipitation, from the saliva of the monkey, Macaca arctoides.

D H Schlesinger1, D I Hay, M J Levine.   

Abstract

Human saliva, which is supersaturated with respect to basic calcium phosphate salts, is stabilized primarily by the presence of two classes of phosphoproteins, statherin and the acidic proline-rich proteins (PRP). These molecules act by inhibiting both primary (spontaneous) precipitation of calcium phosphates in saliva and secondary (surface induced) precipitation of these salts onto dental enamel. The complete amino-acid sequences of several human PRP and the N-terminal sequence of PRP from saliva of M. arctoides have been determined. Similarly, the complete sequence of statherin from human and M. fascicularis saliva is known. We now report the complete structure of statherin from the saliva of the stump-tailed monkey, M. arctoides. The structure was determined by gas-phase sequencing of intact statherin, elucidating positions 1-26, and sequencing an unpurified mixture of tryptic peptides which elucidated the remaining positions through the C-terminus (residue 42) of the molecule. This latter degradation produced an eight amino-acid overlap with that of intact statherin and was confirmed by C-terminal analysis and amino-acid composition of native statherin. The complete amino-acid sequence of M. arctoides statherin is: NH2-Asp-PSer-PSer-Glu-Glu5-Lys-Phe-Leu-Arg-Arg10 -Leu-Arg-Arg-Phe-Asp15-Glu- Gly-Arg-Tyr-Gly20-Pro-Tyr-Gln-Pro-Phe25-Val-Pro-Pro- Pro29Leu30-Tyr- Pro-Gln-Pro-Tyr35-Gln-Pro-Tyr-Gln-Pro40-Gln-Tyr-COOH This sequence differs from human statherin at positions 11, 12, 15, 16, 18, 25-27, 38-40 and from M. fascicularis statherin at positions 26 and 28.

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Year:  1989        PMID: 2613439     DOI: 10.1111/j.1399-3011.1989.tb00705.x

Source DB:  PubMed          Journal:  Int J Pept Protein Res        ISSN: 0367-8377


  7 in total

1.  Strains of Actinomyces naeslundii and Actinomyces viscosus exhibit structurally variant fimbrial subunit proteins and bind to different peptide motifs in salivary proteins.

Authors:  T Li; I Johansson; D I Hay; N Strömberg
Journal:  Infect Immun       Date:  1999-05       Impact factor: 3.441

2.  Inhibition of calcium phosphate precipitation by human salivary statherin: structure-activity relationships.

Authors:  S S Schwartz; D I Hay; S K Schluckebier
Journal:  Calcif Tissue Int       Date:  1992-06       Impact factor: 4.333

3.  Different type 1 fimbrial genes and tropisms of commensal and potentially pathogenic Actinomyces spp. with different salivary acidic proline-rich protein and statherin ligand specificities.

Authors:  T Li; M K Khah; S Slavnic; I Johansson; N Strömberg
Journal:  Infect Immun       Date:  2001-12       Impact factor: 3.441

4.  Tyrosine sulfation of statherin.

Authors:  C Kasinathan; N Gandhi; P Ramaprasad; P Sundaram; N Ramasubbu
Journal:  Int J Biol Sci       Date:  2007-03-02       Impact factor: 6.580

5.  Diagnostic model of saliva peptide finger print analysis of oral squamous cell carcinoma patients using weak cation exchange magnetic beads.

Authors:  Wei-Peng Jiang; Zhen Wang; Li-Xin Xu; Xin Peng; Feng Chen
Journal:  Biosci Rep       Date:  2015-05-12       Impact factor: 3.840

6.  Oral interactions between a green tea flavanol extract and red wine anthocyanin extract using a new cell-based model: insights on the effect of different oral epithelia.

Authors:  Susana Soares; Sónia Soares; Elsa Brandão; Carlos Guerreiro; Nuno Mateus; Victor de Freitas
Journal:  Sci Rep       Date:  2020-07-28       Impact factor: 4.379

7.  Trial Proteomic Qualitative and Quantitative Analysis of the Protein Matrix of Submandibular Sialoliths.

Authors:  Paulina Czaplewska; Aleksandra E Bogucka; Natalia Musiał; Dmitry Tretiakow; Andrzej Skorek; Dominik Stodulski
Journal:  Molecules       Date:  2021-11-06       Impact factor: 4.411

  7 in total

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