Skip to main content
Erschienen in: Calcified Tissue International 3/2007

01.09.2007

Peritubular Dentin, a Vertebrate Apatitic Mineralized Tissue without Collagen: Role of a Phospholipid-Proteolipid Complex

verfasst von: Bat-Ami Gotliv, Arthur Veis

Erschienen in: Calcified Tissue International | Ausgabe 3/2007

Einloggen, um Zugang zu erhalten

Abstract

Peritubular dentin (PTD), a highly mineralized annular ring surrounding each odontoblastic process within the dentin, is an enigmatic component in vertebrate teeth. To characterize its structure and composition, we have coupled in situ scanning electron microscopic (SEM) and time-of-flight secondary ion mass spectrometric (TOF-SIMS) analysis of the surface composition of intact bovine coronal dentin with the isolation of intact PTD from hypochlorite-treated dentin and its subsequent TOF-SIMS and direct chemical analysis. The isolated PTD is shown to be a mineralized but porous structure complexed with a high-molecular mass calcium-proteolipid-phospholipid-phosphate complex, which cannot be extracted from the dentin prior to demineralization. The TOF-SIMS and direct amino acid analysis data confirm that the PTD protein is rich in glutamic acid but does not contain collagen. Phosphatidylcholine, phosphatidylserine, and phosphatidylinositol are present, along with a mannose-rich glycan and chondroitin-4- and chondroitin-6-sulfate glycosaminoglycans. PTD apatite, well described in the literature, must therefore form in this noncollagenous proteolipid-phospholipid complex without the intervention of collagen; nevertheless, as shown by SEM, the apatite is formed in small platy crystals, as in the bulk of the intertubular dentin (ITD). We hypothesize that the porous nature of the PTD and its proteolipid-phospholipid complexes may be involved in regulating communication between the ITD and internal PTD tubule fluids and the odontoblasts, similar to the involvement of such lipid complexes in neural, brain, and nuclear transport functions. Thus, the PTD should not be considered solely as a passive structural element in some teeth but as part of the system that allows for the vital function of the dentin.
Literatur
1.
Zurück zum Zitat Goracci G, Mori G, Casa de’Martinis L, Bazzucchi M (1993) Analisi ultrastructurale della dentina peritubulare e del lume tubulare di denti sani. Minerva Stomatol 42:205–216PubMed Goracci G, Mori G, Casa de’Martinis L, Bazzucchi M (1993) Analisi ultrastructurale della dentina peritubulare e del lume tubulare di denti sani. Minerva Stomatol 42:205–216PubMed
2.
Zurück zum Zitat Rabie AM, Veis A (1995) An immunocytochemical study of the routes of secretion of collagen and phosphophoryn from odontoblasts. Connect Tissue Res 31:197–209PubMed Rabie AM, Veis A (1995) An immunocytochemical study of the routes of secretion of collagen and phosphophoryn from odontoblasts. Connect Tissue Res 31:197–209PubMed
3.
Zurück zum Zitat Moriguchi M, Yamada M, Yanagisawa T (1998) Immunochemistry of proteoglycan in dentin and odontoblasts. J Anat (Japan) 73:239–245 Moriguchi M, Yamada M, Yanagisawa T (1998) Immunochemistry of proteoglycan in dentin and odontoblasts. J Anat (Japan) 73:239–245
4.
Zurück zum Zitat Goracci G, Mori G, Marci F, Baldi M (1999) Extent of the odontoblastic process. Analysis by SEM and confocal microscopy. Minerva Stomatol 48:1–8PubMed Goracci G, Mori G, Marci F, Baldi M (1999) Extent of the odontoblastic process. Analysis by SEM and confocal microscopy. Minerva Stomatol 48:1–8PubMed
5.
Zurück zum Zitat Hirayama A (1990) Experimental analytical electron microscopic studies on the quantitative analysis of elemental concentrations in biological thin specimens and its application to dental science [in Japanese]. Shikawa Gakuho 90:1019–1036 Hirayama A (1990) Experimental analytical electron microscopic studies on the quantitative analysis of elemental concentrations in biological thin specimens and its application to dental science [in Japanese]. Shikawa Gakuho 90:1019–1036
6.
Zurück zum Zitat Weiner S, Veis A, Beniash E, Arad T, Dillon JW, Sabsay B, Siddiqui F (1999) Peritubular dentin formation: crystal organization and the macromolecular constituents in human teeth. J Struct Biol 126:27–41PubMedCrossRef Weiner S, Veis A, Beniash E, Arad T, Dillon JW, Sabsay B, Siddiqui F (1999) Peritubular dentin formation: crystal organization and the macromolecular constituents in human teeth. J Struct Biol 126:27–41PubMedCrossRef
7.
Zurück zum Zitat Magne D, Guicheux J, Weiss P, Pilet P, Daculsi G (2002) Fourier transform infrared microspectroscopic investigation of the organic and mineral constituents of peritubular dentin: a horse study. Calcif Tissue Int 71:179–185PubMedCrossRef Magne D, Guicheux J, Weiss P, Pilet P, Daculsi G (2002) Fourier transform infrared microspectroscopic investigation of the organic and mineral constituents of peritubular dentin: a horse study. Calcif Tissue Int 71:179–185PubMedCrossRef
8.
Zurück zum Zitat Goldberg M, Molon Noblot M, Septier D (1980) Effect of 2 methods of demineralization on the preservation of glycoproteins and proteoglycans in the intertubular and peritubular dentin in the horse. J Biol Buccale 8:315–330PubMed Goldberg M, Molon Noblot M, Septier D (1980) Effect of 2 methods of demineralization on the preservation of glycoproteins and proteoglycans in the intertubular and peritubular dentin in the horse. J Biol Buccale 8:315–330PubMed
9.
Zurück zum Zitat Kinney JH, Balooch M, Marshall SJ, Marshall GW Jr, Weihs TP (1996) Atomic force microscope measurements of the hardness and elasticity of peritubular and intertubular human dentin. J Biomech Eng 118:133–135PubMed Kinney JH, Balooch M, Marshall SJ, Marshall GW Jr, Weihs TP (1996) Atomic force microscope measurements of the hardness and elasticity of peritubular and intertubular human dentin. J Biomech Eng 118:133–135PubMed
10.
Zurück zum Zitat Iwamoto N, Ruse ND (2003) Fracture toughness of human dentin. J Biomed Mater Res A 66:507–512PubMedCrossRef Iwamoto N, Ruse ND (2003) Fracture toughness of human dentin. J Biomed Mater Res A 66:507–512PubMedCrossRef
11.
Zurück zum Zitat Wang R (2005) Anisotropic fracture in bovine root and coronal dentin. Dent Mater 21:429–436PubMedCrossRef Wang R (2005) Anisotropic fracture in bovine root and coronal dentin. Dent Mater 21:429–436PubMedCrossRef
12.
Zurück zum Zitat Gotliv B-A, Robach JS, Veis A (2006) The composition and structure of bovine peritubular dentin: mapping by time of flight secondary ion mass spectroscopy. J Struct Biol 156:320–333PubMedCrossRef Gotliv B-A, Robach JS, Veis A (2006) The composition and structure of bovine peritubular dentin: mapping by time of flight secondary ion mass spectroscopy. J Struct Biol 156:320–333PubMedCrossRef
13.
Zurück zum Zitat Mantus DS, Ratner BD, Carlson BA, Moulder JF (1993) Static secondary ion mass spectrometry of adsorbed proteins. Anal Chem 65:1431–1438PubMedCrossRef Mantus DS, Ratner BD, Carlson BA, Moulder JF (1993) Static secondary ion mass spectrometry of adsorbed proteins. Anal Chem 65:1431–1438PubMedCrossRef
14.
Zurück zum Zitat Samuel NT, Wagner MS, Dornfeld KD, Castner DG (2001) Analysis of poly(amino acids) by static time-of-flight secondary ion mass spectrometry (TOF-SIMS). Surf Sci Spectra 8:163–184CrossRef Samuel NT, Wagner MS, Dornfeld KD, Castner DG (2001) Analysis of poly(amino acids) by static time-of-flight secondary ion mass spectrometry (TOF-SIMS). Surf Sci Spectra 8:163–184CrossRef
15.
Zurück zum Zitat Dambach S, Fartmann M, Kriegeskotte CCB, Hellweg S, Wiesmann H, Lipinsky D, Arlinghaus HF (2004) ToF-SIMS and laser-SNMS analysis of apatite formation in extracellular protein matrix of osteoblasts in vitro. Surface Interface Anal 36:711–715CrossRef Dambach S, Fartmann M, Kriegeskotte CCB, Hellweg S, Wiesmann H, Lipinsky D, Arlinghaus HF (2004) ToF-SIMS and laser-SNMS analysis of apatite formation in extracellular protein matrix of osteoblasts in vitro. Surface Interface Anal 36:711–715CrossRef
16.
Zurück zum Zitat Ostrowski SG, Szakal C, Kozole J, Roddy TP, Xu J, Ewing AG, Winograd N (2005) Secondary ion MS imaging of lipids in picoliter vials with a buckminsterfullerene ion source. Anal Chem 77:6190–6196PubMedCrossRef Ostrowski SG, Szakal C, Kozole J, Roddy TP, Xu J, Ewing AG, Winograd N (2005) Secondary ion MS imaging of lipids in picoliter vials with a buckminsterfullerene ion source. Anal Chem 77:6190–6196PubMedCrossRef
17.
Zurück zum Zitat Myers JM, Veis A, Sabsay B, Wheeler AP (1996) A method for enhancing the sensitivity and stability of Stains-all for phosphoproteins separated in sodium dodecyl sulfate-polyacrylamide gels. Anal Biochem 240:300–302PubMedCrossRef Myers JM, Veis A, Sabsay B, Wheeler AP (1996) A method for enhancing the sensitivity and stability of Stains-all for phosphoproteins separated in sodium dodecyl sulfate-polyacrylamide gels. Anal Biochem 240:300–302PubMedCrossRef
18.
Zurück zum Zitat Gotliv BA, Addadi L, Weiner S (2003) Mollusk shell acidic proteins: in search of individual functions. Chembiochem 4:522–529PubMedCrossRef Gotliv BA, Addadi L, Weiner S (2003) Mollusk shell acidic proteins: in search of individual functions. Chembiochem 4:522–529PubMedCrossRef
19.
Zurück zum Zitat Teichman RJ, Cummins JM, Takei GH (1974) The characterization of a malachite green stainable, glutaraldehyde extractable phospholipid in rabbit spermatozoa. Biol Reprod 10:565–577PubMedCrossRef Teichman RJ, Cummins JM, Takei GH (1974) The characterization of a malachite green stainable, glutaraldehyde extractable phospholipid in rabbit spermatozoa. Biol Reprod 10:565–577PubMedCrossRef
20.
Zurück zum Zitat Varelas JB, Zenarosa NR, Froelich CJ (1991) Agarose/polyacrylamide minislab gel electrophoresis of intact cartilage proteoglycans and their proteolytic degradation products. Anal Biochem 197:396–400PubMedCrossRef Varelas JB, Zenarosa NR, Froelich CJ (1991) Agarose/polyacrylamide minislab gel electrophoresis of intact cartilage proteoglycans and their proteolytic degradation products. Anal Biochem 197:396–400PubMedCrossRef
21.
Zurück zum Zitat Goldberg M, Boskey AL (1996) Lipids and biomineralizations. Prog Histochem Cytochem 31:1–187PubMed Goldberg M, Boskey AL (1996) Lipids and biomineralizations. Prog Histochem Cytochem 31:1–187PubMed
22.
Zurück zum Zitat Wuthier RE (1968) Lipids of mineralizing epiphyseal tissues in the bovine fetus. J Lipid Res 9:68–78PubMed Wuthier RE (1968) Lipids of mineralizing epiphyseal tissues in the bovine fetus. J Lipid Res 9:68–78PubMed
23.
Zurück zum Zitat Bligh EG, Dyer WJ (1959) A rapid method of total lipid extraction and purification. Can J Biochem Physiol 37:911–917PubMed Bligh EG, Dyer WJ (1959) A rapid method of total lipid extraction and purification. Can J Biochem Physiol 37:911–917PubMed
24.
Zurück zum Zitat Goldberg M, Septier D, Lécolle S, Vermilen L, Bassila-Mapahou P, Carreau JP, Gritli A, Bloch-Zupan A (1995) Lipids in predentine and dentine. Connect Tissue Res 33:105–114PubMed Goldberg M, Septier D, Lécolle S, Vermilen L, Bassila-Mapahou P, Carreau JP, Gritli A, Bloch-Zupan A (1995) Lipids in predentine and dentine. Connect Tissue Res 33:105–114PubMed
25.
Zurück zum Zitat Wu LNY, Genge BR, Kang MW, Arsenault AL, Wuthier RW (2002) Changes in phospholipid extractability and composition accompany mineralization of chicken growth plate cartilage matrix vesicles. J Biol Chem 277:5126–5133PubMedCrossRef Wu LNY, Genge BR, Kang MW, Arsenault AL, Wuthier RW (2002) Changes in phospholipid extractability and composition accompany mineralization of chicken growth plate cartilage matrix vesicles. J Biol Chem 277:5126–5133PubMedCrossRef
26.
Zurück zum Zitat Takuma S (1960) Electron microscopy of the structure around the dentinal tubule. J Dent Res 39:973–981PubMed Takuma S (1960) Electron microscopy of the structure around the dentinal tubule. J Dent Res 39:973–981PubMed
27.
Zurück zum Zitat Beniash E, Traub W, Veis A, Weiner S (2000) A transmission electron microscope study using vitrified ice sections of predentin: structural changes in the dentin collagenous matrix prior to mineralization. J Struct Biol 132:212–225PubMedCrossRef Beniash E, Traub W, Veis A, Weiner S (2000) A transmission electron microscope study using vitrified ice sections of predentin: structural changes in the dentin collagenous matrix prior to mineralization. J Struct Biol 132:212–225PubMedCrossRef
28.
Zurück zum Zitat Shapiro IM, Wuthier RE, Irving JT (1966) A study of the phospholipids of bovine dental tissues. I. Enamel matrix and dentine. Arch Oral Biol 11:501–512PubMedCrossRef Shapiro IM, Wuthier RE, Irving JT (1966) A study of the phospholipids of bovine dental tissues. I. Enamel matrix and dentine. Arch Oral Biol 11:501–512PubMedCrossRef
29.
Zurück zum Zitat Shapiro IM, Wuthier RE (1966) A study of the phospholipids of bovine dental tissues. II. Developing bovine foetal dental pulp. Arch Oral Biol 11:513–519PubMedCrossRef Shapiro IM, Wuthier RE (1966) A study of the phospholipids of bovine dental tissues. II. Developing bovine foetal dental pulp. Arch Oral Biol 11:513–519PubMedCrossRef
30.
Zurück zum Zitat Irving JT, Wuthier RE (1968) Histochemistry and biochemistry of calcification with special reference to the role of lipids. Clin Orthop 56:237–260PubMed Irving JT, Wuthier RE (1968) Histochemistry and biochemistry of calcification with special reference to the role of lipids. Clin Orthop 56:237–260PubMed
31.
Zurück zum Zitat Bonucci E (1967) Fine structure of early cartilage calcification. J Ultrastruct Res 20:33–50PubMedCrossRef Bonucci E (1967) Fine structure of early cartilage calcification. J Ultrastruct Res 20:33–50PubMedCrossRef
32.
Zurück zum Zitat Peress NS, Anderson HC, Sajdera SW (1974) The lipids of matrix vesicles from bovine fetal epiphyseal cartilage. Calcif Tissue Res 14:275–282PubMedCrossRef Peress NS, Anderson HC, Sajdera SW (1974) The lipids of matrix vesicles from bovine fetal epiphyseal cartilage. Calcif Tissue Res 14:275–282PubMedCrossRef
33.
Zurück zum Zitat Wuthier RE (1975) Lipid composition of isolated epiphyseal cartilage cells, membranes and matrix vesicles. Biochim Biophys Acta Lipids Lipid Metab 409:128–143CrossRef Wuthier RE (1975) Lipid composition of isolated epiphyseal cartilage cells, membranes and matrix vesicles. Biochim Biophys Acta Lipids Lipid Metab 409:128–143CrossRef
34.
Zurück zum Zitat Boyan-Salyers BD, Boskey AL (1980) Relationship between proteolipids and calcium-phospholipid-phosphate complexes in Bacterionema matruchotii calcification. Calcif Tissue Int 30:167–174PubMedCrossRef Boyan-Salyers BD, Boskey AL (1980) Relationship between proteolipids and calcium-phospholipid-phosphate complexes in Bacterionema matruchotii calcification. Calcif Tissue Int 30:167–174PubMedCrossRef
35.
Zurück zum Zitat van Dijk S, Dean DD, Liu Y, Zhao Y, Chirgwin JM, Schwartz Z, Boyan BD (1998) Purification, amino acid sequence, and cDNA sequence of a novel calcium-precipitating proteolipid involved in calcification of Corynebacterium matruchotii. Calcif Tissue Int 62:350–358PubMedCrossRef van Dijk S, Dean DD, Liu Y, Zhao Y, Chirgwin JM, Schwartz Z, Boyan BD (1998) Purification, amino acid sequence, and cDNA sequence of a novel calcium-precipitating proteolipid involved in calcification of Corynebacterium matruchotii. Calcif Tissue Int 62:350–358PubMedCrossRef
36.
Zurück zum Zitat Zabelinskii SA, Pomazanskaia LF, Chirkovskaia EV (1984) Brain proteolipids in representatives of different vertebrate classes [in Russian]. Zh Evol Biokhim Fiziol 20:239–245PubMed Zabelinskii SA, Pomazanskaia LF, Chirkovskaia EV (1984) Brain proteolipids in representatives of different vertebrate classes [in Russian]. Zh Evol Biokhim Fiziol 20:239–245PubMed
37.
Zurück zum Zitat Turner N, Else PL, Hulbert AJ (2005) An allometric comparison of microsomal membrane lipid composition and sodium pump molecular activity in the brain of mammals and birds. J Exp Biol 208:371–381PubMedCrossRef Turner N, Else PL, Hulbert AJ (2005) An allometric comparison of microsomal membrane lipid composition and sodium pump molecular activity in the brain of mammals and birds. J Exp Biol 208:371–381PubMedCrossRef
38.
Zurück zum Zitat Irvine RF (2002) Nuclear lipid signaling. Science's Stke: Signal Transduction Knowledge Environment 2002(150):RE13 Irvine RF (2002) Nuclear lipid signaling. Science's Stke: Signal Transduction Knowledge Environment 2002(150):RE13
Metadaten
Titel
Peritubular Dentin, a Vertebrate Apatitic Mineralized Tissue without Collagen: Role of a Phospholipid-Proteolipid Complex
verfasst von
Bat-Ami Gotliv
Arthur Veis
Publikationsdatum
01.09.2007
Verlag
Springer-Verlag
Erschienen in
Calcified Tissue International / Ausgabe 3/2007
Print ISSN: 0171-967X
Elektronische ISSN: 1432-0827
DOI
https://doi.org/10.1007/s00223-007-9053-x

Weitere Artikel der Ausgabe 3/2007

Calcified Tissue International 3/2007 Zur Ausgabe

Leitlinien kompakt für die Innere Medizin

Mit medbee Pocketcards sicher entscheiden.

Seit 2022 gehört die medbee GmbH zum Springer Medizin Verlag

Echinokokkose medikamentös behandeln oder operieren?

06.05.2024 DCK 2024 Kongressbericht

Die Therapie von Echinokokkosen sollte immer in spezialisierten Zentren erfolgen. Eine symptomlose Echinokokkose kann – egal ob von Hunde- oder Fuchsbandwurm ausgelöst – konservativ erfolgen. Wenn eine Op. nötig ist, kann es sinnvoll sein, vorher Zysten zu leeren und zu desinfizieren. 

Aquatherapie bei Fibromyalgie wirksamer als Trockenübungen

03.05.2024 Fibromyalgiesyndrom Nachrichten

Bewegungs-, Dehnungs- und Entspannungsübungen im Wasser lindern die Beschwerden von Patientinnen mit Fibromyalgie besser als das Üben auf trockenem Land. Das geht aus einer spanisch-brasilianischen Vergleichsstudie hervor.

Wo hapert es noch bei der Umsetzung der POMGAT-Leitlinie?

03.05.2024 DCK 2024 Kongressbericht

Seit November 2023 gibt es evidenzbasierte Empfehlungen zum perioperativen Management bei gastrointestinalen Tumoren (POMGAT) auf S3-Niveau. Vieles wird schon entsprechend der Empfehlungen durchgeführt. Wo es im Alltag noch hapert, zeigt eine Umfrage in einem Klinikverbund.

Das Risiko für Vorhofflimmern in der Bevölkerung steigt

02.05.2024 Vorhofflimmern Nachrichten

Das Risiko, im Lauf des Lebens an Vorhofflimmern zu erkranken, ist in den vergangenen 20 Jahren gestiegen: Laut dänischen Zahlen wird es drei von zehn Personen treffen. Das hat Folgen weit über die Schlaganfallgefährdung hinaus.

Update Innere Medizin

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.