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Review
. 2013 Oct;63(1):102-22.
doi: 10.1111/prd.12029.

Extracellular matrix mineralization in periodontal tissues: Noncollagenous matrix proteins, enzymes, and relationship to hypophosphatasia and X-linked hypophosphatemia

Review

Extracellular matrix mineralization in periodontal tissues: Noncollagenous matrix proteins, enzymes, and relationship to hypophosphatasia and X-linked hypophosphatemia

Marc D McKee et al. Periodontol 2000. 2013 Oct.

Abstract

As broadly demonstrated for the formation of a functional skeleton, proper mineralization of periodontal alveolar bone and teeth - where calcium phosphate crystals are deposited and grow within an extracellular matrix - is essential for dental function. Mineralization defects in tooth dentin and cementum of the periodontium invariably lead to a weak (soft or brittle) dentition in which teeth become loose and prone to infection and are lost prematurely. Mineralization of the extremities of periodontal ligament fibers (Sharpey's fibers) where they insert into tooth cementum and alveolar bone is also essential for the function of the tooth-suspensory apparatus in occlusion and mastication. Molecular determinants of mineralization in these tissues include mineral ion concentrations (phosphate and calcium), pyrophosphate, small integrin-binding ligand N-linked glycoproteins and matrix vesicles. Amongst the enzymes important in regulating these mineralization determinants, two are discussed at length here, with clinical examples given, namely tissue-nonspecific alkaline phosphatase and phosphate-regulating gene with homologies to endopeptidases on the X chromosome. Inactivating mutations in these enzymes in humans and in mouse models lead to the soft bones and teeth characteristic of hypophosphatasia and X-linked hypophosphatemia, respectively, where the levels of local and systemic circulating mineralization determinants are perturbed. In X-linked hypophosphatemia, in addition to renal phosphate wasting causing low circulating phosphate levels, phosphorylated mineralization-regulating small integrin-binding ligand N-linked glycoproteins, such as matrix extracellular phosphoglycoprotein and osteopontin, and the phosphorylated peptides proteolytically released from them, such as the acidic serine- and aspartate-rich-motif peptide, may accumulate locally to impair mineralization in this disease.

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Figures

Figure 1
Figure 1
(A) Anatomical relationships of mineralized tissues of the tooth and surrounding hard and soft tissues of the periodontium. (B) Light microscopic relationships of periodontal tissues near the cemento-enamel junction. Junctional epithelium (JE) abuts against the enamel (here enamel space [ES] after sample decalcification), and a thin layer of acellular cementum (AC) interfaces with the dentin (Den) at the dentino-enamel junction. Periodontal ligament (PDL) collagen fibres surround the tooth, inserting at one end into the acellular cementum and inserting at the other end into a fringe of darkly stained bone (arrows) lining the alveolus. (C,D) Electron microscopy after colloidal-gold immunolabeling (small black particles) for osteopontin of periodontal ligament (PDL) collagen fibrils inserting into the acellular cementum (AC) apposed to the dentin (Den) at the dentino-enamel junction (left panel), and into the fringe of alveolar bone (arrows) lining the alveolus (right panel). Images obtained from the first molar of a 1-month-old mouse.
Figure 2
Figure 2
Determinants of normal mineralization relevant to hypophosphatasia. The extracellular phosphate/pyrophosphate ratio is regulated by phosphatase orphan 1 (PHOSPHO1), ectonucleotide pyrophosphatase phosphodiesterase 1 (NPP1), progressive ankylosis protein (ANK), and tissue-nonspecific alkaline phosphatase (TNAP). Inactivating mutations in the enzyme TNAP result in an increase in extracellular pyrophosphate that inhibits mineralization and is a key factor in causing hypophosphatasia. Similar molecular determinants are thought to occur related to matrix vesicles. In the extracellular matrix, phosphorylated osteopontin (phosOPN) inhibits mineralization, and dephosphorylation of osteopontin (dephosOPN; and possibly other matrix proteins) by TNAP may contribute to extracellular phosphate levels. Green boxes indicate positive regulators of mineralization, while red boxes indicate negative regulators of mineralization. Citations supporting the indicated functions are shown by the numbers in parentheses. PEA, phosphoethanolamine; EA, ethanolamine; PCho, phosphocholine; Cho, choline; Pi, phosphate; PPi, pyrophosphate; NTPs, nucleotide triphosphates.
Figure 3
Figure 3
(A,B) Tooth radiographs from a normal, 10-year-old male, and from a 10-year-old male patient with X-linked hypophosphatemia (XLH) caused by an inactivating mutation in the PHEX gene. In deciduous molars, note the enlarged pulp chambers (asterisks), the prominent pulp horns, and the radiolucency of the hypomineralized dentin that mineralized prior to the onset of systemic treatment. (C,D) Micro-computed tomography of a crown from the upper-right, second deciduous molar (seen on the panoramic X-ray inset) of a 13-year-old female X-linked hypophosphatemia female patient with a mutation in the PHEX gene. Mineralization voids (the spotty areas indicated by the arrows in panel C accumulating in the dentin near the dentino-enamel junction (DEJ) were rendered in grey using 3D reconstruction software to compile volumetric data from the 2D X-ray “slices,” one of which is depicted in panel D where the mineralization voids appear white. (E,F) Photograph and occlusal X-ray of the upper central right deciduous incisor from a 6-year-old X-linked hypophosphatemia male patient with a mutation of the PHEX gene. A large abscess (arrowhead) is observed related to the incisor root; the tooth was extracted after systemic treatment with antibiotics.
Figure 4
Figure 4
Determinants of normal mineralization relevant to X-linked hypophosphatemia. Local and systemic regulation of mineralization is controlled by phosphate-regulating gene with homologies to endopeptidases on the X chromosome (PHEX). PHEX regulates mineralization locally at the level of the extracellular matrix by directly degrading mineralization inhibitors such as osteopontin and ASARM peptides. Systemic regulation involves influencing phosphate homeostasis indirectly through fibroblast growth factor 23 (FGF23), a key circulating factor that directs sodium-dependent phosphate transporters (NPT2) in the kidney and intestine, thus controling phosphate reabsorption. Green boxes indicate positive regulators of mineralization, red boxes indicate negative regulators of mineralization, and grey boxes indicate indirect regulators of mineralization. Citations supporting the indicated functions are shown by the numbers in parentheses.

References

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