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1.
J Dent Res ; 95(9): 1026-33, 2016 08.
Article in English | MEDLINE | ID: mdl-27129490

ABSTRACT

Periodontal ligaments (PDLs) play an important role in remodeling the alveolar bond and cementum. Characterization of the periodontal tissue transcriptome remains incomplete, and an improved understanding of PDL features could aid in developing new regenerative therapies. Here, we aimed to generate and analyze a large human PDL transcriptome. We obtained PDLs from orthodontic treatment patients, isolated the RNA, and used a vector-capping method to make a complementary DNA library from >20,000 clones. Our results revealed that 58% of the sequences were full length. Furthermore, our analysis showed that genes expressed at the highest frequencies included those for collagen type I, collagen type III, and proteases. We also found 5 genes whose expressions have not been previously reported in human PDL. To access which of the highly expressed genes might be important for PDL cell differentiation, we used real-time polymerase chain reaction to measure their expression in differentiating cells. Among the genes tested, the cysteine protease cathepsin K had the highest upregulation, so we measured its relative expression in several tissues, as well as in osteoclasts, which are known to express high levels of cathepsin K. Our results revealed that PDL cells express cathepsin K at similar levels as osteoclasts, which are both expressed at higher levels than those of the other tissues tested. We also measured cathepsin K protein expression and enzyme activity during cell differentiation and found that both increased during this process. Immunocytochemistry experiments revealed that cathepsin K localizes to the interior of lysosomes. Last, we examined the effect of inhibiting cathepsin K during cell differentiation and found that cathepsin K inhibition stimulated calcified nodule formation and increased the levels of collagen type I and osteocalcin gene expression. Based on these results, cathepsin K seems to regulate collagen fiber accumulation during human PDL cell differentiation into hard tissue-forming cells.


Subject(s)
Cathepsin K/metabolism , Periodontal Ligament/metabolism , Blotting, Western , Cell Differentiation/genetics , Cells, Cultured , Humans , Periodontal Ligament/cytology , Periodontal Ligament/growth & development , RNA/genetics , RNA/metabolism , Real-Time Polymerase Chain Reaction , Transcriptome
2.
J Dent Res ; 94(12): 1706-14, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26399972

ABSTRACT

Periodontal ligament-associated protein 1 (PLAP-1)/asporin is an extracellular matrix protein preferentially expressed in periodontal ligaments. PLAP-1/asporin inhibits the cytodifferentiation and mineralization of periodontal ligament cells and has important roles in the maintenance of periodontal tissue homeostasis. However, the involvement of PLAP-1/asporin in inflammatory responses during periodontitis is poorly understood. This study hypothesized that PLAP-1/asporin might affect the pathogenesis of periodontitis by regulating periodontopathic bacteria-induced inflammatory responses. Proinflammatory cytokine expression induced by Toll-like receptor 2 (TLR2) and TLR4 was significantly downregulated when PLAP-1/asporin was overexpressed in periodontal ligament cells. Similarly, recombinant PLAP-1/asporin inhibited TLR2- and TLR4-induced proinflammatory cytokine expression in macrophages. We also confirmed that NF-κB activity induced by TLR2 and TLR4 signaling was suppressed by the addition of recombinant PLAP-1/asporin. Furthermore, IκB kinase α degradation induced by TLR4 was reduced by PLAP-1/asporin. Immunoprecipitation assays demonstrated the binding abilities of PLAP-1/asporin to both TLR2 and TLR4. Taken together, PLAP-1/asporin negatively regulates TLR2- and TLR4-induced inflammatory responses through direct molecular interactions. These findings indicate that PLAP-1/asporin has a defensive role in periodontitis lesions by suppressing pathophysiologic TLR signaling and that the modulating effects of PLAP-1/asporin might be useful for periodontal treatments.


Subject(s)
Extracellular Matrix Proteins/physiology , Inflammation/physiopathology , Toll-Like Receptor 2/physiology , Toll-Like Receptor 4/physiology , Animals , Blotting, Western , Enzyme-Linked Immunosorbent Assay , HEK293 Cells , Humans , I-kappa B Kinase/metabolism , Immunoprecipitation , Mice , NF-kappa B/physiology , Periodontitis/physiopathology , Periodontium/immunology , Periodontium/physiology , Polymerase Chain Reaction , RAW 264.7 Cells
3.
J Dent Res ; 94(10): 1417-24, 2015 Oct.
Article in English | MEDLINE | ID: mdl-26239644

ABSTRACT

PLAP-1 is an extracellular matrix protein that is predominantly expressed in the periodontal ligament within periodontal tissue. It was previously revealed that PLAP-1 negatively regulates bone morphogenetic protein 2 and transforming growth factor ß activity through direct interactions. However, the interaction between PLAP-1 and other growth factors has not been defined. Here, we revealed that PLAP-1 positively regulates the activity of fibroblast growth factor 2 (FGF-2), a critical growth factor in tissue homeostasis and repair. In this study, we isolated mouse embryonic fibroblasts (MEFs) from Plap-1(-/-) mice generated in our laboratory. Interestingly, Plap-1(-/-) MEFs exhibited enhanced responses to bone morphogenetic protein 2 but defective responses to FGF-2, and Plap-1 transfection into Plap-1(-/-) MEFs rescued these defective responses. In addition, binding assays revealed that PLAP-1 promotes FGF-2-FGF receptor 1 (FGFR1) complex formation by direct binding to FGF-2. Immunocytochemistry analyses revealed colocalization of PLAP-1 and FGF-2 in wild-type MEFs and reduced colocalization of FGF-2 and FGFR1 in Plap-1(-/-) MEFs compared with wild-type MEFs. Taken together, PLAP-1 positively regulates FGF-2 activity through a direct interaction. Extracellular matrix-growth factor interactions have considerable effects; thus, this approach may be useful in several regenerative medicine applications.


Subject(s)
Extracellular Matrix Proteins/physiology , Fibroblast Growth Factors/physiology , Animals , Blotting, Western , Cell Differentiation/physiology , Fibroblasts/physiology , Mice , Mice, Knockout , Real-Time Polymerase Chain Reaction , Receptor, Fibroblast Growth Factor, Type 1/physiology
4.
J Dent Res ; 93(4): 400-5, 2014 Apr.
Article in English | MEDLINE | ID: mdl-24453179

ABSTRACT

PLAP-1/asporin is an extracellular matrix protein that is predominantly expressed in the human periodontal ligament (PDL) and has an aspartic acid (D) repeat polymorphism in its N-terminal region. In this study, we hypothesized that the D repeat polymorphism of PLAP-1/asporin may affect the physiological functions of periodontal ligaments. We established periodontal ligament cell lines transfected with the D13- or D14-PLAP-1 gene. Alkaline phosphatase staining and alizarin red staining revealed that the cytodifferentiation of the D14-PLAP-1-expressing PDL cells was more repressed compared with that of the D13-PLAP-1-expressing cells. Furthermore, the D14-PLAP-1-expressing cells inhibited BMP-2-induced cytodifferentiation more strongly than did the D13-PLAP-1-expressing cells. Western blotting analysis and luciferase assay revealed that D14-PLAP-1 suppressed BMP-2 signal transduction more efficiently than did D13-PLAP-1, and co-immunoprecipitation demonstrated the stronger affinity of the D14-PLAP-1 protein to BMP-2 compared with the D13-PLAP-1 protein. Analysis of these data suggests that the D repeat polymorphism of PLAP-1/asporin has a significant influence on the functions of PDL cells.


Subject(s)
Extracellular Matrix Proteins/genetics , Periodontal Ligament/metabolism , Alkaline Phosphatase/drug effects , Alkaline Phosphatase/genetics , Anthraquinones , Aspartic Acid/genetics , Bone Morphogenetic Protein 2/pharmacology , Calcification, Physiologic/genetics , Cell Differentiation/genetics , Coloring Agents , Culture Media, Conditioned , HEK293 Cells , Humans , Inhibitor of Differentiation Protein 1/analysis , Periodontal Ligament/cytology , Plasmids , Polymorphism, Genetic/genetics , Repetitive Sequences, Amino Acid/genetics , Signal Transduction/genetics , Terminal Repeat Sequences/genetics , Transfection
5.
J Periodontal Res ; 49(2): 260-7, 2014 Apr.
Article in English | MEDLINE | ID: mdl-23710667

ABSTRACT

BACKGROUND AND OBJECTIVE: The periodontal ligament (PDL) is vital to maintaining the homeostasis of the tooth and periodontal tissue. The influence of iron levels on the cytodifferentiation of PDL cells has not been studied, despite evidence that iron overload or deficiency can have adverse effects on alveolar bone density. The purpose of this study was to examine the effects of altered iron levels on cytodifferentiation in human PDL cells. MATERIAL AND METHODS: Human PDL cells were incubated with culture media supplemented with 10-50 µm ammonium ferric citrate or 5 µm deferoxamine (an iron chelator) during differentiation. Intracellular iron status was assessed by measuring changes in the expression of ferritin RNA and protein. PDL cell differentiation and function were evaluated by measuring osteoblast differentiation gene markers and the capacity of cultures to form mineralized nodules. RESULTS: Iron accumulation resulted in upregulation of light and heavy chain ferritin proteins. Concurrently, osteoblast differentiation gene markers and mineralized nodule formation were suppressed. Iron deficiency resulted in downregulation of light and heavy chain ferritin proteins, suppression of alkaline phosphatase activity and formation of mineralized nodules during PDL cell differentiation. CONCLUSION: We conclude that iron is critical for normal cell differentiation of human PDL cells.


Subject(s)
Iron/physiology , Periodontal Ligament/cytology , Alkaline Phosphatase/drug effects , Animals , Apoferritins/drug effects , Calcification, Physiologic/drug effects , Cell Culture Techniques , Cell Differentiation/drug effects , Cell Differentiation/physiology , Cell Line , Cells, Cultured , Culture Media , Deferoxamine/pharmacology , Dose-Response Relationship, Drug , Ferric Compounds/pharmacology , Ferritins/analysis , Genetic Markers/drug effects , Humans , Iron/pharmacology , Iron Chelating Agents/pharmacology , Mice , Osteoblasts/drug effects , Periodontal Ligament/drug effects
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