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1.
Dent Mater J ; 40(5): 1142-1150, 2021 Sep 30.
Article in English | MEDLINE | ID: mdl-34024882

ABSTRACT

This study employed an in-air micro-proton-induced X-ray/gamma-ray emission system to assess the effectiveness of fluoride-containing materials (FCMs) incorporating calcium in preventing root caries. Dentin surfaces of human third molars were coated with one of three FCMs: fluoride-releasing glass-ionomer cement (F7) and experimental materials in which half (P1) or all (P2) of the strontium in F7 was replaced with calcium. Dentin without FCM coating served as the control. Specimens were immersed in saline at 37°C for 1 month, sectioned, and then demineralized. Calcium loss after demineralization was lower in the Ca-substituted groups than in the Ca-unsubstituted groups (p<0.05). Calcium loss was negatively correlated with fluoride uptake (p<0.01). In the F7, P1, and P2 groups, the retraction of the dentin surface was significantly suppressed as compared with the control group. FCMs incorporating calcium improved the acid resistance of root dentin and could help prevent root caries.


Subject(s)
Fluorides , Tooth Demineralization , Calcium , Dentin , Humans , Protons , X-Rays
2.
BMC Oral Health ; 18(1): 70, 2018 04 27.
Article in English | MEDLINE | ID: mdl-29703201

ABSTRACT

BACKGROUND: Bacterial biofilms that develop on root surfaces outside apical foramens have been found to be associated with refractory periapical periodontitis. However, several other factors cause endodontic failures apart from extraradicular biofilms. The aim of this study was to identify the factors causing endodontic failures in general practices in Japan. METHODS: Patients diagnosed as having refractory periapical periodontitis by general practitioners and who requested endodontic treatment at Osaka University Dental Hospital were selected by checking medical records from April 2009 to March 2013. Factors causing endodontic failures were identified. RESULTS: A total of 103 teeth were selected, and 76 teeth completed root-canal treatment. Tooth extractions were required for 18 teeth after or without endodontic treatment. Six teeth required apicoectomy after endodontic treatment. One tooth needed hemisection. One tooth needed intentional replantation. One tooth needed adhesion and replantation. The main causes of treatment failure were open apices (24 teeth), perforation (18 teeth), and root fracture (13 teeth). In six teeth with open apices that required apicoectomy or extraction, extraradicular biofilms may have been related to endodontic failure. CONCLUSIONS: Most endodontic cases diagnosed with refractory periapical periodontitis by general practitioners were compromised by any other factors rather than extraradicular biofilms.


Subject(s)
Root Canal Therapy/adverse effects , Apicoectomy/statistics & numerical data , Biofilms/growth & development , Humans , Japan/epidemiology , Periapical Periodontitis/epidemiology , Periapical Periodontitis/surgery , Recurrence , Retreatment/statistics & numerical data , Retrospective Studies , Root Canal Therapy/statistics & numerical data , Tooth Extraction/statistics & numerical data , Tooth Replantation/statistics & numerical data , Treatment Failure
3.
J Biochem ; 141(1): 85-91, 2007 Jan.
Article in English | MEDLINE | ID: mdl-17158863

ABSTRACT

We cloned the aspT gene encoding the L-aspartate:L-alanine antiporter AspTCt in Comamonas testosteroni genomic DNA. Analysis of the nucleotide sequence revealed that C. testosteroni has an asp operon containing aspT upstream of the l-aspartate 4-decarboxylase gene, and that the gene order of the asp operon of C. testosteroni is the inverse of that of Tetragenococcus halophilus. We used proteoliposomes to confirm the transport processes of AspTCt. To elucidate the two-dimensional structure of AspTCt, we analysed its membrane topology by means of alkaline phosphatase (PhoA) and beta-lactamase (BlaM) fusion methods. The fusion analyses revealed that AspTCt has seven transmembrane segments (TMs), a large cytoplasmic loop containing approximately 200 amino acid residues between TM4 and TM5, a cytoplasmic N-terminus, and a periplasmic C-terminus. These results suggest that the orientation of the N-terminus of AspTCt differs from that of tetragenococcal AspT, even though these two AspT orthologues catalyse the same transport reactions.


Subject(s)
Alanine/metabolism , Antiporters/genetics , Aspartic Acid/metabolism , Cell Membrane/chemistry , Cell Membrane/genetics , Comamonas testosteroni/genetics , Amino Acid Sequence , Cloning, Molecular , Molecular Sequence Data , Recombinant Fusion Proteins
4.
J Bacteriol ; 184(11): 2906-13, 2002 Jun.
Article in English | MEDLINE | ID: mdl-12003930

ABSTRACT

Tetragenococcus halophila D10 catalyzes the decarboxylation of L-aspartate with nearly stoichiometric release of L-alanine and CO(2). This trait is encoded on a 25-kb plasmid, pD1. We found in this plasmid a putative asp operon consisting of two genes, which we designated aspD and aspT, encoding an L-aspartate-beta-decarboxylase (AspD) and an aspartate-alanine antiporter (AspT), respectively, and determined the nucleotide sequences. The sequence analysis revealed that the genes of the asp operon in pD1 were in the following order: promoter --> aspD --> aspT. The deduced amino acid sequence of AspD showed similarity to the sequences of two known L-aspartate-beta-decarboxylases from Pseudomonas dacunhae and Alcaligenes faecalis. Hydropathy analyses suggested that the aspT gene product encodes a hydrophobic protein with multiple membrane-spanning regions. The operon was subcloned into the Escherichia coli expression vector pTrc99A, and the two genes were cotranscribed in the resulting plasmid, pTrcAsp. Expression of the asp operon in E. coli coincided with appearance of the capacity to catalyze the decarboxylation of aspartate to alanine. Histidine-tagged AspD (AspDHis) was also expressed in E. coli and purified from cell extracts. The purified AspDHis clearly exhibited activity of L-aspartate-beta-decarboxylase. Recombinant AspT was solubilized from E. coli membranes and reconstituted in proteoliposomes. The reconstituted AspT catalyzed self-exchange of aspartate and electrogenic heterologous exchange of aspartate with alanine. Thus, the asp operon confers a proton motive metabolic cycle consisting of the electrogenic aspartate-alanine antiporter and the aspartate decarboxylase, which keeps intracellular levels of alanine, the countersubstrate for aspartate, high.


Subject(s)
Alanine/metabolism , Aspartic Acid/metabolism , Carboxy-Lyases/metabolism , Lactobacillaceae/metabolism , RNA-Binding Proteins/metabolism , Alanine/chemistry , Amino Acid Sequence , Antiporters/biosynthesis , Antiporters/genetics , Antiporters/isolation & purification , Aspartic Acid/chemistry , Carboxy-Lyases/genetics , Carboxy-Lyases/isolation & purification , Cell Membrane/metabolism , Cloning, Molecular , Escherichia coli/metabolism , Histidine/metabolism , Lactobacillaceae/genetics , Molecular Sequence Data , Operon , Plasmids , Promoter Regions, Genetic , Proteolipids/metabolism , Proton-Motive Force , RNA-Binding Proteins/genetics , Recombinant Proteins/biosynthesis , Sequence Homology, Amino Acid
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