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1.
Cell Tissue Res ; 396(3): 343-351, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38492000

ABSTRACT

Dentin is a permeable and complex tubular composite formed by the mineralization of predentin that mineralization and repair are of considerable clinical interest during dentin homeostasis. The role of Vdr, a receptor of vitamin D, in dentin homeostasis remains unexplored. The aim of the present study was to assess the impact of Vdr on predentin mineralization and dental repair. Vdr-knockout (Vdr-/-) mice models were constructed; histology and immunohistochemistry analyses were conducted for both WT and Vdr-/- mice. The finding revealed a thicker predentin in Vdr-/- mice, characterized by higher expression of biglycan and decorin. A dental injury model was employed to observe tertiary dentin formation in Vdr-/- mice with dental injuries. Results showed that tertiary dentin was harder to form in Vdr-/- mice with dental injury. Over time, heightened pulp invasion was observed at the injury site in Vdr-/- mice. Expression of biglycan and decorin was reduced in the predentin at the injury site in the Vdr-/- mice by immunohistochemistry. Taken together, our results imply that Vdr plays a regulatory role in predentin mineralization and tertiary dentin formation during dentin homeostasis.


Subject(s)
Dentin , Mice, Knockout , Receptors, Calcitriol , Animals , Receptors, Calcitriol/metabolism , Dentin/metabolism , Mice , Biglycan/metabolism , Wound Healing , Mice, Inbred C57BL , Decorin/metabolism , Calcification, Physiologic
2.
J Hazard Mater ; 262: 545-53, 2013 Nov 15.
Article in English | MEDLINE | ID: mdl-24095994

ABSTRACT

A novel amperometric-type NO2 sensor based on La10Si5NbO27.5 (LSNO) electrolyte and nano-structured CuO sensing electrode was fabricated and tested. A bilayer LSNO electrolyte including both a dense layer and a porous layer was prepared by conventional solid state reaction method and screen-printing technology. The nano-structured CuO sensing electrode was in situ fabricated in LSNO porous layer by impregnating method. The composition and microstructure of the sample were characterized by XRD and SEM, respectively. The results showed that the CuO particles with diameters range of 200-500 nm were homogeneously dispersed on the LSNO backbone in porous layer. The sensor exhibited well sensing characteristics to NO2. The response current was almost linear to NO2 concentration in the range of 25-500 ppm at 600-800 °C. With increase of operating temperature, the sensitivity increased and reached 297 nA/ppm at 800 °C. The response currents toward NO2 were slightly affected by coexistent O2 (0-21 vol%) and CO2 (0-5 vol%).


Subject(s)
Air Pollutants/analysis , Nitrogen Dioxide/analysis , Copper/chemistry , Electrochemistry , Electrodes , Lanthanum/chemistry , Microscopy, Electron, Scanning , Nanostructures/chemistry , Nanostructures/ultrastructure , Niobium/chemistry , Oxides/chemistry , Silicon/chemistry , X-Ray Diffraction
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