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1.
Med. oral patol. oral cir. bucal (Internet) ; 20(5): e525-e531, sept. 2015. ilus, tab
Article in English | IBECS | ID: ibc-142979

ABSTRACT

BACKGROUND: Many researchers have tried to enhance materials functions in different aspects of science using nano-modification method, and in many cases the results have been encouraging. To evaluate the histopathological responses of the micro-/nano-size cement-type biomaterials derived from calcium silicate-based composition with addition of nano tricalcium aluminate (3CaO.Al2 O3 ) on bone healing response. MATERIAL AND METHODS: Ninety mature male rabbits were anesthetized and a bone defect was created in the right mandible. The rabbits were divided into three groups, which were in turn subdivided into five subgroups with six animals each based on the defect filled by: white mineral trioxide aggregate (WMTA), Nano-WMTA, WMTA without 3CaO.Al2 O3 , Nano-WMTA with 2% Nano-3CaO.Al2 O3 , and empty as control. Twenty, forty and sixty days postoperatively the animals were sacrificed and the right mandibles were removed for histopathological evaluations. Kruskal-Wallis test with post-hoc comparisons based on the LSMeans procedure was used for data analysis. RESULTS: All the experimental materials provoked a moderate to severe inflammatory reaction, which significantly differed from the control group (p< 0.05). Statistical analysis of bone formation and bone regeneration data showed significant differences between groups at 40- and 60- day intervals in all groups. Absence of 3CaO.Al2 O3 leads to more inflammation and foreign body reaction than other groups in all time intervals. CONCLUSIONS: Both powder nano-modification and addition of 2% Nano-3CaO.Al2 O3 to calcium silicate-based cement enhanced the favorable tissue response and osteogenesis properties of WMTA based materials


Subject(s)
Animals , Rabbits , Nanostructures/therapeutic use , Calcium Oxide , Bone Regeneration/physiology , Bone Substitutes/analysis , Bone Cements/analysis , Dental Cements/analysis , Dental Implantation, Endosseous, Endodontic/methods
2.
Med Oral Patol Oral Cir Bucal ; 20(5): e525-31, 2015 Sep 01.
Article in English | MEDLINE | ID: mdl-26034924

ABSTRACT

BACKGROUND: Many researchers have tried to enhance materials functions in different aspects of science using nano-modification method, and in many cases the results have been encouraging. To evaluate the histopathological responses of the micro-/nano-size cement-type biomaterials derived from calcium silicate-based composition with addition of nano tricalcium aluminate (3CaO.Al2O3) on bone healing response. MATERIAL AND METHODS: Ninety mature male rabbits were anesthetized and a bone defect was created in the right mandible. The rabbits were divided into three groups, which were in turn subdivided into five subgroups with six animals each based on the defect filled by: white mineral trioxide aggregate (WMTA), Nano-WMTA, WMTA without 3CaO.Al2O3, Nano-WMTA with 2% Nano-3CaO.Al2O3, and empty as control. Twenty, forty and sixty days postoperatively the animals were sacrificed and the right mandibles were removed for histopathological evaluations. Kruskal-Wallis test with post-hoc comparisons based on the LSMeans procedure was used for data analysis. RESULTS: All the experimental materials provoked a moderate to severe inflammatory reaction, which significantly differed from the control group (p< 0.05). Statistical analysis of bone formation and bone regeneration data showed significant differences between groups at 40- and 60- day intervals in all groups. Absence of 3CaO.Al2O3 leads to more inflammation and foreign body reaction than other groups in all time intervals. CONCLUSIONS: Both powder nano-modification and addition of 2% Nano-3CaO.Al2O3 to calcium silicate-based cement enhanced the favorable tissue response and osteogenesis properties of WMTA based materials.


Subject(s)
Aluminum Compounds/pharmacology , Bone and Bones/drug effects , Bone and Bones/pathology , Calcium Compounds/pharmacology , Dental Cements/pharmacology , Oxides/pharmacology , Silicates/pharmacology , Animals , Biocompatible Materials/pharmacology , Drug Combinations , Male , Nanotechnology , Rabbits , Time Factors
3.
Nanomaterials (Basel) ; 5(2): 737-749, 2015 May 05.
Article in English | MEDLINE | ID: mdl-28347032

ABSTRACT

Ag@α-Fe2O3 nanocomposite having a core-shell structure was synthesized by a two-step reduction-sol gel approach, including Ag nanoparticles synthesis by sodium borohydride as the reducing agent in a first step and the subsequent mixing with a Fe+3 sol for α-Fe2O3 coating. The synthesized Ag@α-Fe2O3 nanocomposite has been characterized by various techniques, such as SEM, TEM and UV-Vis spectroscopy. The electrical and gas sensing properties of the synthesized composite towards low concentrations of ethanol have been evaluated. The Ag@α-Fe2O3 nanocomposite showed better sensing characteristics than the pure α-Fe2O3. The peculiar hierarchical nano-architecture and the chemical and electronic sensitization effect of Ag nanoparticles in Ag@α-Fe2O3 sensors were postulated to play a key role in modulating gas-sensing properties in comparison to pristine α-Fe2O3 sensors.

4.
J Endod ; 40(5): 648-51, 2014 May.
Article in English | MEDLINE | ID: mdl-24767558

ABSTRACT

INTRODUCTION: Materials with new compositions were tested in order to develop dental materials with better properties. Calcium silicate-based cements, including white mineral trioxide aggregate (WMTA), may improve osteopromotion because of their composition. Nano-modified cements may help researchers produce ideal root-end filling materials. Serial dual-energy x-ray absorptiometry measurement was used to evaluate the effects of particle size and the addition of tricalcium aluminate (C3A) to a type of mineral trioxide aggregate-based cement on bone mineral density and the surrounding tissues in the mandible of rabbits. METHODS: Forty mature male rabbits (N = 40) were anesthetized, and a bone defect measuring 7 × 1 × 1 mm was created on the semimandible. The rabbits were divided into 2 groups, which were subdivided into 5 subgroups with 4 animals each based on the defect filled by the following: Nano-WMTA (patent application #13/211.880), WMTA (as standard), WMTA without C3A, Nano-WMTA + 2% Nano-C3A (Fujindonjnan Industrial Co, Ltd, Fujindonjnan Xiamen, China), and a control group. Twenty and forty days postoperatively, the animals were sacrificed, and the semimandibles were removed for DXA measurement. RESULTS: The Kruskal-Wallis test followed by the Mann-Whitney U test showed significant differences between the groups at a significance level of P < .05. P values calculated by the Kruskal-Wallis test were .002 for bone mineral density at both intervals and P20 day = .004 and P40 day = .005 for bone mineral content. CONCLUSIONS: This study showed that bone regeneration was enhanced by reducing the particle size (nano-modified) and C3A mixture. This may relate to the existence of an external supply of minerals and a larger surface area of nano-modified material, which may lead to faster release rate of Ca(2+), inducing bone formation. Adding Nano-C3A to Nano-WMTA may improve bone regeneration properties.


Subject(s)
Absorptiometry, Photon/methods , Aluminum Compounds/therapeutic use , Bone Density/drug effects , Calcium Compounds/therapeutic use , Mandibular Diseases/therapy , Oxides/therapeutic use , Root Canal Filling Materials/therapeutic use , Silicates/therapeutic use , Animals , Bone Regeneration/drug effects , Drug Combinations , Male , Mandible/drug effects , Nanostructures/therapeutic use , Particle Size , Rabbits , Time Factors
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