Literature DB >> 14737769

Bone-defect healing with calcium-sulfate particles and cement: an experimental study in rabbit.

Giovanna Orsini1, John Ricci, Antonio Scarano, Gabriele Pecora, Giovanna Petrone, Giovanna Iezzi, Adriano Piattelli.   

Abstract

Calcium sulfate (CaS) has been shown to be a reasonable alternative to autogenous bone graft for treating bone lesions in dentistry. The aim of this work was an histological study of the bone healing of defects treated with calcium sulfate in the form of cement or beads, in animal. Eight New Zealand rabbits, weighing about 2.5 Kg were used in this study. In each rabbit, four 6 mm bone defects were created in the tibial metaphysis. The 2 defects in the right tibia were filled with calcium sulfate as cement, while the 2 defects in the left one were filled with calcium sulfate as beads. Four rabbits were killed after respectively 2 and 4 weeks, with an intravenous injection of Tanax, and the block sections, containing the bone defects, were retrieved. A total of 16 defects filled by cement and a total of 16 defects filled by beads were retrieved. The specimens were processed to obtain thin ground sections with the Precise 1 Automated System. In the first phases of healing it was possible to observe an intense osteoblastic activity, and in some areas osteoid matrix was present. After two weeks the calcium sulfate (both cement and beads) was still present, and biological fluids and cells were present inside the material. Newly formed bone surrounded the calcium sulfate and filled about 10% of the defect. After four weeks the calcium sulfate was almost completely resorbed and substituted by new bone. Approximately 34% of the defects were filled by newly formed bone. BEI and XRM evaluations showed the structural components of the filled defects. In none of the specimens were inflammatory cells present. No significant differences were found using both calcium sulfate as cement and beads, and they both have shown a high biocompatibility, appearing to promote newly bone formation in the rabbit model, and they did not induce any untoward effect on the bone regeneration processes. Copyright 2003 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater 68B: 199-208, 2004

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Year:  2004        PMID: 14737769     DOI: 10.1002/jbm.b.20012

Source DB:  PubMed          Journal:  J Biomed Mater Res B Appl Biomater        ISSN: 1552-4973            Impact factor:   3.368


  13 in total

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2.  Osteoinduction and -conduction through absorbable bone substitute materials based on calcium sulfate: in vivo biological behavior in a rabbit model.

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3.  Cefoperazone sodium impregnated polycaprolactone composite implant for osteomyelitis.

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4.  Antimicrobial Formulations of Absorbable Bone Substitute Materials as Drug Carriers Based on Calcium Sulfate.

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Journal:  Antimicrob Agents Chemother       Date:  2016-06-20       Impact factor: 5.191

5.  An animal model in sheep for biocompatibility testing of biomaterials in cancellous bones.

Authors:  Katja M R Nuss; Joerg A Auer; Alois Boos; Brigitte von Rechenberg
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6.  A Novel Injectable Magnesium/Calcium Sulfate Hemihydrate Composite Cement for Bone Regeneration.

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Review 7.  Biologic response of local hemostatic agents used in endodontic microsurgery.

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8.  Enhanced Stability of Calcium Sulfate Scaffolds with 45S5 Bioglass for Bone Repair.

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9.  A new biphasic osteoinductive calcium composite material with a negative Zeta potential for bone augmentation.

Authors:  Ralf Smeets; Andreas Kolk; Marcus Gerressen; Oliver Driemel; Oliver Maciejewski; Benita Hermanns-Sachweh; Dieter Riediger; Jamal M Stein
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Review 10.  Review of calcium-sulphate-based ceramics and synthetic bone substitutes used for antibiotic delivery in PJI and osteomyelitis treatment.

Authors:  Razvan Ene; Mihai Nica; Dragos Ene; Adrian Cursaru; Catalin Cirstoiu
Journal:  EFORT Open Rev       Date:  2021-05-04
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