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Nanocomposite particles with improved microstructure for 3D culture systems and bone regeneration.
Cecoltan, Sergiu; Stancu, Izabela-Cristina; Dragusin, Diana Maria; Serafim, Andrada; Lungu, Adriana; Tucureanu, Catalin; Caras, Iuliana; Tofan, Vlad Constantin; Salageanu, Aurora; Vasile, Eugeniu; Mallet, Romain; Chappard, Daniel; Coman, Cristin; Istodorescu, Mircea; Iovu, Horia.
Afiliação
  • Cecoltan S; Advanced Polymer Materials Group, Faculty of Applied Chemistry and Materials Science, University POLITEHNICA of Bucharest, 1-7 Gheorghe Polizu Street, Sector 1, 011061, Bucharest, Romania.
  • Stancu IC; Advanced Polymer Materials Group, Faculty of Applied Chemistry and Materials Science, University POLITEHNICA of Bucharest, 1-7 Gheorghe Polizu Street, Sector 1, 011061, Bucharest, Romania. izabela.stancu@upb.ro.
  • Dragusin DM; Faculty of Medical Engineering, University POLITEHNICA of Bucharest, 1-7 Gheorghe Polizu Street, Sector 1, 011061, Bucharest, Romania. izabela.stancu@upb.ro.
  • Serafim A; Advanced Polymer Materials Group, Faculty of Applied Chemistry and Materials Science, University POLITEHNICA of Bucharest, 1-7 Gheorghe Polizu Street, Sector 1, 011061, Bucharest, Romania.
  • Lungu A; Faculty of Medical Engineering, University POLITEHNICA of Bucharest, 1-7 Gheorghe Polizu Street, Sector 1, 011061, Bucharest, Romania.
  • Tucureanu C; Advanced Polymer Materials Group, Faculty of Applied Chemistry and Materials Science, University POLITEHNICA of Bucharest, 1-7 Gheorghe Polizu Street, Sector 1, 011061, Bucharest, Romania.
  • Caras I; Advanced Polymer Materials Group, Faculty of Applied Chemistry and Materials Science, University POLITEHNICA of Bucharest, 1-7 Gheorghe Polizu Street, Sector 1, 011061, Bucharest, Romania.
  • Tofan VC; Faculty of Medical Engineering, University POLITEHNICA of Bucharest, 1-7 Gheorghe Polizu Street, Sector 1, 011061, Bucharest, Romania.
  • Salageanu A; "Cantacuzino" National Institute for Research, Cantacuzino" National Institute for Research, 103 Splaiul Independentei, 050096, Bucharest, Romania.
  • Vasile E; "Cantacuzino" National Institute for Research, Cantacuzino" National Institute for Research, 103 Splaiul Independentei, 050096, Bucharest, Romania.
  • Mallet R; "Cantacuzino" National Institute for Research, Cantacuzino" National Institute for Research, 103 Splaiul Independentei, 050096, Bucharest, Romania.
  • Chappard D; "Cantacuzino" National Institute for Research, Cantacuzino" National Institute for Research, 103 Splaiul Independentei, 050096, Bucharest, Romania.
  • Coman C; Faculty of Applied Chemistry and Materials Science, Department of Science and Engineering of Oxide Materials and Nanomaterials, University POLITEHNICA of Bucharest, 1-7 Gheorghe Polizu Street, Sector 1, 011061, Bucharest, Romania.
  • Istodorescu M; GEROM Groupe Etudes Remodelage Osseux et bioMatériaux-LabCom NextBone, IRIS-IBS Institut de Biologie en Santé, CHU d'Angers, Université d'Angers, 49933 ANGERS, Cedex, France.
  • Iovu H; GEROM Groupe Etudes Remodelage Osseux et bioMatériaux-LabCom NextBone, IRIS-IBS Institut de Biologie en Santé, CHU d'Angers, Université d'Angers, 49933 ANGERS, Cedex, France.
J Mater Sci Mater Med ; 28(10): 153, 2017 Aug 31.
Article em En | MEDLINE | ID: mdl-28861646
ABSTRACT
Nano-apatite and gelatin-alginate hydrogel microparticles have been prepared by a one-step synthesis combined with electrostatic bead generation, for the reconstruction of bone defects. Based on the analysis of bone composition, architecture and embryonic intramembranous ossification, a bio-inspired fabrication has been developed. Accordingly, the mineral phase has been in situ synthesized, calcifying the hydrogel matrix while the latter was crosslinked, finally generating microparticles that can assemble into a bone defect to ensure interconnected pores. Although nano-apatite-biopolymer composites have been widely investigated, microstructural optimization to provide improved distribution and stability of the mineral is rarely achieved. The optimization of the developed method progressively resulted in two types of formulations (15P and 7.5P), with 15 and 7.5 (wt%) phosphate content in the initial precursor. The osteolytic potential was investigated using differentiated macrophages. A commercially available calcium phosphate bone graft substitute (Eurocer 400) was incorporated into the hydrogel, and the obtained composites were in vitro tested for comparison. The cytocompatibility of the microparticles was studied with mouse osteoblast-like cell line MC3T3-E1. Results indicated the best in vitro performance have been obtained for the sample loaded with 7.5P. Preliminary evaluation of biocompatibility into a critical size (3 mm) defect in rabbits showed that 7.5P nanocomposite is associated with newly formed bone in the proximity of the microparticles, after 28 days.
Assuntos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Regeneração Óssea / Substitutos Ósseos / Engenharia Tecidual / Nanocompostos / Alicerces Teciduais Limite: Animals / Humans Idioma: En Revista: J Mater Sci Mater Med Assunto da revista: ENGENHARIA BIOMEDICA Ano de publicação: 2017 Tipo de documento: Article País de afiliação: Romênia

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Regeneração Óssea / Substitutos Ósseos / Engenharia Tecidual / Nanocompostos / Alicerces Teciduais Limite: Animals / Humans Idioma: En Revista: J Mater Sci Mater Med Assunto da revista: ENGENHARIA BIOMEDICA Ano de publicação: 2017 Tipo de documento: Article País de afiliação: Romênia