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Magnetic and radio-labeled bio-hybrid scaffolds to promote and track in vivo the progress of bone regeneration.
Campodoni, Elisabetta; Velez, Marisela; Fragogeorgi, Eirini; Morales, Irene; de la Presa, Patricia; Stanicki, Dimitri; Dozio, Samuele M; Xanthopoulos, Stavros; Bouziotis, Penelope; Dermisiadou, Eleftheria; Rouchota, Maritina; Loudos, George; Marín, Pilar; Laurent, Sophie; Boutry, Sébastien; Panseri, Silvia; Montesi, Monica; Tampieri, Anna; Sandri, Monica.
Afiliación
  • Campodoni E; Institute of Science and Technology for Ceramics-National Research Council (CNR), Faenza, Italy. elisabetta.campodoni@istec.cnr.it.
  • Velez M; Instituto de Catálisis y Petroleoquímica (CSIC), Madrid, Spain. marisela.velez@icp.csic.es.
  • Fragogeorgi E; National Center for Scientific Research (NCSR) "Demokritos", Institute of Nuclear & Radiological Sciences & Technology, Energy &Safety, Ag. Paraskevi-Athens, Greece.
  • Morales I; BIOEMTECH, Lefkippos Attica Technology Park, NCSR "Demokritos", Ag. Paraskevi-Athens, Greece.
  • de la Presa P; Instituto de Magnetismo Aplicado (UCM-ADIF-CSIC), A6 22, Las Rozas, 28260, Spain.
  • Stanicki D; Dpto Física de Materiales, UCM, Ciudad Universitaria, Madrid, 28040, Spain.
  • Dozio SM; Instituto de Magnetismo Aplicado (UCM-ADIF-CSIC), A6 22, Las Rozas, 28260, Spain.
  • Xanthopoulos S; Dpto Física de Materiales, UCM, Ciudad Universitaria, Madrid, 28040, Spain.
  • Bouziotis P; University of Mons, General, Organic and Biomedical Chemistry, NMR and Molecular Imaging Lab, 7000 Mons, Belgium.
  • Dermisiadou E; Institute of Science and Technology for Ceramics-National Research Council (CNR), Faenza, Italy. elisabetta.campodoni@istec.cnr.it.
  • Rouchota M; Institute of Solid-State Electronics, Vienna University of Technology, Vienna, Austria.
  • Loudos G; National Center for Scientific Research (NCSR) "Demokritos", Institute of Nuclear & Radiological Sciences & Technology, Energy &Safety, Ag. Paraskevi-Athens, Greece.
  • Marín P; National Center for Scientific Research (NCSR) "Demokritos", Institute of Nuclear & Radiological Sciences & Technology, Energy &Safety, Ag. Paraskevi-Athens, Greece.
  • Laurent S; BIOEMTECH, Lefkippos Attica Technology Park, NCSR "Demokritos", Ag. Paraskevi-Athens, Greece.
  • Boutry S; BIOEMTECH, Lefkippos Attica Technology Park, NCSR "Demokritos", Ag. Paraskevi-Athens, Greece.
  • Panseri S; National Center for Scientific Research (NCSR) "Demokritos", Institute of Nuclear & Radiological Sciences & Technology, Energy &Safety, Ag. Paraskevi-Athens, Greece.
  • Montesi M; BIOEMTECH, Lefkippos Attica Technology Park, NCSR "Demokritos", Ag. Paraskevi-Athens, Greece.
  • Tampieri A; Instituto de Magnetismo Aplicado (UCM-ADIF-CSIC), A6 22, Las Rozas, 28260, Spain.
  • Sandri M; Dpto Física de Materiales, UCM, Ciudad Universitaria, Madrid, 28040, Spain.
Biomater Sci ; 9(22): 7575-7590, 2021 Nov 09.
Article en En | MEDLINE | ID: mdl-34665185
ABSTRACT
This work describes the preparation, characterization and functionalization with magnetic nanoparticles of a bone tissue-mimetic scaffold composed of collagen and hydroxyapatite obtained through a biomineralization process. Bone remodeling takes place over several weeks and the possibility to follow it in vivo in a quick and reliable way is still an outstanding issue. Therefore, this work aims to produce an implantable material that can be followed in vivo during bone regeneration by using the existing non-invasive imaging techniques (MRI). To this aim, suitably designed biocompatible SPIONs were linked to the hybrid scaffold using two different strategies, one involving naked SPIONs (nMNPs) and the other using coated and activated SPIONs (MNPs) exposing carboxylic acid functions allowing a covalent attachment between MNPs and collagen molecules. Physico-chemical characterization was carried out to investigate the morphology, crystallinity and stability of the functionalized materials followed by MRI analyses and evaluation of a radiotracer uptake ([99mTc]Tc-MDP). Cell proliferation assays in vitro were carried out to check the cytotoxicity and demonstrated no side effects due to the SPIONs. The achieved results demonstrated that the naked and coated SPIONs are more homogeneously distributed in the scaffold when incorporated during the synthesis process. This work demonstrated a suitable approach to develop a biomaterial for bone regeneration that allows the monitoring of the healing progress even for long-term follow-up studies.
Asunto(s)

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Regeneración Ósea / Andamios del Tejido Tipo de estudio: Observational_studies / Prognostic_studies Idioma: En Revista: Biomater Sci Año: 2021 Tipo del documento: Article País de afiliación: Italia

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Regeneración Ósea / Andamios del Tejido Tipo de estudio: Observational_studies / Prognostic_studies Idioma: En Revista: Biomater Sci Año: 2021 Tipo del documento: Article País de afiliación: Italia