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Acta Biomaterialia|January 17, 2009
Ability of polyurethane foams to support cell proliferation and the differentiation of MSCs into osteoblastsM Zanetta, N Quirici, F Demarosi, et al.Journal of Biomaterials Science. Polymer Edition|July 21, 2000
Novel poly(urethane-aminoamides): an in vitro study of the interaction with heparinP Petrini, M C Tanzi, L Visai, et al.Journal of Materials Science. Materials in Medicine|September 7, 2004
Linear poly(ethylene oxide)-based polyurethane hydrogels: polyurethane-ureas and polyurethane-amidesP Petrini, M C Tanzi, C R Moran, et al.Journal of Biomedical Materials Research|September 19, 1997
Chemical stability of polyether urethanes versus polycarbonate urethanesM C Tanzi, D Mantovani, P Petrini, et al.Journal of Biomedical Materials Research|July 9, 1999
Synergistic effects of oxidative environments and mechanical stress on in vitro stability of polyetherurethanes and polycarbonateurethanesS Faré, P Petrini, A Motta, et al.Journal of Materials Science. Materials in Medicine|December 17, 2009
Ability of polyurethane foams to support placenta-derived cell adhesion and osteogenic differentiation: preliminary resultsS Bertoldi, S Farè, M Denegri, et al.Materials Science & Engineering. C, Materials for Biological Applications|October 14, 2017
Polyurethane foam/nano hydroxyapatite composite as a suitable scaffold for bone tissue regenerationM Meskinfam, S Bertoldi, N Albanese, et al.International Journal of Biological Macromolecules|August 12, 2014
Micro- and nano-hydroxyapatite as active reinforcement for soft biocompositesF Munarin, P Petrini, R Gentilini, et al.The International Journal of Artificial Organs|May 18, 2006
Antibacterial activity of zinc modified titanium oxide surfaceP Petrini, C R Arciola, I Pezzali, et al.Biomacromolecules|February 10, 2011
Pectin-based injectable biomaterials for bone tissue engineeringF Munarin, S G Guerreiro, M A Grellier, et al.Pageof 10