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Journal Article
Pereira, R. F., Barrias, C. C., Granja, P. L., & Bartolo, P. J. (2013). Advanced biofabrication strategies for skin regeneration and repair. Nanomedicine, 8(4), 603 - 621.
Barrias, C. C., Lamghari, M., Granja, P. L., Sá Miranda, M. C., & Barbosa, M. A. (2005). Biological evaluation of calcium alginate microspheres as a vehicle for the localized delivery of a therapeutic enzyme. Journal of Biomedical Materials Research - Part AJ. Biomed. Mater. Res. Part A, 74(4), 545 - 552.
Ribeiro, C. C., Barrias, C. C., & Barbosa, M. A. (2004). Calcium phosphate-alginate microspheres as enzyme delivery matrices. BiomaterialsBiomaterials, 25(18), 4363 - 4373.
Oliveira, S. M., Almeida, I. F., Costa, P. C., Barrias, C. C., Ferreira, M. R. P., Bahia, M. F., & Barbosa, M. A. (2010). Characterization of polymeric solutions as injectable vehicles for hydroxyapatite microspheres. AAPS PharmSciTechAAPS PharmSciTech, 11(2), 852 - 858.
Mateus, A. Y. P., Barrias, C. C., Ribeiro, C., Ferraz, M. P., & Monteiro, F. J. (2008). Comparative study of nanohydroxyapatite microspheres for medical applications. Journal of Biomedical Materials Research - Part AJ. Biomed. Mater. Res. Part A, 86(2), 483 - 493.
Barrias, C. C., Martins, M. C. L., Almeida-Porada, G., Barbosa, M. A., & Granja, P. L. (2009). The correlation between the adsorption of adhesive proteins and cell behaviour on hydroxyl-methyl mixed self-assembled monolayers. BiomaterialsBiomaterials, 30(3), 307 - 316.
Maia, F. R., Lourenço, A. H., Granja, P. L., Gonçalves, R. M., & Barrias, C. C. (2014). Effect of cell density on mesenchymal stem cells aggregation in RGD-alginate 3D matrices under osteoinductive conditions. Macromolecular Bioscience, 14(6), 759 - 771.
Fonseca, K. B., Maia, F. R., Cruz, F. A., Andrade, D., Juliano, M. A., Granja, P. L., & Barrias, C. C. (2013). Enzymatic, physicochemical and biological properties of MMP-sensitive alginate hydrogels. Soft Matter, 9(12), 3283 - 3292.
Maia, F. R., Bidarra, S. J., Granja, P. L., & Barrias, C. C. (2013). Functionalization of biomaterials with small osteoinductive moieties. Acta Biomaterialia, 9(11), 8773 - 8789.
Maia, F. R., Barbosa, M., Gomes, D. B., Vale, N., Gomes, P., Granja, P. L., & Barrias, C. C. (2014). Hydrogel depots for local co-delivery of osteoinductive peptides and mesenchymal stem cells. Journal of Controlled Release, 189, 158 - 168.
Bidarra, S. J., Barrias, C. C., Barbosa, M. A., Soares, R., & Granja, P. L. (2010). Immobilization of human mesenchymal stem cells within RGD-grafted alginate microspheres and assessment of their angiogenic potential. BiomacromoleculesBiomacromolecules, 11(8), 1956 - 1964.
Navarro, M., Ginebra, M. P., Planell, J. A., Barrias, C. C., & Barbosa, M. A. (2005). In vitro degradation behavior of a novel bioresorbable composite material based on PLA and a soluble CaP glass. Acta BiomaterialiaActa Biomater., 1(4), 411 - 419.
Oliveira, S. M., Barrias, C. C., Almeida, I. F., Costa, P. C., Pena Ferreira, M. R., Bahia, M. F., & Barbosa, M. A. (2008). Injectability of a bone filler system based on hydroxyapatite microspheres and a vehicle with in situ gel-forming ability. Journal of Biomedical Materials Research - Part B Applied BiomaterialsJ. Biomed. Mater. Res. Part B Appl. Biomater., 87(1), 49 - 58.
Bidarra, S. J., Barrias, C. C., & Granja, P. L. (2014). Injectable alginate hydrogels for cell delivery in tissue engineering. Acta Biomaterialia, 10(4), 1646 - 1662.
Fonseca, K. B., Gomes, D. B., Lee, K., Santos, S. G., Sousa, A., Silva, E. A., Mooney, D. J., Granja, P. L., & Barrias, C. C. (2014). Injectable MMP-sensitive alginate hydrogels as hMSC delivery systems. Biomacromolecules, 15(1), 380 - 390.
Maia, F. R., Fonseca, K. B., Rodrigues, G., Granja, P. L., & Barrias, C. C. (2014). Matrix-driven formation of mesenchymal stem cell-extracellular matrix microtissues on soft alginate hydrogels. Acta Biomaterialia, 10(7), 3197 - 3208.
Fonseca, K. B., Bidarra, S. J., Oliveira, M. J., Granja, P. L., & Barrias, C. C. (2011). Molecularly designed alginate hydrogels susceptible to local proteolysis as three-dimensional cellular microenvironments. Acta BiomaterialiaActa Biomater., 7(4), 1674 - 1682.
Barbosa, M. A., Granja, P. L., Barrias, C. C., & Amaral, I. F. (2005). Polysaccharides as scaffolds for bone regeneration. ITBM-RBMITBM-RBM, 26(3), 212 - 217.
Barrias, C. C., Ribeiro, C. C., Lamghari, M., Sá Miranda, C., & Barbosa, M. A. (2005). Proliferation, activity, and osteogenic differentiation of bone marrow stromal cells cultured on calcium titanium phosphate microspheres. Journal of Biomedical Materials Research - Part AJ. Biomed. Mater. Res. Part A, 72(1), 57 - 66.
Lamghari, M., Barrias, C. C., Sá Miranda, C., & Barbosa, M. A. (2005). Recombinant glucocerebrosidase uptake by Gaucher disease human osteoblast culture model. Blood Cells, Molecules, and DiseasesBlood Cells Mol. Dis., 35(3), 348 - 354.
Evangelista, M. B., Hsiong, S. X., Fernandes, R., Sampaio, P., Kong, H. - J., Barrias, C. C., Salema, R., Barbosa, M. A., Mooney, D. J., & Granja, P. L. (2007). Upregulation of bone cell differentiation through immobilization within a synthetic extracellular matrix. BiomaterialsBiomaterials, 28(25), 3644 - 3655.