Composite pullulan–dextran polysaccharide scaffold with interfacial polyelectrolyte complexation fibers: A platform with enhanced cell interaction and spatial distribution
Tài liệu tham khảo
Kirschner, 2013, Hydrogels in healthcare: from static to dynamic material microenvironments, Acta Mater, 61, 931, 10.1016/j.actamat.2012.10.037
Chaouat, 2006, The evaluation of a small-diameter polysaccharide-based arterial graft in rats, Biomaterials, 27, 5546, 10.1016/j.biomaterials.2006.06.032
Le Visage, 2012, Mesenchymal stem cell delivery into rat infarcted myocardium using a porous polysaccharide-based scaffold: a quantitative comparison with endocardial injection, Tissue Eng Part A, 18, 35, 10.1089/ten.tea.2011.0053
Lavergne, 2012, Porous polysaccharide-based scaffolds for human endothelial progenitor cells, Macromol Biosci, 12, 901, 10.1002/mabi.201100431
Tebmar, 2009
Wan, 2004, Mechanism of fiber formation by interfacial polyelectrolyte complexation, Macromolecules, 37, 7019, 10.1021/ma0498868
Liao, 2005, Controlled release from fibers of polyelectrolyte complexes, J Control Release, 104, 347, 10.1016/j.jconrel.2005.02.013
Yim, 2006, Proliferation and differentiation of human mesenchymal stem cell encapsulated in polyelectrolyte complexation fibrous scaffold, Biomaterials, 27, 6111, 10.1016/j.biomaterials.2006.07.037
Tai, 2010, The use of a polyelectrolyte fibrous scaffold to deliver differentiated hMSCs to the liver, Biomaterials, 31, 48, 10.1016/j.biomaterials.2009.09.022
Tuzlakoglu, 2011, Design of nano- and microfiber combined scaffolds by electrospinning of collagen onto starch-based fiber meshes: a man-made equivalent of natural extracellular matrix, Tissue Eng Part A, 17, 463, 10.1089/ten.tea.2010.0178
Heath, 2010, Electrospun scaffold topography affects endothelial cell proliferation, metabolic activity, and morphology, J Biomed Mater Res, 94, 1195
Lutolf, 2005, Synthetic biomaterials as instructive extracellular microenvironments for morphogenesis in tissue engineering, Nat Biotechnol, 23, 47, 10.1038/nbt1055
Nisbet, 2009, Review paper: a review of the cellular response on electrospun nanofibers for tissue engineering, J Biomater Appl, 24, 7, 10.1177/0885328208099086
de Mel, 2008, Biofunctionalization of biomaterials for accelerated in situ endothelialization: a review, Biomacromolecules, 9, 2969, 10.1021/bm800681k
Yow, 2009, Collagen-based fibrous scaffold for spatial organization of encapsulated and seeded human mesenchymal stem cells, Biomaterials, 30, 1133, 10.1016/j.biomaterials.2008.11.003
Fricain, 2013, A nano-hydroxyapatite–pullulan/dextran polysaccharide composite macroporous material for bone tissue engineering, Biomaterials, 34, 2947, 10.1016/j.biomaterials.2013.01.049
Saïed, 2014, Zeta potential and turbidimetry analyses for the evaluation of chitosan/phytic acid complex formation, J Food Res, 10.5539/jfr.v3n2p71
Paradies, 1996, Multicomponent diffusion of sodium alginate solutions with added salt. II. Charged vs. uncharged system, Berichte Der Bunsengesellschaft Für Physikalische Chemie, 100, 1299, 10.1002/bbpc.19961000806
Autissier, 2010, Fabrication of porous polysaccharide-based scaffolds using a combined freeze-drying/cross-linking process, Acta Biomater, 6, 3640, 10.1016/j.actbio.2010.03.004
Ferrara, 2004, Vascular endothelial growth factor: basic science and clinical progress, Endocr Rev, 25, 581, 10.1210/er.2003-0027
Wan, 2004, Encapsulation of biologics in self-assembled fibers as biostructural units for tissue engineering, J Biomed Mater Res A, 71, 586, 10.1002/jbm.a.30158
Lee, 1985, Kinetics of drug release from hydrogel matrices, J Control Release, 2, 277, 10.1016/0168-3659(85)90051-3
Hsieh, 1983, Zero-order controlled-release polymer matrices for micro- and macromolecules, J Pharm Sci, 72, 17, 10.1002/jps.2600720105
Ritger, 1987, A simple equation for description of solute release. II. Fickian and anomalous release from swellable devices, J Control Release, 5, 37, 10.1016/0168-3659(87)90035-6
Lowman, 2004, Biomaterials in drug delivery
Asahara, 1999, VEGF contributes to postnatal neovascularization by mobilizing bone marrow-derived endothelial progenitor cells, EMBO J, 18, 3964, 10.1093/emboj/18.14.3964
Ozawa, 2004, Microenvironmental VEGF concentration, not total dose, determines a threshold between normal and aberrant angiogenesis, J Clin Invest, 113, 516, 10.1172/JCI18420
Park, 1993, The vascular endothelial growth factor (VEGF) isoforms: differential deposition into the subepithelial extracellular matrix and bioactivity of extracellular matrix-bound VEGF, Mol Biol Cell, 4, 1317, 10.1091/mbc.4.12.1317
Autissier, 2007, Pullulan-based hydrogel for smooth muscle cell culture, J Biomed Mater Res, 82A, 336, 10.1002/jbm.a.30998
Lack, 2004, Hydrogels based on pullulan crosslinked with sodium trimetaphosphate (STMP): rheological study, Polym Bull, 52, 429, 10.1007/s00289-004-0299-4
Purnama, 2013, Fucoidan in a 3-D scaffold interacts with vascular endothelial growth factor and promotes neovascularization in mice, Drug Deliv Transl Res
Davies, 2011, Sustaining neovascularization of a scaffold through staged release of vascular endothelial growth factor-A and platelet-derived growth factor-BB, Tissue Eng Part A
Hao, 2007, Angiogenic effects of sequential release of VEGF-A165 and PDGF-BB with alginate hydrogels after myocardial infarction, Cardiovasc Res, 75, 178, 10.1016/j.cardiores.2007.03.028
Richardson, 2001, Polymeric system for dual growth factor delivery, Nat Biotechnol, 19, 1029, 10.1038/nbt1101-1029
Kirkpatrick, 2011, Co-culture systems for vascularization — learning from nature, Adv Drug Deliv Rev, 63, 291, 10.1016/j.addr.2011.01.009