Preparation and structural characterization of surface modified microporous bacterial cellulose scaffolds: A potential material for skin regeneration applications in vitro and in vivo
Tóm tắt
Từ khóa
Tài liệu tham khảo
MacNeil, 2007, Progress and opportunities for tissue-engineered skin, Nature, 445, 874, 10.1038/nature05664
Siró, 2010, Microfibrillated cellulose and new nanocomposite materials: a review, Cellulose, 17, 459, 10.1007/s10570-010-9405-y
Klemm, 2006, Nanocelluloses as innovative polymers in research and application, 49
Czaja, 2006, Microbial cellulose—the natural power to heal wounds, Biomaterials, 27, 145, 10.1016/j.biomaterials.2005.07.035
Klemm, 2005, Cellulose: fascinating biopolymer and sustainable raw material, Angew. Chem. Int. Ed., 44, 3358, 10.1002/anie.200460587
Czaja, 2007, The future prospects of microbial cellulose in biomedical applications, Biomacromolecules, 8, 10.1021/bm060620d
Fu, 2012, Skin tissue repair materials from bacterial cellulose by a multilayer fermentation method, J. Mater. Chem., 22, 12349, 10.1039/c2jm00134a
Bottan, 2015, Surface-structured bacterial cellulose with guided assembly-based biolithography (GAB), ACS Nano, 9, 206, 10.1021/nn5036125
Bäckdahl, 2008, Engineering microporosity in bacterial cellulose scaffolds, J. Tissue Eng. Regen. Med., 2, 320, 10.1002/term.97
Khan, 2015, Engineered regenerated bacterial cellulose scaffolds for application in in vitro tissue regeneration, RSC Adv., 5, 84565, 10.1039/C5RA16985B
Khan, 2016, Three-dimensionally microporous and highly biocompatible bacterial cellulose–gelatin composite scaffolds for tissue engineering applications, RSC Adv., 6, 110840, 10.1039/C6RA18847H
Janik, 2015, A review: fabrication of porous polyurethane scaffolds, Mater. Sci. Eng. C, 48, 586, 10.1016/j.msec.2014.12.037
Boyan, 1996, Role of material surfaces in regulating bone and cartilage cell response, Biomaterials, 17, 137, 10.1016/0142-9612(96)85758-9
Ito, 1999, Surface micropatterning to regulate cell functions, Biomaterials, 20, 2333, 10.1016/S0142-9612(99)00162-3
Lenza, 2002, Surface-modified 3D scaffolds for tissue engineering, J. Mater. Sci. Mater. Med., 13, 837, 10.1023/A:1016592127407
Yang, 2001, Human osteoprogenitor growth and differentiation on synthetic biodegradable structures after surface modification, Bone, 29, 523, 10.1016/S8756-3282(01)00617-2
Zhang, 2004, Biomimetic polymer/apatite composite scaffolds for mineralized tissue engineering, Macromol. Biosci., 4, 100, 10.1002/mabi.200300017
Garcia, 1997, Cell adhesion strength increases linearly with adsorbed fibronectin surface density, Tissue Eng., 3, 197, 10.1089/ten.1997.3.197
Dee, 1998, Design and function of novel osteoblast-adhesive peptides for chemical modification of biomaterials, J. Biomed. Mater. Res., 40, 371, 10.1002/(SICI)1097-4636(19980605)40:3<371::AID-JBM5>3.0.CO;2-C
Hu, 2003, Porous polymer scaffolds surface-modified with arginine-glycine-aspartic acid enhance bone cell attachment and differentiation in vitro, J. Biomed. Mater. Res. A, 64, 583, 10.1002/jbm.a.10438
Cai, 2002, Surface modification of poly (d, l-lactic acid) with chitosan and its effects on the culture of osteoblasts in vitro, J. Biomed. Mater. Res., 60, 398, 10.1002/jbm.10008
Liu, 2005, Surface modification of interconnected porous scaffolds, J. Biomed. Mater. Res. A, 74(, 84, 10.1002/jbm.a.30367
Pircher, 2015, Preparation and reinforcement of dual-porous biocompatible cellulose scaffolds for tissue engineering, Macromol. Mater. Eng., 300, 911, 10.1002/mame.201500048
Khan, 2015, Bacterial cellulose-titanium dioxide nanocomposites: nanostructural characteristics, antibacterial mechanism, and biocompatibility, Cellulose, 22, 565, 10.1007/s10570-014-0528-4
Zhu, 2008, Delivery of basic fibroblast growth factor from gelatin microsphere scaffold for the growth of human umbilical vein endothelial cells, Tissue Eng. A, 14, 1939, 10.1089/ten.tea.2007.0346
Wang, 2015, Synthesis and bioactivity of gelatin/multiwalled carbon nanotubes/hydroxyapatite nanofibrous scaffolds towards bone tissue engineering, RSC Adv., 5, 53550, 10.1039/C5RA07806G
Esposito, 1996, Gelatin microspheres: influence of preparation parameters and thermal treatment on chemico-physical and biopharmaceutical properties, Biomaterials, 17, 2009, 10.1016/0142-9612(95)00325-8
Dinarvand, 2005, Effect of process variables on particle size of gelatin microspheres containing lactic acid, Pharm. Dev. Technol., 9, 291, 10.1081/PDT-200031437
Wang, 2014, Immobilization of growing Sphingomonas sp. HXN-200 to gelatin microspheres: efficient biotransformation of N-Cbz-pyrrolidine and N-Boc-pyrrolidine into hydroxypyrrolidine derivatives, J. Biotechnol., 182, 74, 10.1016/j.jbiotec.2014.04.019
Liu, 2006, Porogen-induced surface modification of nano-fibrous poly (l-lactic acid) scaffolds for tissue engineering, Biomaterials, 27, 3980, 10.1016/j.biomaterials.2006.03.008
Khan, 2016, Three-dimensionally microporous and highly biocompatible bacterial cellulose-gelatin composite scaffolds for tissue engineering applications, RSC Adv., 6, 110840, 10.1039/C6RA18847H
Zhou, 2005, Microstructure and mechanical properties of poly (l-lactide) scaffolds fabricated by gelatin particle leaching method, J. Appl. Polym. Sci., 98, 1373, 10.1002/app.22289
Thomson, 1996, Fabrication of biodegradable polymer scaffolds to engineer trabecular bone, J. Biomater. Sci. Polym. Ed., 7, 23, 10.1163/156856295X00805
Liu, 2014, Modified gelatin with quaternary ammonium salts containing epoxide groups, Chin. Chem. Lett., 25, 1193, 10.1016/j.cclet.2014.02.005
Ul-Islam, 2014, Synthesis of regenerated bacterial cellulose-zinc oxide nanocomposite films for biomedical applications, Cellulose, 21, 433, 10.1007/s10570-013-0109-y
Cukierman, 2001, Taking cell-matrix adhesions to the third dimension, Science, 294, 1708, 10.1126/science.1064829
Ostrowska, 2016, Influence of internal pore architecture on biological and mechanical properties of three-dimensional fiber deposited scaffolds for bone regeneration, J. Biomed. Mater. Res. A, 104, 991, 10.1002/jbm.a.35637
Lei, 2012, Nanofibrous gelatin–silica hybrid scaffolds mimicking the native extracellular matrix (ECM) using thermally induced phase separation, J. Mater. Chem., 22, 14133, 10.1039/c2jm31290e
Luo, 2015, Concentrated gelatin/alginate composites for fabrication of predesigned scaffolds with a favorable cell response by 3D plotting, RSC Adv., 5, 43480, 10.1039/C5RA04308E
Alves, 2015, Expression of osteoblastic phenotype in periodontal ligament fibroblasts cultured in three-dimensional collagen gel, J. Appl. Oral Sci., 23, 206, 10.1590/1678-775720140462
Schoop, 1999, Epidermal organization and differentiation of HaCaT keratinocytes in organotypic coculture with human dermal fibroblasts, J. Investig. Dermatol., 112, 343, 10.1046/j.1523-1747.1999.00524.x
Breitkreutz, 1998, Epidermal differentiation and basement membrane formation by HaCaT cells in surface transplants, Eur. J. Cell Biol., 75, 273, 10.1016/S0171-9335(98)80123-4
Wilson, 2014, Growth and differentiation of HaCaT keratinocytes, 33
Deyrieux, 2007, In vitro culture conditions to study keratinocyte differentiation using the HaCaT cell line, Cytotechnology, 54, 77, 10.1007/s10616-007-9076-1
Bell, 1981, Living tissue formed in vitro and accepted as skin-equivalent tissue of full thickness, Science, 211, 1052, 10.1126/science.7008197