Bio-based materials with novel characteristics for tissue engineering applications – A review
Tài liệu tham khảo
Iqbal, 2015
Nair, 2007, Biodegradable polymers as biomaterials, Prog. Polym. Sci., 32, 762, 10.1016/j.progpolymsci.2007.05.017
Michl, 2014, RAFT-derived antimicrobial polymethacrylates: elucidating the impact of end-groups on activity and cytotoxicity, Polym. Chem., 5, 5813, 10.1039/C4PY00652F
Wang, 2014, Polyetheretherketone/nano-fluorohydroxyapatite composite with antimicrobial activity and osseointegration properties, Biomaterials, 35, 6758, 10.1016/j.biomaterials.2014.04.085
Iqbal, 2014, One-pot synthesis and characterisation of novel P (3HB)–ethyl cellulose based graft composites through lipase catalysed esterification, Polym. Chem., 5, 7004, 10.1039/C4PY00857J
Iqbal, 2014, A preliminary study on the development and characterisation of enzymatically grafted P (3HB)-ethyl cellulose based novel composites, Cellulose, 21, 3613, 10.1007/s10570-014-0337-9
Iqbal, 2014, Laccase-assisted grafting of poly (3-hydroxybutyrate) onto the bacterial cellulose as backbone polymer: development and characterization, Carbohydr. Polym., 113, 131, 10.1016/j.carbpol.2014.07.003
Iqbal, 2015, Poly (3-hydroxybutyrate)-ethyl cellulose based bio-composites with novel characteristics for infection free wound healing application, Int. J. Biol. Macromol., 81, 552, 10.1016/j.ijbiomac.2015.08.040
Iqbal, 2015, Development of bio-composites with novel characteristics: Evaluation of phenol-induced antibacterial, biocompatible and biodegradable behaviours, Carbohydr. Polym., 131, 197, 10.1016/j.carbpol.2015.05.046
Iqbal, 2015, Development of novel antibacterial active, HaCaT biocompatible and biodegradable CA-gP (3HB)-EC biocomposites with caffeic acid as a functional entity, eXPRESS, Polym. Lett., 9, 764, 10.3144/expresspolymlett.2015.72
Lu, 2015, Composite copolymer hybrid silver nanoparticles: preparation and characterization of antibacterial activity and cytotoxicity, Polym. Chem., 6, 772, 10.1039/C4PY00931B
Jagur-Grodzinski, 2006, Polymers for tissue engineering, medical devices, and regenerative medicine. Concise general review of recent studies, Polym. Adv. Technol., 17, 395, 10.1002/pat.729
Edgar, 2016, Heterogeneity of scaffold biomaterials in tissue engineering, Materials, 9, 332, 10.3390/ma9050332
Radhakrishnan, 2015, PEG-penetrated chitosan–alginate co-polysaccharide-based partially and fully cross-linked hydrogels as ECM mimic for tissue engineering applications, Prog. Biomater., 4, 101, 10.1007/s40204-015-0041-3
Ozdil, 2014, Polymers for medical and tissue engineering applications, J. Chem. Technol. Biotechnol., 89, 1793, 10.1002/jctb.4505
Li, 2016, Polyhydroxyalkanoates: opening doors for a sustainable future, NPG Asia Mater., 8, e265, 10.1038/am.2016.48
Getachew, 2016, Production of sterilized medium chain length polyhydroxyalkanoates (Smcl-PHA) as a biofilm to tissue engineering application, J. Tissue Sci. Eng., 7, 1, 10.4172/2157-7552.1000167
Rai, 2011, Medium chain length polyhydroxyalkanoates, promising new biomedical materials for the future, Mater. Sci. Eng. Rep., 72, 29, 10.1016/j.mser.2010.11.002
Biazar, 2014, Polyhydroxyalkanoates as potential biomaterials for neural tissue regeneration, Int. J. Polym. Mater. Polym. Biomater., 63, 898, 10.1080/00914037.2014.886227
Sudesh, 2000, Synthesis, structure and properties of polyhydroxyalkanoates: biological polyesters, Prog. Polym. Sci., 25, 1503, 10.1016/S0079-6700(00)00035-6
Reddy, 2003, Polyhydroxyalkanoates: an overview, Bioresour. Technol., 87, 137, 10.1016/S0960-8524(02)00212-2
Babu, 2013, Current progress on bio-based polymers and their future trends, Prog. Biomater., 2, 8, 10.1186/2194-0517-2-8
Pawar, 2012, Alginate derivatization: a review of chemistry, properties and applications, Biomaterials, 33, 3279, 10.1016/j.biomaterials.2012.01.007
Saltz, 2016, Mesenchymal stem cells and alginate microcarriers for craniofacial bone tissue engineering: a review, J. Biomed. Mater. Res. A, 104, 1276, 10.1002/jbm.a.35647
Venkatesan, 2015, Alginate composites for bone tissue engineering: a review, Int. J. Biol. Macromol., 72, 269, 10.1016/j.ijbiomac.2014.07.008
Drury, 2003, Hydrogels for tissue engineering: scaffold design variables and applications, Biomaterials, 24, 4337, 10.1016/S0142-9612(03)00340-5
Singh, 2016, Chitin and carbon nanotube composites as biocompatible scaffolds for neuron growth, Nanoscale, 8, 8288, 10.1039/C5NR06595J
Thein-Han, 2009, Biomimetic chitosan–nanohydroxyapatite composite scaffolds for bone tissue engineering, Acta Biomater., 5, 1182, 10.1016/j.actbio.2008.11.025
Di Martino, 2005, Chitosan: a versatile biopolymer for orthopaedic tissue-engineering, Biomaterials, 26, 5983, 10.1016/j.biomaterials.2005.03.016
Li, 2005, Chitosan–alginate hybrid scaffolds for bone tissue engineering, Biomaterials, 26, 3919, 10.1016/j.biomaterials.2004.09.062
Shanmugasundaram, 2001, Collagen–chitosan polymeric scaffolds for the in vitro culture of human epidermoid carcinoma cells, Biomaterials, 22, 1943, 10.1016/S0142-9612(00)00220-9
Iqbal, 2015, In situ development of self-defensive antibacterial biomaterials: phenol-g-keratin-EC based bio-composites with characteristics for biomedical applications, Green Chem., 17, 3858, 10.1039/C5GC00715A
Iqbal, 2015, Laccase-assisted approach to graft multifunctional materials of interest: keratin-EC based novel composites and their characterization, Macromol. Mater. Eng., 300, 712, 10.1002/mame.201500003
Iqbal, 2016, Recent trends in nanotechnology-based drugs and formulations for targeted therapeutic delivery, Recent Pat. Inflamm. Allergy Drug Discov., 10
Su, 2014, PHBVHHx scaffolds loaded with umbilical cord-derived mesenchymal stem cells or hepatocyte-like cells differentiated from these cells for liver tissue engineering, Mater. Sci. Eng. C, 45, 374, 10.1016/j.msec.2014.09.022
Xu, 2010, The behaviour of neural stem cells on polyhydroxyalkanoate nanofiber scaffolds, Biomaterials, 31, 3967, 10.1016/j.biomaterials.2010.01.132
Webb, 2013, The application of poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) scaffolds for tendon repair in the rat model, Biomaterials, 34, 6683, 10.1016/j.biomaterials.2013.05.041
Chiulan, 2016, Biocompatible polyhydroxyalkanoates/bacterial cellulose composites: preparation, characterization and in vitro evaluation, J. Biomed. Mater. Res. A, 104, 2576, 10.1002/jbm.a.35800
Ching, 2016, Nanofibrous poly (3-hydroxybutyrate)/poly (3-hydroxyoctanoate) scaffolds provide a functional microenvironment for cartilage repair, J. Biomater. Appl., 31, 77, 10.1177/0885328216639749
Bonartsev, 2016, 3D-Scaffolds from poly(3-hydroxybutyrate) poly(ethylene glycol) copolymer for tissue engineering, J. Biomater. Tissue Eng., 6, 42, 10.1166/jbt.2016.1414
Canadas, 2014, Polyhydroxyalkanoates: waste glycerol upgrade into electrospun fibrous scaffolds for stem cells culture, Int. J. Biol. Macromol., 71, 131, 10.1016/j.ijbiomac.2014.05.008
You, 2016, A honeycomb composite of mollusca shell matrix and calcium alginate, Colloids Surf. B Biointerfaces, 139, 100, 10.1016/j.colsurfb.2015.12.006
Masaeli, 2014, Peptide functionalized polyhydroxyalkanoate nanofibrous scaffolds enhance Schwann cells activity, Nanomed. Nanotechnol. Biol. Med., 10, 1559, 10.1016/j.nano.2014.04.008
Akaraonye, 2016, Composite scaffolds for cartilage tissue engineering based on natural polymers of bacterial origin, thermoplastic poly (3-hydroxybutyrate) and micro-fibrillated bacterial cellulose, Polym. Int., 65, 780, 10.1002/pi.5103
Ding, 2015, The evaluation of physical properties and in vitro cell behavior of PHB/PCL/sol–gel derived silica hybrid scaffolds and PHB/PCL/fumed silica composite scaffolds, Colloids Surf. B Biointerfaces, 136, 93, 10.1016/j.colsurfb.2015.08.023
Shabna, 2014, Indigenously produced polyhydroxyalkanoate based co-polymer as cellular supportive biomaterial, J. Biomed. Mater. Res. A, 102, 3470, 10.1002/jbm.a.35029
Wang, 2010, Differentiation of human bone marrow mesenchymal stem cells grown in terpolyesters of 3-hydroxyalkanoates scaffolds into nerve cells, Biomaterials, 31, 1691, 10.1016/j.biomaterials.2009.11.053
Luo, 2016, Peptide-incorporated 3D porous alginate scaffolds with enhanced osteogenesis for bone tissue engineering, Colloids Surf. B Biointerfaces, 143, 243, 10.1016/j.colsurfb.2016.03.047
Heo, 2017, Novel 3D printed alginate–BFP1 hybrid scaffolds for enhanced bone regeneration, J. Ind. Eng. Chem., 45, 61, 10.1016/j.jiec.2016.09.003
Quraishi, 2015, Novel non-cytotoxic alginate–lignin hybrid aerogels as scaffolds for tissue engineering, J. Supercrit. Fluids, 105, 1, 10.1016/j.supflu.2014.12.026
Martins, 2015, Preparation of macroporous alginate-based aerogels for biomedical applications, J. Supercrit. Fluids, 106, 152, 10.1016/j.supflu.2015.05.010
Prang, 2006, The promotion of oriented axonal regrowth in the injured spinal cord by alginate-based anisotropic capillary hydrogels, Biomaterials, 27, 3560
Chandika, 2015, Fish collagen/alginate/chitooligosaccharides integrated scaffold for skin tissue regeneration application, Int. J. Biol. Macromol., 81, 504, 10.1016/j.ijbiomac.2015.08.038
Sapir, 2011, Integration of multiple cell-matrix interactions into alginate scaffolds for promoting cardiac tissue regeneration, Biomaterials, 32, 1838, 10.1016/j.biomaterials.2010.11.008
Dahlmann, 2013, Fully defined in situ cross-linkable alginate and hyaluronic acid hydrogels for myocardial tissue engineering, Biomaterials, 34, 940, 10.1016/j.biomaterials.2012.10.008
Barros, 2016, Hybrid alginate-based cryogels for life science applications, Chem. Ing. Tech., 88, 1770, 10.1002/cite.201600096
Mahapatra, 2016, Alginate-hyaluronic acid-collagen composite hydrogel favorable for the culture of chondrocytes and their phenotype maintenance, Tissue Eng. Regen. Med., 13, 538, 10.1007/s13770-016-0059-1
Du, 2016, Mesenchymal stem cells derived from human bone marrow and adipose tissue maintain their immunosuppressive properties after chondrogenic differentiation: role of HLA-G, Stem Cells Dev., 25, 1454, 10.1089/scd.2016.0022
Liang, 2016, Double-network hydrogel with tunable mechanical performance and biocompatibility for the fabrication of stem cells-encapsulated fibers and 3D assemble, Sci. Rep., 6, 33462, 10.1038/srep33462
Gu, 2016, Functional 3D neural mini-tissues from printed gel-based bioink and human neural stem cells, Adv. Health Mater., 5, 1429, 10.1002/adhm.201600095
Kundu, 2015, An additive manufacturing-based PCL–alginate–chondrocyte bioprinted scaffold for cartilage tissue engineering, J. Tissue Eng. Regen. Med., 9, 1286, 10.1002/term.1682
Markstedt, 2015, 3D bioprinting human chondrocytes with nanocellulose–alginate bioink for cartilage tissue engineering applications, Biomacromolecules, 16, 1489, 10.1021/acs.biomac.5b00188
Hajiali, 2015, Alginate nanofibrous mats with adjustable degradation rate for regenerative medicine, Biomacromolecules, 16, 936, 10.1021/bm501834m
Sandvig, 2015, RGD-peptide modified alginate by a chemoenzymatic strategy for tissue engineering applications, J. Biomed. Mater. Res. A, 103, 896, 10.1002/jbm.a.35230
Deng, 2015, Delivery of alginate-chitosan hydrogel promotes endogenous repair and preserves cardiac function in rats with myocardial infarction, J. Biomed. Mater. Res. A, 103, 907, 10.1002/jbm.a.35232
Yan, 2014, Injectable in situ self-cross-linking hydrogels based on poly (l-glutamic acid) and alginate for cartilage tissue engineering, Biomacromolecules, 15, 4495, 10.1021/bm501313t
Ziv, 2014, A tunable silk–alginate hydrogel scaffold for stem cell culture and transplantation, Biomaterials, 35, 3736, 10.1016/j.biomaterials.2014.01.029
Kitagawa, 2014, Patterned hydrogel microfibers prepared using multilayered microfluidic devices for guiding network formation of neural cells, Biofabrication, 6, 035011, 10.1088/1758-5082/6/3/035011
Katsen-Globa, 2014, Towards ready-to-use 3-D scaffolds for regenerative medicine: adhesion-based cryopreservation of human mesenchymal stem cells attached and spread within alginate–gelatin cryogel scaffolds, J. Mater. Sci. Mater. Med., 25, 857, 10.1007/s10856-013-5108-x
Chae, 2013, Novel biomimetic hydroxyapatite/alginate nanocomposite fibrous scaffolds for bone tissue regeneration, J. Mater. Sci. Mater. Med., 24, 1885, 10.1007/s10856-013-4957-7
Xie, 2016, Osteogenic differentiation and bone regeneration of iPSC-MSCs supported by a biomimetic nanofibrous scaffold, Acta Biomater., 29, 365, 10.1016/j.actbio.2015.10.007
Dumont, 2016, Glycol chitosan/nanohydroxyapatite biocomposites for potential bone tissue engineering and regenerative medicine, Int. J. Biol. Macromol., 93, 1465, 10.1016/j.ijbiomac.2016.04.030
Skop, 2013, Heparin crosslinked chitosan microspheres for the delivery of neural stem cells and growth factors for central nervous system repair, Act. Biomater., 9, 6834, 10.1016/j.actbio.2013.02.043
Cooper, 2011, Fabrication and cellular compatibility of aligned chitosan–PCL fibers for nerve tissue regeneration, Carbohydr. Polym., 85, 149, 10.1016/j.carbpol.2011.02.008
Angulo, 2016, Characterization of gelatin/chitosan scaffold blended with aloe vera and snail mucus for biomedical purpose, Int. J. Biol. Macromol., 92, 645, 10.1016/j.ijbiomac.2016.07.029
Wang, 2016, Polyurethane membrane/knitted mesh-reinforced collagen–chitosan bilayer dermal substitute for the repair of full-thickness skin defects via a two-step procedure, J. Mech. Behav. Biomed. Mater., 56, 120, 10.1016/j.jmbbm.2015.11.021
Zhang, 2016, Preparation, characterization, and evaluation of genipin crosslinked chitosan/gelatin three-dimensional scaffolds for liver tissue engineering applications, J. Biomed. Mater. Res. A, 104, 1863, 10.1002/jbm.a.35717
Cheng, 2016, Hepatocyte growth factor-loaded collagen-chitosan scaffold containing differentiated bone marrow-derived mesenchymal stem cells as a model for hepatic tissue engineering, J. Biomater. Tissue Eng., 6, 621, 10.1166/jbt.2016.1478
Garnica-Palafox, 2016, Influence of natural and synthetic crosslinking reagents on the structural and mechanical properties of chitosan-based hybrid hydrogels, Carbohydr. Polym., 151, 1073, 10.1016/j.carbpol.2016.06.036
Bush, 2016, Xylan hemicellulose improves chitosan hydrogel for bone tissue regeneration, Polym. Adv. Technol., 27, 1050, 10.1002/pat.3767
Agrawal, 2016, Chitosan-poly (vinyl alcohol) nanofibers by free surface electrospinning for tissue engineering applications, Tissue Eng. Regen. Med., 13, 485, 10.1007/s13770-016-9092-3
Salehi, 2016, Comparative study of poly (l-lactic acid) scaffolds coated with chitosan nanoparticles prepared via ultrasonication and ionic gelation techniques, Tissue Eng. Regen. Med., 13, 498, 10.1007/s13770-016-9083-4
Przekora, 2016, In vitro evaluation of the risk of inflammatory response after chitosan/HA and chitosan/β-1, 3-glucan/HA bone scaffold implantation, Mater. Sci. Eng. C, 61, 355, 10.1016/j.msec.2015.12.066
Aljawish, 2016, Growth of human mesenchymal stem cells (MSCs) on films of enzymatically modified chitosan, Biotechnol. Prog., 32, 491, 10.1002/btpr.2216
Lotfi, 2016, Hybrid chitosan–β-glycerol phosphate–gelatin nano-/micro fibrous scaffolds with suitable mechanical and biological properties for tissue engineering, Biopolymers, 105, 163, 10.1002/bip.22764
Ruan, 2016, Enhanced physiochemical and mechanical performance of chitosan-grafted graphene oxide for superior osteoinductivity, Adv. Funct. Mater., 26, 1085, 10.1002/adfm.201504141
Moreira, 2016, Thermogelling chitosan–collagen–bioactive glass nanoparticle hybrids as potential injectable systems for tissue engineering, Mater. Sci. Eng. C, 58, 1207, 10.1016/j.msec.2015.09.075
Razavi, 2015, Nanobiocomposite of poly (lactide-co-glycolide)/chitosan electrospun scaffold can promote proliferation and transdifferentiation of Schwann-like cells from human adipose-derived stem cells, J. Biomed. Mater. Res. A, 103, 2628, 10.1002/jbm.a.35398
Norowski, 2015, Novel naturally crosslinked electrospun nanofibrous chitosan mats for guided bone regeneration membranes: material characterization and cytocompatibility, J. Tissue Eng. Regen. Med., 9, 577, 10.1002/term.1648
Bellini, 2014, Combining xanthan and chitosan membranes to multipotent mesenchymal stromal cells as bioactive dressings for dermo-epidermal wounds, J. Biomater. Appl., 29, 1155, 10.1177/0885328214553959