Enhanced mineralization of the nanofibers-incorporated aerogels increases mechanical properties of scaffold and promotes bone formation

Materials Today Advances - Tập 16 - Trang 100318 - 2022
Gu Cheng1,2, Congyong Xie1,2, Yuet Cheng1, Chao Gong1, Zhi Li1, Xiangyang Dong1, Hongbing Deng2, Zubing Li1
1State Key Laboratory Breeding Base of Basic Science of Stomatology (Hubei-MOST) and Key Laboratory of Oral Biomedicine, Ministry of Education, School and Hospital of Stomatology & Department of Oral and Maxillofacial Trauma and TMJ Surgery, Wuhan University Stomatological Hospital, Wuhan University, Wuhan, 430079, China
2Hubei Key Laboratory of Biomass Resource Chemistry and Environmental Biotechnology, School of Resource and Environmental Science, Wuhan University, Wuhan, 430079, China

Tài liệu tham khảo

Thieu, 2021, Impact of simultaneous placement of implant and block bone graft substitute: an in vivo peri-implant defect model, Biomater. Res., 25, 1, 10.1186/s40824-021-00245-3 Shang, 2021, Advancing application of mesenchymal stem cell-based bone tissue regeneration, Bioact. Mater., 6, 666, 10.1016/j.bioactmat.2020.08.014 Huang, 2020, Comparing the regeneration potential between PLLA/Aragonite and PLLA/Vaterite pearl composite scaffolds in rabbit radius segmental bone defects, Bioact. Mater., 5, 980, 10.1016/j.bioactmat.2020.06.018 Zhao, 2021, Poly(lactic-co-glycolic acid)-based composite bone-substitute materials, Bioact. Mater., 6, 346, 10.1016/j.bioactmat.2020.08.016 Berrio, 2021, Synthesis and applications of graphene oxide aerogels in bone tissue regeneration: a review, Mater. Today Chem., 20 Chen, 2020, Advanced fabrication for electrospun three-dimensional nanofiber aerogels and scaffolds, Bioact. Mater., 5, 17 Tetik, 2021, Additive manufacturing of 3D aerogels and porous scaffolds: a review, Adv. Funct. Mater., 31, 10.1002/adfm.202103410 Ge, 2018, High-strength and morphology-controlled aerogel based on carboxymethyl cellulose and graphene oxide, Carbohydr. Polym., 197, 277, 10.1016/j.carbpol.2018.06.014 Zhang, 2020, Electrospinning nanofiber-reinforced aerogels for the treatment of bone defects, Adv. Wound Care, 9, 441, 10.1089/wound.2018.0879 Levingstone, 2016, Multi-layered collagen-based scaffolds for osteochondral defect repair in rabbits, Acta Biomater., 32, 149, 10.1016/j.actbio.2015.12.034 Liu, 2019, Biocompatible graphene oxide–collagen composite aerogel for enhanced stiffness and in situ bone regeneration, Mater. Sci. Eng. C, 105, 10.1016/j.msec.2019.110137 Ramakrishna, 2006, Electrospun nanofibers: solving global issues, Mater. Today, 9, 40, 10.1016/S1369-7021(06)71389-X Dilamian, 2021, From 1D electrospun nanofibers to advanced multifunctional fibrous 3D aerogels, Appl. Mater. Today, 22 Wang, 2020, Electrospun nanofiber-reinforced three-dimensional chitosan matrices: architectural, mechanical and biological properties, J. Colloid Interface Sci., 565, 416, 10.1016/j.jcis.2020.01.016 Li, 2009, Flexible nanofiber-reinforced aerogel (xerogel) synthesis, manufacture, and characterization, ACS Appl. Mater. Interfaces, 1, 2491, 10.1021/am900451x Si, 2014, Ultralight nanofibre-assembled cellular aerogels with superelasticity and multifunctionality, Nat. Commun., 5, 1, 10.1038/ncomms6802 Luo, 2018, 3-D mineralized silk fibroin/polycaprolactone composite scaffold modified with polyglutamate conjugated with BMP-2 peptide for bone tissue engineering, Colloids Surf. B Biointerfaces, 163, 369, 10.1016/j.colsurfb.2017.12.043 Chen, 2019, Sustained release SDF-1α/TGF-β1-loaded silk fibroin-porous gelatin scaffold promotes cartilage repair, ACS Appl. Mater. Interfaces, 11, 14608, 10.1021/acsami.9b01532 Cheng, 2021, Extracellular matrix imitation utilizing nanofibers-embedded biomimetic scaffolds for facilitating cartilage regeneration, Chem. Eng. J., 410, 10.1016/j.cej.2020.128379 Cheng, 2018, Promoting osteogenic differentiation in pre-osteoblasts and reducing tibial fracture healing time using functional nanofibers, Nano Res., 11, 3658, 10.1007/s12274-017-1934-3 Kim, 2014, Mechanically-reinforced electrospun composite silk fibroin nanofibers containing hydroxyapatite nanoparticles, Mater. Sci. Eng. C, 40, 324, 10.1016/j.msec.2014.04.012 Heras, 2020, Soy protein and chitin sponge-like scaffolds: from natural by-products to cell delivery systems for biomedical applications, Green Chem., 22, 3445, 10.1039/D0GC00089B Rj, 2011, Biomaterials based on chitin and chitosan in wound dressing applications, Biotechnol. Adv., 29, 322, 10.1016/j.biotechadv.2011.01.005 Sdab, 2015, Bioprintable, cell-laden silk fibroin–gelatin hydrogel supporting multilineage differentiation of stem cells for fabrication of three-dimensional tissue constructs, Acta Biomater., 11, 233, 10.1016/j.actbio.2014.09.023 Rauner, 2014, Urease-induced calcification of segmented polymer hydrogels – a step towards artificial biomineralization, Acta Biomater., 10, 3942, 10.1016/j.actbio.2014.05.021 Rauner, 2017, Enzymatic mineralization generates ultrastiff and tough hydrogels with tunable mechanics, Nature, 543, 407, 10.1038/nature21392 Hu, 2017, Biomimetic mineralized hierarchical hybrid scaffolds based on in situ synthesis of nano-hydroxyapatite/chitosan/chondroitin sulfate/hyaluronic acid for bone tissue engineering, Colloids Surf. B Biointerfaces, 157, 93, 10.1016/j.colsurfb.2017.05.059 Marelli, 2011, Accelerated mineralization of dense collagen-nano bioactive glass hybrid gels increases scaffold stiffness and regulates osteoblastic function, Biomaterials, 32, 8915, 10.1016/j.biomaterials.2011.08.016 Kanjwal, 2011, Fabrication of poly(caprolactone) nanofibers containing hydroxyapatite nanoparticles and their mineralization in a simulated body fluid, Fibers Polym., 12, 50, 10.1007/s12221-011-0050-3 Rodriguez, 2011, Biomimetic calcium phosphate crystal mineralization on electrospun cellulose-based scaffolds, ACS Appl. Mater. Interfaces, 3, 681, 10.1021/am100972r Seyedjafari, 2010, Nanohydroxyapatite-coated electrospun poly(l-lactide) nanofibers enhance osteogenic differentiation of stem cells and induce ectopic bone formation, Biomacromolecules, 11, 3118, 10.1021/bm1009238 Yang, 2008, Biomimetic calcium phosphate coating on electropun poly (epsilon-caprolactone) scaffolds for bone tissue engineering, Chem. Eng. J., 137, 154, 10.1016/j.cej.2007.07.076 Ethirajan, 2009, Surface-Functionalized polymeric nanoparticles as templates for biomimetic mineralization of hydroxyapatite, Chem. Mater., 21, 2218, 10.1021/cm9001724 Marelli, 2012, Silk fibroin derived polypeptide-induced biomineralization of collagen, Biomaterials, 33, 102, 10.1016/j.biomaterials.2011.09.039 Si, 2016, Biomimetic composite scaffolds based on mineralization of hydroxyapatite on electrospun poly(-caprolactone)/nanocellulose fibers, Carbohydr. Polym., 143, 270, 10.1016/j.carbpol.2016.02.015 Vicente, 2020, α-Chitin dissolution, N-deacetylation and valorization in deep eutectic solvents, Biopolymers, 111, 10.1002/bip.23351 Feng, 2008, Deposition behavior and properties of silk fibroin scaffolds soaked in simulated body fluid, Mater. Chem. Phys., 111, 92, 10.1016/j.matchemphys.2008.03.019 Bhumiratana, 2011, Nucleation and growth of mineralized bone matrix on silk-hydroxyapatite composite scaffolds, Biomaterials, 32, 2812, 10.1016/j.biomaterials.2010.12.058 Dmc, 2021, Development of composite hydrogel based on hydroxyapatite mineralization over pectin reinforced with cellulose nanocrystal, Int. J. Biol. Macromol., 167, 726, 10.1016/j.ijbiomac.2020.12.012 Kundu, 2013, Silk fibroin biomaterials for tissue regenerations, Adv. Drug Deliv. Rev., 65, 457, 10.1016/j.addr.2012.09.043 Saleem, 2020, Silk fibroin/hydroxyapatite scaffold: a highly compatible material for bone regeneration, Sci. Technol. Adv. Mater., 21, 242, 10.1080/14686996.2020.1748520 Cui, 2010, Controllable growth of hydroxyapatite on electrospun poly(dl -lactide) fibers grafted with chitosan as potential tissue engineering scaffolds, Polymer, 51, 2320, 10.1016/j.polymer.2010.03.037 Antoni, 2015, Three-dimensional cell culture: a breakthrough in vivo, Int. J. Mol. Sci., 16, 5517, 10.3390/ijms16035517 Cheng, 2021, Biomimetic silk fibroin hydrogels strengthened by silica nanoparticles distributed nanofibers facilitate bone repair, Advanced Healthcare Materials, 10, 10.1002/adhm.202001646 Cheng, 2019, Controlled Co-delivery of growth factors through layer-by-layer assembly of core-shell nanofibers for improving bone regeneration, ACS Nano, 13, 6372, 10.1021/acsnano.8b06032 Smith, 1999, Molecular mechanistic origin of the toughness of natural adhesives, fibres and composites, Nature, 399, 761, 10.1038/21607 Burr, 2002, The contribution of the organic matrix to bone's material properties, Bone, 31, 8, 10.1016/S8756-3282(02)00815-3 Kane, 2013, Mimicking the nanostructure of bone matrix to regenerate bone, Mater. Today, 16, 418, 10.1016/j.mattod.2013.11.001 Fantner, 2005, Sacrificial bonds and hidden length dissipate energy as mineralized fibrils separate during bone fracture, Nat. Mater., 4, 612, 10.1038/nmat1428 Ping, 2022, Mineralization generates megapascal contractile stresses in collagen fibrils, Science, 376, 188, 10.1126/science.abm2664 Verma, 2010, Effect of biomimetic 3D environment of an injectable polymeric scaffold on MG-63 osteoblastic-cell response, Mater. Sci. Eng. C, 30, 1118, 10.1016/j.msec.2010.06.005 Son, 2011, Porous hydroxyapatite scaffold with three-dimensional localized drug delivery system using biodegradable microspheres, J. Contr. Release, 153, 133, 10.1016/j.jconrel.2011.03.010 Cheng, 2008, Silk fibroin-regulated crystallization of calcium carbonate, Adv. Funct. Mater., 18, 2172, 10.1002/adfm.200701130 Collins, 2009, Bone-like resorbable silk-based scaffolds for load-bearing osteoregenerative applications, Adv. Mater., 21, 75, 10.1002/adma.200802239 Boda, 2019, Mineralized nanofiber segments coupled with calcium-binding BMP-2 peptides for alveolar bone regeneration, Acta Biomater., 85, 282, 10.1016/j.actbio.2018.12.051 John, 2020, New forms of electrospun nanofiber materials for biomedical applications, J. Mater. Chem. B, 8, 3733, 10.1039/D0TB00271B Xue, 2019, Electrospinning and electrospun nanofibers: methods, materials, and applications, Chem. Rev., 119, 5298, 10.1021/acs.chemrev.8b00593 Li, 2020, 3D hybrid nanofiber aerogels combining with nanoparticles made of a biocleavable and targeting polycation and MiR-26a for bone repair, Adv. Funct. Mater., 30, 10.1002/adfm.202005531 Liu, 2016, Hierarchically staggered nanostructure of mineralized collagen as a bone-grafting scaffold, Adv. Mater., 28, 8740, 10.1002/adma.201602628 Venkatesan, 2014, Nano-hydroxyapatite composite biomaterials for bone tissue engineering—a review, J. Biomed. Nanotechnol., 10, 3124, 10.1166/jbn.2014.1893 Wei, 2004, Structure and properties of nano-hydroxyapatite/polymer composite scaffolds for bone tissue engineering, Biomaterials, 25, 4749, 10.1016/j.biomaterials.2003.12.005 Di Silvio, 2002, Osteoblast behaviour on HA/PE composite surfaces with different HA volumes, Biomaterials, 23, 101, 10.1016/S0142-9612(01)00084-9 Lee, 2007, Assembly of collagen-binding peptide with collagen as a bioactive scaffold for osteogenesis in vitro and in vivo, Biomaterials, 28, 4257, 10.1016/j.biomaterials.2007.05.040 Murphy, 2010, The effect of mean pore size on cell attachment, proliferation and migration in collagen-glycosaminoglycan scaffolds for bone tissue engineering, Biomaterials, 31, 461, 10.1016/j.biomaterials.2009.09.063 Antiope, 2018, Transformation of amorphous calcium phosphate to bone-like apatite, Nat. Commun., 9, 1 Shih, 2019, Tissue engineered bone mimetics to study bone disorders exvivo: role of bioinspired materials, Biomaterials, 198, 107, 10.1016/j.biomaterials.2018.06.005 Bahn, 2017, Control of nacre biomineralization by Pif80 in pearl oyster, Sci. Adv., 3, 10.1126/sciadv.1700765 de Melo Pereira, 2018, Biomineralization-inspired material design for bone regeneration, Advanced Healthcare Materials, 7, 10.1002/adhm.201800700 Wu, 2021, Improved hydrophilicity and durability of polarized PVDF coatings on anodized titanium surfaces to enhance mineralization ability, Colloids Surf. B Biointerfaces, 205, 10.1016/j.colsurfb.2021.111898 Bose, 2011, Understanding in vivo response and mechanical property variation in MgO, SrO and SiO doped β-TCP, Bone, 48, 1282, 10.1016/j.bone.2011.03.685 Zhao, 2019, Facile one-step bioinspired mineralization by chitosan functionalized with graphene oxide to activate bone endogenous regeneration, Chem. Eng. J., 378, 10.1016/j.cej.2019.122174 Singh, 2016, Carboxymethyl cellulose enables silk fibroin nanofibrous scaffold with enhanced biomimetic potential for bone tissue engineering application, Carbohydr. Polym., 151, 335, 10.1016/j.carbpol.2016.05.088 Nandakumar, 2010, Calcium phosphate coated electrospun fiber matrices as scaffolds for bone tissue engineering, Langmuir Acs J. Surf. Colloids., 26, 7380, 10.1021/la904406b Wang, 2016, Enhanced in vitro mineralization and in vivo osteogenesis of composite scaffolds through controlled surface grafting of L-lactic acid oligomer on nanohydroxyapatite, Biomacromolecules, 17, 818, 10.1021/acs.biomac.5b01543 Joon, 2018, Biomimetic scaffolds for bone tissue engineering, Biomimetic Med. Mater., 109 Kim, 2020, Modularly engineered alginate bioconjugate hydrogel as biocompatible injectable scaffold for in situ biomineralization, Carbohydr. Polym., 233, 10.1016/j.carbpol.2020.115832 Valerio, 2004, The effect of ionic products from bioactive glass dissolution on osteoblast proliferation and collagen production, Biomaterials, 25, 2941, 10.1016/j.biomaterials.2003.09.086 Zhao, 2015, Three-dimensional printed strontium-containing mesoporous bioactive glass scaffolds for repairing rat critical-sized calvarial defects, Acta Biomater., 12, 270, 10.1016/j.actbio.2014.10.015