Biphasic monolithic osteochondral scaffolds obtained by diffusion-limited enzymatic mineralization of gellan gum hydrogel
Tài liệu tham khảo
Deng, 2019, Bioactive scaffolds for osteochondral regeneration, J Orthop Transl, 17, 15
Meng, 2020, Animal models of osteochondral defect for testing biomaterials, Biochem Res Int, 2020, 1, 10.1155/2020/9659412
DeFroda, 2021, Trends in the surgical treatment of articular cartilage lesions in the United States from 2007 to 2016, J Knee Surg, 34, 1609, 10.1055/s-0040-1712946
Frassica, 2020, Perspectives on synthetic materials to guide tissue regeneration for osteochondral defect repair, ACS Biomater Sci Eng, 6, 4324, 10.1021/acsbiomaterials.0c00753
Panseri, 2012, Osteochondral tissue engineering approaches for articular cartilage and subchondral bone regeneration, Knee Surg Sports Traumatol Arthrosc, 20, 1182, 10.1007/s00167-011-1655-1
Boffa, 2021, Multi-layer cell-free scaffolds for osteochondral defects of the knee: a systematic review and meta-analysis of clinical evidence, J Exp Orthop, 8, 56, 10.1186/s40634-021-00377-4
Ai, 2021, Osteochondral tissue engineering: perspectives for clinical application and preclinical development, J Orthop Transl, 30, 93
Zhang, 2021, 3D bioprinting of biomimetic bilayered scaffold consisting of decellularized extracellular matrix and silk fibroin for osteochondral repair, Int J Bioprinting, 7, 401, 10.18063/ijb.v7i4.401
Duan, 2019, Restoration of osteochondral defects by implanting bilayered poly(lactide-co-glycolide) porous scaffolds in rabbit joints for 12 and 24 weeks, J Orthop Transl, 19, 68
Yang, 2021, Bilayered scaffold with 3D printed stiff subchondral bony compartment to provide constant mechanical support for long-term cartilage regeneration, J Orthop Transl, 30, 112
Peters, 2018, The effect of ageing and osteoarthritis on the mechanical properties of cartilage and bone in the human knee joint, Sci Rep, 8, 5931, 10.1038/s41598-018-24258-6
Trinity Centre for Bioengineering, Department of Mechanical Engineering, Parsons Building, Trinity College Dublin, Dublin 2, Ireland, Gannon A, Nagel T, Bell A, Avery N, Kelly D. Postnatal changes to the mechanical properties of articular cartilage are driven by the evolution of its collagen network. Eur Cell Mater 2015;29:105–23. https://doi.org/10.22203/eCM.v029a09.
Antons, 2018, Zone-dependent mechanical properties of human articular cartilage obtained by indentation measurements, J Mater Sci Mater Med, 29, 57, 10.1007/s10856-018-6066-0
Nooeaid, 2012, Osteochondral tissue engineering: scaffolds, stem cells and applications, J Cell Mol Med, 16, 2247, 10.1111/j.1582-4934.2012.01571.x
Fu, 2022, Scaffold-Based tissue engineering strategies for osteochondral repair, Front Bioeng Biotechnol, 9, 10.3389/fbioe.2021.812383
Wei, 2021, Articular cartilage and osteochondral tissue engineering techniques: recent advances and challenges, Bioact Mater, 6, 4830, 10.1016/j.bioactmat.2021.05.011
Lin, 2019, Osteochondral tissue regeneration using a tyramine-modified bilayered PLGA scaffold combined with articular chondrocytes in a porcine model, Int J Mol Sci, 20, 326, 10.3390/ijms20020326
Chicatun, 2019, A bilayered dense collagen/chitosan hydrogel to model the osteochondral interface, Emergent Mater, 2, 245, 10.1007/s42247-019-00044-6
Liang, 2018, Bilayered PLGA/PLGA-HAp composite scaffold for osteochondral tissue engineering and tissue regeneration, ACS Biomater Sci Eng, 4, 3506, 10.1021/acsbiomaterials.8b00552
Zhang, 2015, The effect of interface microstructure on interfacial shear strength for osteochondral scaffolds based on biomimetic design and 3D printing, Mater Sci Eng C, 46, 10, 10.1016/j.msec.2014.09.042
Asensio, 2021, Biomimetic gradient scaffolds containing hyaluronic acid and Sr/Zn folates for osteochondral tissue engineering, Polymers, 14, 12, 10.3390/polym14010012
Catoira, 2019, Overview of natural hydrogels for regenerative medicine applications, J Mater Sci Mater Med, 30, 115, 10.1007/s10856-019-6318-7
Ng, 2020, Biomimicry of microbial polysaccharide hydrogels for tissue engineering and regenerative medicine – A review, Carbohydr Polym, 241, 10.1016/j.carbpol.2020.116345
Hoffman, 2012, Hydrogels for biomedical applications, Adv Drug Deliv Rev, 64, 18, 10.1016/j.addr.2012.09.010
Ullah, 2015, Classification, processing and application of hydrogels: a review, Mater Sci Eng C, 57, 414, 10.1016/j.msec.2015.07.053
Chamkouri, 2021, A review of hydrogels, their properties and applications in medicine, Am J Biomed Sci Res, 11, 485, 10.34297/AJBSR.2021.11.001682
Correa, 2021, Translational applications of hydrogels, Chem Rev, 121, 11385, 10.1021/acs.chemrev.0c01177
Wei, 2021, Advanced hydrogels for the repair of cartilage defects and regeneration, Bioact Mater, 6, 998, 10.1016/j.bioactmat.2020.09.030
Lin, 2021, Applications of hydrogel with special physical properties in bone and cartilage regeneration, Materials, 14, 235, 10.3390/ma14010235
Xin, 2022, Recent advances in multifunctional hydrogels for the treatment of osteomyelitis, Front Bioeng Biotechnol, 10, 10.3389/fbioe.2022.865250
Chen, 2021, Heterogenous hydrogel mimicking the osteochondral ECM applied to tissue regeneration, J Mater Chem B, 9, 8646, 10.1039/D1TB00518A
Yang, 2021, 3D-Bioprinted difunctional scaffold for in situ cartilage regeneration based on aptamer-directed cell recruitment and growth factor-enhanced cell chondrogenesis, ACS Appl Mater Interfaces, 13, 23369, 10.1021/acsami.1c01844
Kilian, 2020, 3D Bioprinting of osteochondral tissue substitutes – in vitro-chondrogenesis in multi-layered mineralized constructs, Sci Rep, 10, 8277, 10.1038/s41598-020-65050-9
Xing, 2021, Gellan gum/alginate-based Ca-enriched acellular bilayer hydrogel with robust interface bonding for effective osteochondral repair, Carbohydr Polym, 270, 10.1016/j.carbpol.2021.118382
Huang, 2022, Hydrogel composite scaffolds achieve recruitment and chondrogenesis in cartilage tissue engineering applications, J Nanobiotechnology, 20, 25, 10.1186/s12951-021-01230-7
Chen, 2022, Hybridizing gellan/alginate and thixotropic magnesium phosphate-based hydrogel scaffolds for enhanced osteochondral repair, Mater Today Bio, 14
Lafuente-Merchan, 2022, Progress in 3D bioprinting technology for osteochondral regeneration, Pharmaceutics, 14, 1578, 10.3390/pharmaceutics14081578
Osmałek, 2014, Application of gellan gum in pharmacy and medicine, Int J Pharm, 466, 328, 10.1016/j.ijpharm.2014.03.038
Costa, 2018, Gellan Gum-Based Hydrogels for Osteochondral Repair, vol. 1058, 281
Chen, 2022, Gellan gum modified hyaluronic acid hydrogels as viscosupplements with lubrication maintenance and enzymatic resistance, J Mater Chem B, 10, 4479, 10.1039/D2TB00421F
Leone, 2020, Enriched Gellan Gum hydrogel as visco-supplement, Carbohydr Polym, 227, 10.1016/j.carbpol.2019.115347
Akkineni, 2022, Addition of high acyl gellan gum to low acyl gellan gum enables the blends 3D bioprintable, Gels, 8, 199, 10.3390/gels8040199
Mouser, 2016, Yield stress determines bioprintability of hydrogels based on gelatin-methacryloyl and gellan gum for cartilage bioprinting, Biofabrication, 8, 035003, 10.1088/1758-5090/8/3/035003
Douglas, 2012, Enzymatic mineralization of hydrogels for bone tissue engineering by incorporation of alkaline phosphatase: enzymatic mineralization of hydrogels for bone tissue engineering by incorporation of alkaline phosphatase, Macromol Biosci, 12, 1077, 10.1002/mabi.201100501
Douglas, 2017, Enzymatic, urease-mediated mineralization of gellan gum hydrogel with calcium carbonate, magnesium-enriched calcium carbonate and magnesium carbonate for bone regeneration applications: hydrogels enzymatically mineralized with Ca/Mg-carbonate, J Tissue Eng Regen Med, 11, 3556, 10.1002/term.2273
Zhang, 2022, The osteoinductivity of calcium phosphate-based biomaterials: a tight interaction with bone healing, Front Bioeng Biotechnol, 10
Wang, 2022, Polyphosphate enhanced biomimetic mineralization of 3D printing scaffolds for bone regeneration, Compos Part B Eng, 239, 10.1016/j.compositesb.2022.109989
Lopez-Heredia, 2018, Mineralization of gellan gum hydrogels with calcium and magnesium carbonates by alternate soaking in solutions of calcium/magnesium and carbonate ion solutions, J Tissue Eng Regen Med, 12, 1825, 10.1002/term.2675
Gkioni, 2010, Mineralization of Hydrogels for Bone Regeneration, Tissue Eng Part B Rev, 16, 577, 10.1089/ten.teb.2010.0462
Yao, 2020, Highly mineralized biomimetic polysaccharide nanofiber materials using enzymatic mineralization, Biomacromolecules, 21, 2176, 10.1021/acs.biomac.0c00160
Douglas, 2014, Enzymatic mineralization of gellan gum hydrogel for bone tissue-engineering applications and its enhancement by polydopamine: enzymatic mineralization of gellan gum enhanced by polydopamine functionalization, J Tissue Eng Regen Med, 8, 906, 10.1002/term.1616
Guo, 2021, Effects of biophysical cues of 3D hydrogels on mesenchymal stem cells differentiation, J Cell Physiol, 236, 2268, 10.1002/jcp.30042
Qiu, 2020, Mesoporous hydroxyapatite nanoparticles mediate the release and bioactivity of BMP-2 for enhanced bone regeneration, ACS Biomater Sci Eng, 6, 2323, 10.1021/acsbiomaterials.9b01954
Wei, 2015, Effect of surface roughness on osteogenesis in vitro and osseointegration in vivo of carbon fiber-reinforced polyetheretherketone–nanohydroxyapatite composite, Int J Nanomedicine, 1425, 10.2147/IJN.S75557
Douglas, 2012, Enzymatically induced mineralization of platelet-rich fibrin, J Biomed Mater Res A, 100A, 1335, 10.1002/jbm.a.34073
Douglas, 2016, Generation of composites for bone tissue-engineering applications consisting of gellan gum hydrogels mineralized with calcium and magnesium phosphate phases by enzymatic means: Gellan gum and calcium and magnesium phosphate composites, J Tissue Eng Regen Med, 10, 938, 10.1002/term.1875
Flores-Merino, 2010, Nanoscopic mechanical anisotropy in hydrogel surfaces, Soft Matter, 6, 4466, 10.1039/c0sm00339e
Silva-Correia, 2011, Gellan gum-based hydrogels for intervertebral disc tissue-engineering applications, J Tissue Eng Regen Med, 5, e97, 10.1002/term.363
Milovanovic, 2021, Enzyme-induced mineralization of hydrogels with amorphous calcium carbonate for fast synthesis of ultrastiff, strong and tough organic–inorganic double networks, J Mater Sci, 56, 15299, 10.1007/s10853-021-06204-6
Nonoyama, 2020, Robust hydrogel–bioceramics composite and its osteoconductive properties, Polym J, 52, 709, 10.1038/s41428-020-0332-y
Axpe, 2019, A multiscale model for solute diffusion in hydrogels, Macromolecules, 52, 6889, 10.1021/acs.macromol.9b00753
Wu, 2016, Is there a relationship between solubility and resorbability of different calcium phosphate phases in vitro?, Biochim Biophys Acta BBA - Gen Subj, 1860, 2157, 10.1016/j.bbagen.2016.05.022
Pietryga, 2014, Promotion of bone cel growth on gellan gum hydrogels by enzymatic mineralization, Eng Biomat, 125, 6
Douglas, 2016, Enrichment of enzymatically mineralized gellan gum hydrogels with phlorotannin-rich Ecklonia cava extract Seanol ® to endow antibacterial properties and promote mineralization, Biomed Mater, 11, 10.1088/1748-6041/11/4/045015
Morris, 2012, Gelation of gellan – A review, Food Hydrocoll, 28, 373, 10.1016/j.foodhyd.2012.01.004
Sun, 2018, Effects of matrix stiffness on the morphology, adhesion, proliferation and osteogenic differentiation of mesenchymal stem cells, Int J Med Sci, 15, 257, 10.7150/ijms.21620
Zhou, 2022, The effect of matrix stiffness on the chondrogenic differentiation of mesenchymal stem cells, J Mol Histol, 53, 805, 10.1007/s10735-022-10094-6
Karim, 2018, The clustering and morphology of chondrocytes in normal and mildly degenerate human femoral head cartilage studied by confocal laser scanning microscopy, J Anat, 232, 686, 10.1111/joa.12768
Campbell, 2012, Nanomechanical mapping of the osteochondral interface with contact resonance force microscopy and nanoindentation, Acta Biomater, 8, 4389, 10.1016/j.actbio.2012.07.042
Di Luca, 2015, The osteochondral interface as a gradient tissue: from development to the fabrication of gradient scaffolds for regenerative medicine: the Osteochondral Interface as a Gradient Tissue, Birth Defects Res Part C Embryo Today Rev, 105, 34, 10.1002/bdrc.21092
Samal, 2014, Enzymatic mineralization of silk scaffolds: enzymatic mineralization of silk scaffolds, Macromol Biosci, 14, 991, 10.1002/mabi.201300513
Norris, 2020, Marine-Inspired enzymatic mineralization of dairy-derived Whey Protein Isolate (WPI) hydrogels for bone tissue regeneration, Mar Drugs, 18, 294, 10.3390/md18060294
Drobnič, 2021, Complex osteochondral lesions of the talus treated with a novel Bi-Phasic aragonite-based implant, J Foot Ankle Surg, 60, 391, 10.1053/j.jfas.2020.06.028
Goldring, 2016, Changes in the osteochondral unit during osteoarthritis: structure, function and cartilage–bone crosstalk, Nat Rev Rheumatol, 12, 632, 10.1038/nrrheum.2016.148
Banh, 2022, Advances in organ-on-a-chip systems for modelling joint tissue and osteoarthritic diseases, Osteoarthritis Cartilage, 30, 1050, 10.1016/j.joca.2022.03.012