Hyperbranched polymers tune the physicochemical, mechanical, and biomedical properties of alginate hydrogels
Tài liệu tham khảo
Massana Roquero, 2021, Protein release from interpenetrating polymer network hydrogels triggered by endogenous biomarkers, Mater. Today Chem., 21, 100514, 10.1016/j.mtchem.2021.100514
Mahinroosta, 2018, Hydrogels as intelligent materials: a brief review of synthesis, properties and applications, Mater. Today Chem., 8, 42, 10.1016/j.mtchem.2018.02.004
Jeon, 2019, Cryopreserved cell-laden alginate microgel bioink for 3D bioprinting of living tissues, Mater. Today Chem., 12, 61, 10.1016/j.mtchem.2018.11.009
Liakos, 2017, Towards ultra-responsive biodegradable polysaccharide humidity sensors, Mater. Today Chem., 6, 1, 10.1016/j.mtchem.2017.08.001
Lakkakula, 2021, A comprehensive review on alginate-based delivery systems for the delivery of chemotherapeutic agent: Doxorubicin, Carbohydr. Polym., 259, 117696, 10.1016/j.carbpol.2021.117696
Jacob, 2018, Biopolymer based nanomaterials in drug delivery systems: a review, Mater. Today Chem., 9, 43, 10.1016/j.mtchem.2018.05.002
Zeng, 2015, Injectable microcryogels reinforced alginate encapsulation of mesenchymal stromal cells for leak-proof delivery and alleviation of canine disc degeneration, Biomaterials, 59, 53, 10.1016/j.biomaterials.2015.04.029
Kim, 2021, Engineering of diseased human skin equivalent using 3D cell printing for representing pathophysiological hallmarks of type 2 diabetes in vitro, Biomaterials, 272, 120776, 10.1016/j.biomaterials.2021.120776
Xie, 2021, Three-dimensional bio-printing of primary human hepatocellular carcinoma for personalized medicine, Biomaterials, 265, 120416, 10.1016/j.biomaterials.2020.120416
Lee, 2020, Bone-derived dECM/alginate bioink for fabricating a 3D cell-laden mesh structure for bone tissue engineering, Carbohydr. Polym., 250, 116914, 10.1016/j.carbpol.2020.116914
Jeon, 2012, The effect of oxidation on the degradation of photocrosslinkable alginate hydrogels, Biomaterials, 33, 3503, 10.1016/j.biomaterials.2012.01.041
Wang, 2020, Silk fibroin/sodium alginate composite porous materials with controllable degradation, Int. J. Biol. Macromol., 150, 1314, 10.1016/j.ijbiomac.2019.10.141
Rong, 2018, Biomedical applications of functional peptides in nano-systems, Mater. Today Chem., 9, 91, 10.1016/j.mtchem.2018.06.001
Anju, 2020, Complicity of degradable polymers in health-care applications, Mater. Today Chem., 16, 100236, 10.1016/j.mtchem.2019.100236
Boontheekul, 2005, Controlling alginate gel degradation utilizing partial oxidation and bimodal molecular weight distribution, Biomaterials, 26, 2455, 10.1016/j.biomaterials.2004.06.044
Alsberg, 2003, Regulating bone formation via controlled scaffold degradation, J. Dent. Res., 82, 903, 10.1177/154405910308201111
Vining, 2019, Sequential modes of crosslinking tune viscoelasticity of cell-instructive hydrogels, Biomaterials, 188, 187, 10.1016/j.biomaterials.2018.10.013
Kuo, 2001, Ionically crosslinked alginate hydrogels as scaffolds for tissue engineering: Part 1. Structure, gelation rate and mechanical properties, Biomaterials, 22, 511, 10.1016/S0142-9612(00)00201-5
Pawar, 2012, Alginate derivatization: a review of chemistry, properties and applications, Biomaterials, 33, 3279, 10.1016/j.biomaterials.2012.01.007
Dalheim, 2017, Degradation kinetics of peptide-coupled alginates prepared via the periodate oxidation reductive amination route, Carbohydr. Polym., 157, 1844, 10.1016/j.carbpol.2016.11.068
Emami, 2018, Controlling alginate oxidation conditions for making alginate-gelatin hydrogels, Carbohydr. Polym., 198, 509, 10.1016/j.carbpol.2018.06.080
Gomez, 2007, Oxidation of sodium alginate and characterization of the oxidized derivatives, Carbohydr. Polym., 67, 296, 10.1016/j.carbpol.2006.05.025
Bouhadir, 2001, Degradation of partially oxidized alginate and its potential application for tissue engineering, Biotechnol. Prog., 17, 945, 10.1021/bp010070p
Dehbari, 2017, In situ polymerized hyperbranched polymer reinforced poly (acrylic acid) hydrogels, Mater. Chem. Frontiers, 1, 1995, 10.1039/C7QM00028F
Tavakoli, 2020, A hyper-branched polymer tunes the size and enhances the fluorescent properties of aggregation-induced emission nanoparticles, Nanoscale Advances, 2, 633, 10.1039/D0NA00044B
Yan, 2020, A multi-functional reversible hydrogel adhesive, Colloid. Surface. Physicochem. Eng. Aspect., 593, 124622, 10.1016/j.colsurfa.2020.124622
Choudhary, 2012, Rheology and nanostructure of hydrophobically modified alginate (HMA) gels and solutions, Carbohydr. Polym., 87, 524, 10.1016/j.carbpol.2011.08.025
Gattás-Asfura, 2014, Covalent layer-by-layer assembly of hyperbranched polymers on alginate microcapsules to impart stability and permselectivity, J. Mater. Chem. B, 2, 8208, 10.1039/C4TB01241K
Liang, 2017, Buildup of hyperbranched polymer/alginate multilayers and their influence on protein adsorption and platelet adhesion, J. Appl. Polym. Sci., 134, 10.1002/app.44769
Gattás-Asfura, 2013, Bioorthogonal layer-by-layer encapsulation of pancreatic islets via hyperbranched polymers, ACS Appl. Mater. Interfaces, 5, 9964, 10.1021/am401981g
Hu, 2021, Toll-like receptor 2-modulating pectin-polymers in alginate-based microcapsules attenuate immune responses and support islet-xenograft survival, Biomaterials, 266, 120460, 10.1016/j.biomaterials.2020.120460
Wang, 2021, Aggregation-induced emission-active antibacterial hydrogel with self-indicating ability for real-time monitoring of drug release process, Mater. Today Chem., 21, 100537, 10.1016/j.mtchem.2021.100537
Alharbi, 2021, Sub-micron moulding topological mass transport regimes in angled vortex fluidic flow, Nanoscale Adv., 3, 3064, 10.1039/D1NA00195G
Solheim, 2019, Neutron imaging and modelling inclined vortex driven thin films, Sci. Rep., 9, 1, 10.1038/s41598-019-39307-x
Britton, 2017, Multi-step continuous-flow synthesis, Chem. Soc. Rev., 46, 1250, 10.1039/C6CS00830E
Tavakoli, 2020, Vortex fluidic enabling and significantly boosting light intensity of graphene oxide with aggregation induced emission luminogen, Materials Chemistry Frontiers, 4, 2126, 10.1039/D0QM00270D
Luo, 2018, Vortex fluidic mediated synthesis of macroporous bovine serum albumin-based microspheres, ACS Appl. Mater. Interfaces, 10, 27224, 10.1021/acsami.8b09316
Tavakoli, 2020, Tuning aggregation-induced emission nanoparticle properties under thin film formation, Mater. Chem. Frontiers, 4, 537, 10.1039/C9QM00585D
Vimalanathan, 2019, Vortex fluidic mediated transformation of graphite into highly conducting graphene scrolls, Nanoscale Advances, 1, 2495, 10.1039/C9NA00184K
Luo, 2020, Vortex fluidic-mediated fabrication of fast gelated silica hydrogels with embedded laccase nanoflowers for real-time biosensing under flow, ACS Appl. Mater. Interfaces, 12, 51999, 10.1021/acsami.0c15669
He, 2020, Vortex fluidic mediated encapsulation of functional fish oil featuring in situ probed small angle neutron scattering, NPJ Sci. Food, 4, 12, 10.1038/s41538-020-00072-1
Maki, 2011, Anisotropic structure of calcium-induced alginate gels by optical and small-angle X-ray scattering measurements, Biomacromolecules, 12, 2145, 10.1021/bm200223p
Stokke, 2000, Small-angle X-ray scattering and rheological characterization of alginate gels. 1. Ca−Alginate gels, Macromolecules, 33, 1853, 10.1021/ma991559q
Yuguchi, 2016, Local structure of Ca2+ induced hydrogels of alginate–oligoguluronate blends determined by small-angle-X-ray scattering, Carbohydr. Polym., 152, 532, 10.1016/j.carbpol.2016.07.020
Ochbaum, 2018, Tuning the mechanical properties of alginate–peptide hydrogels, Soft Matter, 14, 4364, 10.1039/C8SM00059J
Forgács, 2021, Mechanism of hydration and hydration induced structural changes of calcium alginate aerogel, ACS Appl. Mater. Interfaces, 13, 2997, 10.1021/acsami.0c17012
Tavakoli, 2017, Honey/PVA hybrid wound dressings with controlled release of antibiotics: structural, physico-mechanical and in-vitro biomedical studies, Mater Sci Eng C Mater Biol Appl, 77, 318, 10.1016/j.msec.2017.03.272
Ganji, 2010
Rehm, 2018, Design and performance of the variable-wavelength Bonse–Hart ultra-small-angle neutron scattering diffractometer KOOKABURRA at ANSTO, J. Appl. Crystallogr., 51, 1, 10.1107/S1600576717016879
Brillouin, 1922, Diffusion de la lumière et des rayons X par un corps transparent homogène, Annales de Physique, 88, 10.1051/anphys/192209170088
Wu, 2018, Water content, not stiffness, dominates Brillouin spectroscopy measurements in hydrated materials, Nat. Methods, 15, 561, 10.1038/s41592-018-0076-1
Poon, 2020, Brillouin imaging for studies of micromechanics in biology and biomedicine: from current state-of-the-art to future clinical translation, J. Phys.: Photonics, 3, 12002
Mahmodi, 2021, Mechanical mapping of bioprinted hydrogel models by brillouin microscopy, Bioprinting, 23, 10.1016/j.bprint.2021.e00151
Favre, 2001, Diffusion of polyethyleneglycols in calcium alginate hydrogels, Colloid. Surface. Physicochem. Eng. Aspect., 194, 197, 10.1016/S0927-7757(01)00789-0
Varaprasad, 2020, Development of high alginate comprised hydrogels for removal of Pb(II) ions, J. Mol. Liq., 298, 112087, 10.1016/j.molliq.2019.112087
Serrano-Aroca, 2017, Enhancement of water diffusion and compression performance of crosslinked alginate films with a minuscule amount of graphene oxide, Sci. Rep., 7, 11684, 10.1038/s41598-017-10260-x
Meo, 2021, Anomalous enhanced water diffusion in polysaccharide interpenetrating hydrogels, Colloid. Surface. Physicochem. Eng. Aspect., 613, 125892, 10.1016/j.colsurfa.2020.125892
Liu, 2021, Crucial roles of graphene oxide in preparing alginate/nanofibrillated cellulose double network composites hydrogels, Chemosphere, 263, 128240, 10.1016/j.chemosphere.2020.128240
He, 2021, Shape memory composite hydrogel based on sodium alginate dual crosslinked network with carboxymethyl cellulose, Eur. Polym. J., 156, 110592, 10.1016/j.eurpolymj.2021.110592
Zhao, 2021, A multifunctional, self-healing, self-adhesive, and conductive sodium alginate/poly(vinyl alcohol) composite hydrogel as a flexible strain sensor, ACS Appl. Mater. Interfaces, 13, 11344, 10.1021/acsami.1c01343
Thomas, 2021, Starch modified alginate nanoparticles for drug delivery application, Int. J. Biol. Macromol., 173, 277, 10.1016/j.ijbiomac.2020.12.227
Liu, 1999, Alginate-Pectin-Poly-L-lysine particulate as a potential controlled release formulation, J. Pharm. Pharmacol., 51, 141, 10.1211/0022357991772259
Rashtchian, 2020, Fabricating alginate/poly(caprolactone) nanofibers with enhanced bio-mechanical properties via cellulose nanocrystal incorporation, Carbohydr. Polym., 233, 115873, 10.1016/j.carbpol.2020.115873
Islam, 2010, Fabrication and characterization of poly(vinyl alcohol)/alginate blend nanofibers by electrospinning method, Colloid. Surface. Physicochem. Eng. Aspect., 366, 135, 10.1016/j.colsurfa.2010.05.038
Eivazzadeh-Keihan, 2020, Graphene oxide/alginate/silk fibroin composite as a novel bionanostructure with improved blood compatibility, less toxicity and enhanced mechanical properties, Carbohydr. Polym., 248, 116802, 10.1016/j.carbpol.2020.116802
Tavakoli, 2020, Vortex fluidic mediated one-step fabrication of polyvinyl alcohol hydrogel films with tunable surface morphologies and enhanced self-healing properties, Science China Materials, 63, 1310, 10.1007/s40843-020-1301-y
Prevedel, 2019, Brillouin microscopy: an emerging tool for mechanobiology, Nat. Methods, 16, 969, 10.1038/s41592-019-0543-3
Whittaker, 2018, Structural evolution of photocrosslinked silk fibroin and silk fibroin-based hybrid hydrogels: a small angle and ultra-small angle scattering investigation, Int. J. Biol. Macromol., 114, 998, 10.1016/j.ijbiomac.2018.03.044
Ochbaum, 2017, Effect of peptide self-assembly on the rheological properties of alginate-peptide conjugates solutions, Polymer, 108, 87, 10.1016/j.polymer.2016.11.048
Bailey, 2020, Viscoelastic properties of biopolymer hydrogels determined by Brillouin spectroscopy: a probe of tissue micromechanics, Science Adv., 6, 10.1126/sciadv.abc1937
