4,253
Views
33
CrossRef citations to date
0
Altmetric
Research Article

Structural and biological investigation of chitosan/hyaluronic acid with silanized-hydroxypropyl methylcellulose as an injectable reinforced interpenetrating network hydrogel for cartilage tissue engineering

, &
Pages 607-619 | Received 21 Dec 2020, Accepted 23 Feb 2021, Published online: 19 Mar 2021

References

  • Ahsan SM, Thomas M, Reddy KK, et al. (2018). Chitosan as biomaterial in drug delivery and tissue engineering. Int J Biol Macromol 110:97–109.
  • Asadi N, Alizadeh E, Bakhshayesh ARD, et al. (2019). Fabrication and in vitro evaluation of nanocomposite hydrogel scaffolds based on gelatin/PCL − PEG − PCL for cartilage tissue engineering. ACS Omega 4:449–57.
  • Aswathy SH, Narendrakumar U, Manjubala I. (2020). Commercial hydrogels for biomedical applications. Heliyon 6:e03719.
  • Bazmandeh AZ, Mirzaei E, Ghasemi Y, Kouhbanani MAJ. (2019). Hyaluronic acid coated electrospun chitosan-based nanofibers prepared by simultaneous stabilizing and coating. Int J Biol Macromol 138:403–11.
  • Boyer C, Figueiredo L, Pace R, et al. (2018). Laponite nanoparticle-associated silated hydroxypropylmethyl cellulose as an injectable reinforced interpenetrating network hydrogel for cartilage tissue engineering. Acta Biomater 65:112–22.
  • Bružauskaitė I, Bironaitė D, Bagdonas E, Bernotienė E. (2016). Scaffolds and cells for tissue regeneration: different scaffold pore sizes-different cell effects. Cytotechnology 68:355–69.
  • Buchtová N, D’Orlando A, Judeinstein P, et al. (2018). Water dynamics in silanized hydroxypropyl methylcellulose based hydrogels designed for tissue engineering. Carbohydr Polym 202:404–8.
  • Burdick JA, Prestwich GD. (2011). Hyaluronic acid hydrogels for biomedical applications. Adv Mater 23:H41–56.
  • Chen W, Xu Y, Li H, et al. (2020). Tanshinone IIA delivery silk fibroin scaffolds significantly enhance articular cartilage defect repairing via promoting cartilage regeneration. ACS Appl Mater Interfaces 12:21470–80.
  • Chuah YJ, Peck Y, Lau JEJ, et al. (2017). Hydrogel based cartilaginous tissue regeneration: recent insights and technologies. Biomater Sci 5:613–31.
  • Chuysinuan P, Thanyacharoen T, Thongchai K, et al. (2020). Preparation of chitosan/hydrolyzed collagen/hyaluronic acid based hydrogel composite with caffeic acid addition. Int J Biol Macromol 162:1937–43.
  • Deng Y, Ren J, Chen G, et al. (2017). Injectable in situ cross-linking chitosan-hyaluronic acid based hydrogels for abdominal tissue regeneration. Sci Rep 7:1.
  • Engkagul V, Sereemaspun A, Chirachanchai S. (2018). One pot preparation of chitosan/hyaluronic acid-based triple network hydrogel via in situ click reaction, metal coordination and polyion complexation in water. Carbohydr Polym 200:616–23.
  • Ghorbani M, Roshangar L, Soleimani Rad J. (2020). Development of reinforced chitosan/pectin scaffold by using the cellulose nanocrystals as nanofillers: an injectable hydrogel for tissue engineering. Eur Polym J 130:109697.
  • Ghosal K, Chakrabarty S, Nanda A. (2011). Hydroxypropyl methylcellulose in drug delivery. Der Pharmacia Sinica 2:152.
  • Gilarska A, Lewandowska-Łańcucka J, Horak W, Nowakowska M. (2018). Collagen/chitosan/hyaluronic acid - based injectable hydrogels for tissue engineering applications - design, physicochemical and biological characterization. Colloids Surf B Biointerfaces 170:152–62.
  • Hunt JA, Chen R, Van Veen T, Bryan N. (2014). Hydrogels for tissue engineering and regenerative medicine. J Mater Chem B 2:5319–38.
  • Iqbal H, Ali M, Zeeshan R, et al. (2017). Chitosan/hydroxyapatite (HA)/hydroxypropylmethyl cellulose (HPMC) spongy scaffolds-synthesis and evaluation as potential alveolar bone substitutes. Colloids Surf B Biointerfaces 160:553–63.
  • Jeong N, Park J, Yoo K, et al. (2016). Preparation, characterization, and in-vitro performance of novel injectable silanized-hydroxypropyl methylcellulose/phase-transformed calcium phosphate composite bone cements. Curr Appl Phys 16:1523–32.
  • Joshi SC. (2011). Sol-gel behavior of hydroxypropyl methylcellulose (HPMC) in ionic media including drug release. Materials 4:1861–905.
  • Khunmanee S, Jeong Y, Park H. (2017). Crosslinking method of hyaluronic-based hydrogel for biomedical applications. J Tissue Eng 8:2041731417726464.
  • Kim IL, Mauck RL, Burdick JA. (2011). Hydrogel design for cartilage tissue engineering: a case study with hyaluronic acid. Biomaterials 32:8771–82.
  • Kim WK, Choi JH, Shin ME, et al. (2019). Evaluation of cartilage regeneration of chondrocyte encapsulated gellan gum-based hyaluronic acid blended hydrogel. Int J Biol Macromol 141:51–9.
  • Kumar S, Koh J. (2012). Physiochemical, optical and biological activity of chitosan-chromone derivative for biomedical applications. Int J Mol Sci 13:6103.
  • Li L, Yu F, Zheng L, et al. (2019). Natural hydrogels for cartilage regeneration: modification, preparation and application. J Orthop Translat 17:26–41.
  • Li M, Mondrinos MJ, Chen X, et al. (2006). Co-electrospun poly(lactide-co-glycolide), gelatin, and elastin blends for tissue engineering scaffolds. J Biomed Mater Res A 79:963–73.
  • Liu M, Zeng X, Ma C, et al. (2017). Injectable hydrogels for cartilage and bone tissue engineering. Bone Res 5:17014.
  • Liu Q, Ji N, Xiong L, Sun Q. (2020). Rapid gelling, self-healing, and fluorescence-responsive chitosan hydrogels formed by dynamic covalent crosslinking. Carbohydr Polym 246:116586.
  • Liu W, Zhang J, Rethore G, et al. (2014). A novel injectable, cohesive and toughened Si-HPMC (silanized-hydroxypropyl methylcellulose) composite calcium phosphate cement for bone substitution. Acta Biomater 10:3335–45.
  • Liuyun J, Yubao L, Chengdong X. (2009). Preparation and biological properties of a novel composite scaffold of nano-hydroxyapatite/chitosan/carboxymethyl cellulose for bone tissue engineering. J Biomed Sci 16:1.
  • Lopez KM, Ravula S, Pérez RL, et al. (2020). Hyaluronic acid-cellulose composites as patches for minimizing bacterial infections. ACS Omega 5:4125–32.
  • Mahapatra C, Jin GZ, Kim HW. (2016). Alginate-hyaluronic acid-collagen composite hydrogel favorable for the culture of chondrocytes and their phenotype maintenance. Tissue Eng Regen Med 13:538–46.
  • Mantha S, Pillai S, Khayambashi P, et al. (2019). Smart hydrogels in tissue engineering and regenerative medicine. Materials 12:3323.
  • Martin BC, Minner EJ, Wiseman SL, et al. (2008). Agarose and methylcellulose hydrogel blends for nerve regeneration applications. J Neural Eng 5:221–31.
  • Nguyen NTP, Nguyen LVH, Tran NMP, et al. (2019). The effect of oxidation degree and volume ratio of components on properties and applications of in situ cross-linking hydrogels based on chitosan and hyaluronic acid. Mater Sci Eng C Mater Biol Appl 103:109670.
  • Park H, Choi B, Hu J, Lee M. (2013). Injectable chitosan hyaluronic acid hydrogels for cartilage tissue engineering. Acta Biomater 9:4779–86.
  • Rotta J, Minatti E, Barreto PLM. (2011). Determination of structural and mechanical properties, diffractometry, and thermal analysis of chitosan and hydroxypropylmethylcellulose (HPMC) films plasticized with sorbitol. Ciênc Tecnol Aliment 31:450–5.
  • Rusu D, Ciolacu D, Simionescu BC. (2019). Cellulose-based hydrogels in tissue engineering applications. Cellulose Chem Technol 53:907–23.
  • Sahoo CK, Rao SRM, Sudhakar M. (2015). HPMC a biomedical polymer in pharmaceutical dosage forms. J Chem Pharm Sci 8:875.
  • Sannino A, Demitri C, Madaghiele M. (2009). Biodegradable cellulose-based hydrogels: design and applications. Materials 2:353–73.
  • Tan H, Chu CR, Payne KA, Marra KG. (2009). Injectable in situ forming biodegradable chitosan-hyaluronic acid based hydrogels for cartilage tissue engineering. Biomaterials 30:2499–506.
  • Tan H, Marra KG. (2010). Injectable, biodegradable hydrogels for tissue engineering applications. Materials 3:1746–67.
  • Thomas LV, VG R, Nair PD. (2017). Effect of stiffness of chitosan-hyaluronic acid dialdehyde hydrogels on the viability and growth of encapsulated chondrocytes. Int J Biol Macromol 104:1925–35.
  • Vignesh S, Sivashanmugam A, Annapoorna M, et al. (2018). Injectable deferoxamine nanoparticles loaded chitosan-hyaluronic acid coacervate hydrogel for therapeutic angiogenesis. Colloids Surf B Biointerfaces 161:129–38.
  • Viguier A, Boyer C, Chassenieux C, et al. (2016). Interpenetrated Si-HPMC/alginate hydrogels as a potential scaffold for human tissue regeneration. J Mater Sci Mater Med 27:99.
  • Vinatier C, Magne D, Weiss P, et al. (2005). A silanized hydroxypropyl methylcellulose hydrogel for the three-dimensional culture of chondrocytes. Biomaterials 26:6643–51.
  • Wang L, Xu B, Nong Y, et al. (2020). Laccase-mediated construction of flexible double-network hydrogels based on silk fibroin and tyramine-modified hyaluronic acid. Int J Biol Macromol 160:795–805.
  • Wu J, Chen Q, Deng C, et al. (2020). Exquisite design of injectable hydrogels in cartilage repair. Theranostics 10:9843–64.
  • Yan J, Miao Y, Tan H, et al. (2016). Injectable alginate/hydroxyapatite gel scaffold combined with gelatin microspheres for drug delivery and bone tissue engineering. Mater Sci Eng C Mater Biol Appl 63:274–84.
  • Yu W, Zhu Y, Li H, He Y. (2020). Injectable quercetin-loaded hydrogel with cartilage-protection and immunomodulatory properties for articular cartilage repair. ACS Appl Bio Mater 3:761–71.
  • Zhang J, Ma X, Fan D, et al. (2014). Synthesis and characterization of hyaluronic acid/human-like collagen hydrogels. Mater Sci Eng C Mater Biol Appl 43:547–54.
  • Zhang L, Chen Y, Xu H, et al. (2016). Preparation and evaluation of an injectable chitosan-hyaluronic acid hydrogel for peripheral nerve regeneration. J Wuhan Univ Technol-Mat Sci Edit 31:1401–7.
  • Zhang L, Hu J, Athanasiou KA. (2009). The role of tissue engineering in articular cartilage repair and regeneration. Crit Rev Biomed Eng 37:1–57.
  • Zhang Y, Zhang Y, Wang Q, Fan X. (2017). Preparation and properties of a chitosan–hyaluronic acid-polypyrrole conductive hydrogel catalyzed by laccase. J Polym Environ 25:526–32.
  • Zhu D, Wang H, Trinh P, et al. (2017). Elastin-like protein-hyaluronic acid (ELP-HA) hydrogels with decoupled mechanical and biochemical cues for cartilage regeneration. Biomaterials 127:132–40.
  • Zhu Y, Tan J, Zhu H, et al. (2017). Development of kartogenin-conjugated chitosan-hyaluronic acid hydrogel for nucleus pulposus regeneration. Biomater Sci 5:784–91.