231
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Fluidic embedding of additional macroporosity in alginate-gelatin composite structure for biomimetic application

, , &
Pages 2396-2417 | Received 09 Jul 2020, Accepted 23 Aug 2020, Published online: 08 Sep 2020

References

  • Park SB, Lih E, Park KS, et al. Biopolymer-based functional composites for medical applications. Prog Polym Sci. 2017; 68:77–105.
  • Dhandayuthapani B, Yoshida Y, Maekawa T, et al. Polymeric scaffolds in tissue engineering application: a review. Int J Polym Sci. 2011;2011:1–19.
  • Chanes-Cuevas OA, Perez-Soria A, Cruz-Maya I, et al. Macro-, micro- and mesoporous materials for tissue engineering applications. AIMS Mater Sci. 2018;5(6):1124–1140.
  • Gunathilake TMSU, Ching YC, Ching KY, et al. Biomedical and microbiological applications of bio-based porous materials: a review. Polymers. 2017;9(12):160.
  • Kang Y, Chang J. Channels in a porous scaffold: a new player for vascularization. Regen Med. 2018;13(6):705–715.
  • Vedadghavami A, Minooei F, Mohammadi MH, et al. Manufacturing of hydrogel biomaterials with controlled mechanical properties for tissue engineering applications. Acta Biomater. 2017;62:42–63.
  • Bružauskaitė I, Bironaitė D, Bagdonas E, et al. Scaffolds and cells for tissue regeneration: different scaffold pore sizes-different cell effects. Cytotechnology. 2016;68(3):355–369.
  • Chung HJ, Park TG. Surface engineered and drug releasing pre-fabricated scaffolds for tissue engineering. Adv Drug Deliv Rev. 2007;59(4–5):249–262.
  • Hassan M, Dave K, Chandrawati R, et al. 3D printing of biopolymer nanocomposites for tissue engineering: nanomaterials, processing and structure-function relation. Eur Polym J. 2019;121:109340.
  • Wubneh A, Tsekoura EK, Ayranci C, et al. Current state of fabrication technologies and materials for bone tissue engineering. Acta Biomater. 2018;80:1–30.
  • Fantino E, Roppolo I, Zhang DX, et al. 3D printing/interfacial polymerization coupling for the fabrication of conductive hydrogel. Macromol Mater Eng. 2018;303(4):1700356.
  • Ravi P, Shiakolas PS, Welch TR. Poly-l-lactic acid: pellets to fiber to fused filament fabricated scaffolds, and scaffold weight loss study. Addit Manuf. 2017;16:167–176.
  • Chung K, Mishra NC, Wang C, et al. Fabricating scaffolds by microfluidics. BioMicrofluidics. 2009;3(2):22403.
  • Martynov S, Xialiang W, Stride EP, et al. Preparation of a microporous alginate gel using a microfluidic bubbling device. Int J Food Eng. 2010;6(3):1–12.
  • Mitropoulos AN, Perotto G, Kim S, et al. Synthesis of silk fibroin micro‐ and submicron spheres using a co‐flow capillary device. Adv Mater Weinheim. 2014;26(7):1105–1110.
  • Kim YJ, Matsunaga YT. Thermo-responsive polymers and their application as smart biomaterials. J Mater Chem B. 2017;5(23):4307–4321.
  • Bayram C, Jiang X, Gultekinoglu M, et al. Biofabrication of gelatin tissue scaffolds with uniform pore size via microbubble assembly. Macromol Mater Eng. 2019;304(11):1900394.
  • Christopher GF, Anna SL. Microfluidic methods for generating continuous droplet streams. J Phys D Appl Phys. 2007;40:319–336.
  • Patra S, Ganguly S. Bubble pinch-off in a cross-flowing biopolymer stream. Microfluid Nanofluid. 2015;19(4):767–776.
  • Patra S, Bal DK, Ganguly S. Diffusion in and around alginate and chitosan films with embedded sub-millimeter voids. Mater Sci Eng C Mater Biol Appl. 2016;59:61–69.
  • Banerjee A, Ganguly S. Mechanical behaviour of alginate film with embedded voids under compression-decompression cycles. Sci Rep. 2019;9(1):13193.
  • Newsom JP, Payne KA, Krebs MD. Microgels: modular, tunable constructs for tissue regeneration. Acta Biomater. 2019;88:32–41.
  • Van Vlierberghe S, Dubruel P, Schacht E. Biopolymer-based hydrogels as scaffolds for tissue engineering applications: a review. Biomacromolecules. 2011;12(5):1387–1408.
  • Bahcecioglu G, Basara G, Ellis BW, et al. Breast cancer models: engineering the tumor microenvironment. Acta Biomater. 2020; 106:1–21.
  • Ayob AZ, Ramasamy TS. Cancer stem cells as key drivers of tumour progression. J Biomed Sci. 2018;25(1):20.
  • Hu WW, Lin CH, Hong ZJ. The enrichment of cancer stem cells using composite alginate/polycaprolactone nanofibers. Carbohydr Polym. 2019;206:70–79.
  • Patra S, Bal DK, Ganguly S. Bubble formation in complex fluids using an orifice in throat arrangement. Exp Therm Fluid Sci. 2015; 64:62–69.
  • Sapru S, Das S, Mandal M, et al. Prospects of nonmulberry silk protein sericin-based nanofibrous matrices for wound healing - in vitro and in vivo investigations. Acta Biomater. 2018;78:137–150.
  • Dong ZF, Wang Q, Du YM. Alginate/gelatin blend films and their properties for drug controlled release. J Membrane Sci. 2006;280(1–2):37–44.
  • Yao R, Zhang R, Luan J, et al. Alginate and alginate/gelatin microspheres for human adipose-derived stem cell encapsulation and differentiation. Biofabrication. 2012;4(2):025007.
  • Banerjee A, Patra S, Ganguly S. Mechanical behaviour of a hydrogel film with embedded voids under the tensile load. J Sol-Gel Sci Technol. 2018;87(3):665–675.
  • Caliari SR, Ramirez MA, Harley BAC. The development of collagen-GAG scaffold-membrane composites for tendon tissue engineering. Biomaterials. 2011;32(34):8990–8998.
  • Kaklamani G, Cheneler D, Grover LM, et al. Mechanical properties of alginate hydrogels manufactured using external gelation. J Mech Behav Biomed Mater. 2014;36:135–142.
  • Novitskaya E, Lee S, Lubarda VA, et al. Initial anisotropy in demineralised bovine cortical bone in compressive cyclic loading unloading. Mater Sci Eng C Mater Biol Appl. 2013;33(2):817–823.
  • Wong M, Siegrist M, Cao X. Cyclic compression of articular cartilage explants is associated with progressive consolidation and altered expression pattern of extracellular matrix proteins. Matrix Biol. 1999;18(4):391–399.
  • Taraszka KS, Chen E, Metzger T, et al. Identification of structural markers for vitamin B12 and other corrinoid derivatives in solution using FTIR spectroscopy. Biochemistry. 1991;30(5):1222–1227.
  • Jin L, Lu P, You H, et al. Vitamin B12 diffusion and binding in crosslinked poly(acrylic acid)s and poly(acrylic acid-co-N-vinyl pyrrolidinone)s. Int J Pharm. 2009;371(1–2):82–88.
  • Abbasiliasi S, Joo Shun T, Tengku Ibrahim TA, et al. Use of sodium alginate in the preparation of gelatin based hard capsule shells and their evaluation in vitro. RSC Adv. 2019;9(28):16147–16157.
  • Bhutani U, Laha A, Mitra K, et al. Sodium alginate and gelatin hydrogels: viscosity effect on hydrophobic drug release. Mater Lett. 2016;164:76–79.
  • Derkach SR, Voron’ko NG, Sokolan NI, et al. Interactions between gelatin and sodium alginate: UV and FTIR studies. J Disper Sci Technol. 2020;41(5):690–698.
  • Costa P, Lobo JMS. Modeling and comparison of dissolution profiles. Eur J Pharm Sci. 2001;13(2):123–133.
  • Hu Y, Zou S, Chen W, et al. Mineralization and drug release of hydroxyapatite/poly(L-lactic acid) nanocomposite scaffolds prepared by pickering emulsion templating. Colloids Surf B. 2014;122:559–565.
  • Treenate P, Monvisade P. In vitro drug release profiles of pH-sensitive hydroxyethylacryl chitosan/sodium alginate hydrogels using paracetamol as a soluble model drug. Int J Biolog Macromol. 2017; 99:71–78.
  • Rezk AI, Obiweluozor FO, Choukrani G, et al. Drug release and kinetic models of anticancer drug (BTZ) from a pH-responsive alginate polydopamine hydrogel: towards cancer chemotherapy. Int J Biol Macromol. 2019;141:388–400.
  • Bajpai SK, Sharma S. Investigation of swelling/degradation behaviour of alginate beads crosslinked with Ca2+ and Ba2+ ions. React Funct Polym. 2004;59(2):129–140.
  • Holliday DL, Speirs V. Choosing the right cell line for breast cancer research. Breast Cancer Res. 2011; 13(4):215.
  • Chavez KJ, Garimella SV, Lipkowitz S. Triple negative breast cancer cell lines: one tool in the search for better treatment of triple negative breast cancer. Breast Dis. 2010; 32(1–2):35–48.
  • Weigelt B, Ghajar CM, Bissell MJ. The need for complex 3D culture models to unravel novel pathways and identify accurate biomarkers in breast cancer. Adv Drug Deliv Rev. 2014; 69–70:42–51.
  • Campbell JJ, Husmann A, Hume RD, et al. Development of three-dimensional collagen scaffolds with controlled architecture for cell migration studies using breast cancer cell lines. Biomaterials. 2017; 114:34–43.
  • Polonio-Alcalá E, Rabionet M, Gallardo X, et al. PLA electrospun scaffolds for three-dimensional triple-negative breast cancer cell culture. Polymers. 2019; 11(5):916.
  • Park H-J, Helfman DM. Up-regulated fibronectin in 3D culture facilitates spreading of triple negative breast cancer cells on 2D through integrin β-5 and Src. Sci Rep. 2019;9(1):19950.
  • Aroguz AZ, Baysal K, Adiguzel Z, et al. Alginate/polyoxyethylene and alginate/gelatin hydrogels: preparation, characterization, and application in tissue engineering. Appl Biochem Biotechnol. 2014;173(2):433–448.
  • Sarker B, Singh R, Silva R, et al. Evaluation of fibroblasts adhesion and proliferation on alginate-gelatin crosslinked hydrogels. PLoS One. 2014; 9(9):e107952.
  • Hwang CM, Sant S, Masaeli M, et al. Fabrication of three-dimensional porous cell-laden hydrogel for tissue engineering. Biofabrication. 2010;2(3):035003.
  • Wang K, Nune KC, Misra RDK. The functional response of alginate-gelatin-nanocrystalline cellulose injectable hydrogels toward delivery of cells and bioactive molecules. Acta Biomater. 2016;36:143–151.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.