920
Views
1
CrossRef citations to date
0
Altmetric
Full Length Article

Preparation of nanofibrous poly (L-lactic acid) scaffolds using the thermally induced phase separation technique in dioxane/polyethylene glycol solution

, , & ORCID Icon
Pages 77-89 | Received 11 Jan 2023, Accepted 19 Mar 2023, Published online: 26 Mar 2023

References

  • Zhua G, Zhang T, Chen M, et al. Bone physiological microenvironment and healing mechanism: basis for future bone-tissue engineering scaffolds. Bioact Mater. 2021;6(11):4110–4140.
  • Liu H, Peng H, Yan W, et al. The promotion of bone regeneration by nanofibrous hydroxyapatite/chitosan scaffolds by effects on integrin-BMP/Smad signaling pathway in BMSCs. Biomaterials. 2013;34(18):4404–4417. DOI:10.1016/j.biomaterials.2013.02.048
  • Koons GL, Diba M, Mikos AG. Materials design for bone-tissue engineering. Nature Review Materials. 2020;5(8):584–603.
  • Zhang Y, Liu X, Zeng L, et al. Kanika chawla. polymer fiber scaffolds for bone and cartilage tissue engineering. Adv Funct Mater. 2019;29(36):1903279.
  • Giannitelli SM, Accoto D, Trombetta M, et al. Current trends in the design of scaffolds for computer-aided tissue engineering. Acta Biomaterialia. 2014;10:580–594.
  • Liu Q, Tian S, Zhao C, et al. Porous nanofibrous poly(l-lactic acid) scaffolds supporting cardiovascular progenitor cells for cardiac tissue engineering. Acta Biomaterialia. 2015;26:105–114.
  • Zhao J, Han W, Mei T, et al. Preparation and properties of biomimetic porous nanofibrous poly (L-lactide) scaffold with chitosan nanofiber network by a dual thermally induced phase separation technique. Mater Sci Eng C. 2012;32(6):1496–1502. DOI:10.1016/j.msec.2012.04.031
  • Wang C, Huang W, Zhou# Y, et al. 3D printing of bone tissue engineering scaffolds.Bioactive Materials. Bioact Mater. 2020;5(1):82–91.
  • Collins MN, Ren G, Kieran Young SP, et al. Scaffold fabrication technologies and structure/function properties in bone tissue engineering. Adv Funct Mater. 2021;31(21):2010609.
  • Dubé J, Bourget JM, Gauvin R, et al. Progress in developing a living human tissue-engineered tri-leaflet heart valve assembled from tissue produced by the self-assembly approach. Acta Biomaterialia. 2014;10(8):3563–3570. DOI:10.1016/j.actbio.2014.04.033
  • Hung KC, Tseng CS, Dai LG, et al. Water-based polyurethane 3D printed scaffolds with controlled release function for customized cartilage tissue engineering. Biomaterials. 2016;83:156–168.
  • Roseti L, Parisi V, Petretta M, et al. Scaffolds for bone tissue engineering: state of the art and new perspectives. Mater Sci Eng C. 2017;78:1246–1262.
  • Jang J, Min K, Kim C, et al. Review: scafold characteristics, fabrication methods, and biomaterials for the bone tissue engineering. Int J Precis Eng Manuf. 2023;24(3):511–529.
  • Li D, Krantz WB, Greenberg AR, et al. Membrane formation via thermally induced phase separation (tips): model development and validation. J Membr Sci. 2006;279(1–2):50–60.
  • Kim JF, Kim JH, Lee YM, et al. Thermally induced phase separation and electrospinning methods for emerging membrane applications: a review. AIChE J. 2016;62(2):461–490.
  • Hua FJ, Kim GE, Lee JD, et al. Macroporous poly(l-lactide) scaffold preparation of a macroporous scaffold by liquid-liquid phase separation of a PLLA-dioxane-water system. J Biomed Mater Res. 2002;63(2):161–167. DOI:10.1002/jbm.10121
  • Pintado-Sierra M, Delgado L, Aranaz I, et al. Surface hierarchical porosity in poly (ɛ-caprolactone) membranes with potential applications in tissue engineering prepared by foaming in supercritical carbon dioxide. J Supercrit Fluids. 2014;95:273–284.
  • Doğan A, Demirci S, Bayir Y, et al. Boron containing poly-(lactide-co-glycolide) (PLGA) scaffolds for bone tissue engineering. Mater Sci Eng C. 2014;44:246–253.
  • Abdul Rahman R, Mohamad Sukri N, Md Nazir N, et al. The potential of 3-dimensional construct engineered from poly(lactic-co-glycolic acid)/fibrin hybrid scaffold seeded with bone marrow mesenchymal stem cells for in vitro cartilage tissue engineering. Tissue Cell. 2015;47(4):420–430. DOI:10.1016/j.tice.2015.06.001
  • Ghomi H, Emadi R, Haghjooye Javanmard S. Preparation of nanostructure bioactive diopside scaffolds for bone tissue engineering by two near net shape manufacturing techniques. Mater Lett. 2016;167(3):157–160.
  • Yazdanpanah A, Tahmasbi M, Amoabediny G, et al. Fabrication and characterization of electrospun poly-L-lactide/gelatin graded tubular scaffolds: toward a new design for performance enhancement in vascular tissue engineering. Prog Nat Sci Mater Int. 2015;25(5):405–413. DOI:10.1016/j.pnsc.2015.09.009
  • Dippold D, Tallawi M, Tansaz S, et al. Novel electrospun poly (glycerol sebacate)–zein fiber mats as candidate materials for cardiac tissue engineering. Eur Polym J. 2016;75:504–513.
  • Shuai C, Yang W, Feng P. Accelerated degradation of HAP/PLLA bone scaffold by PGA blending facilitates bioactivity and osteoconductivity. Bioact Mater. 2021;6(2):490–502.
  • Shuai C, Wang Z, Zhang H, et al. Biosoluble ceramic fiber reinforced poly(l-lactic acid) bone scaffold: degradation and bioactivity. npj Mater Degrad. 2022;6(1):87. DOI:10.1038/s41529-022-00297-3
  • Ha SW, Jang HL, Nam KT, et al. Nano-hydroxyapatite modulates osteoblast lineage commitment by stimulation of DNA methylation and regulation of gene expression. Biomaterials. 2015;65:32–42.
  • Sudheesh Kumar PT, Srinivasan S, Lakshmanan VK, et al. β-Chitin hydrogel/nano hydroxyapatite composite scaffolds for tissue engineering applications. Carbohydr Polym. 2011;85(3):584–591. DOI:10.1016/j.carbpol.2011.03.018
  • Ribeiro M, de Moraes MA, Beppu MM, et al. Development of silk fibroin/nanohydroxyapatite composite hydrogels for bone tissue engineering. Eur Polym J. 2015;67:66–77.
  • Nishida Y, Domura R, Sakai R, et al. Fabrication of PLLA/HA composite scaffolds modified by DNA. Polymer. 2015;56:73–81.
  • Qian J, Weijun X, Yong X. Xueqing Yong.Fabrication and in vitro biocompatibility of biomorphic PLGA/nHA composite scaffolds for bone tissue engineering. Mater Sci Eng C. 2014;36:95–101.
  • Xu CY, Inai R, Kotaki M, et al. Aligned biodegradable nanofibrous structure: a potential scaffold for blood vessel engineering. Biomaterials. 2004;25(5):877–886. DOI:10.1016/S0142-9612(03)00593-3
  • She H, Xiao X, Liu R. Preparation and characterization of polycaprolactone-chitosan composites for tissue engineering applications. J Mater Sci. 2007;42(9):8113–8119.
  • Murphy CM, Haugh MG, O’brien FJ. The effect of mean pore size on cell attachment, proliferation and migration in collagen-glycosaminoglycan scafolds for bone tissue engineering. Biomaterials. 2010;31(3):461–466.
  • Karageorgiou V, Kaplan D. Porosity of 3d biomaterial scafolds and osteogenesis. Biomaterials. 2005;26(27):5474–5491.
  • Ruilong L, Yifan W, Bai Z, et al. Effect of molecular weight of polyethylene glycol on crystallization behaviors, thermal stability, and tensile properties of polylactic acid stereocomplex. RSC Adv. 2020;10(69):42120–42127.
  • Liumin H, Zhang Y, Zeng X, et al. Fabrication and characterization of poly(l-lactic acid) 3D nanofibrous scaffolds with controlled architecture by liquid–liquid phase separation from a ternary polymer–solvent system. Polymer. 2009;50(16):4128–4138. DOI:10.1016/j.polymer.2009.06.025
  • Shao J, Chen C, Wang Y, et al. Early stage structural evolution of PLLA porous scaffolds in thermally induced phase separation process and the corresponding biodegradability and biological property. Polym Degrad Stab. 2012;97(6):955–963. DOI:10.1016/j.polymdegradstab.2012.03.014
  • Huang R, Zhu X, Haiyan T, et al. The crystallization behavior of porous poly(lactic acid) prepared by modified solvent casting/particulate leaching technique for potential use of tissue engineering scaffold. Mater Lett. 2014;136(1):126–129. DOI:10.1016/j.matlet.2014.08.044
  • Xiaohua Liu PXM. Polymeric scaffolds for bone tissue engineering. Ann Biomed Eng. 2004;32(3):477–486.
  • Solechan S, Suprihanto A, Widyanto SA, et al. Characterization of PLA/PCL/Nano-Hydroxyapatite (nHA) biocomposites prepared via cold isostatic pressing. Polymers. 2023;15(3):559.
  • Guadalupe Peñaflor Galindo T, Chai Y, Tagaya M. Hydroxyapatite nanoparticle coating on polymer for constructing effective biointeractive interfaces. J Nanomater. 2019;6495239. DOI:10.1155/2019/6495239