4.7 Article

Regenerated cellulose nanofiber reinforced chitosan hydrogel scaffolds for bone tissue engineering

Journal

CARBOHYDRATE POLYMERS
Volume 251, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.carbpol.2020.117023

Keywords

Electrospinning; Cellulose acetate; Deacetylation; Regenerated cellulose nanofibers; Chitosan; Bone tissue engineering

Funding

  1. Basic Science Research Program through the National Research Foundation of Korea (NRF) - Ministry of Education, Science and Technology [2019R1A2B5B02070092]
  2. program for fostering next-generation researchers in engineering of the National Research Foundation of Korea (NRF) - Ministry of Science [2017H1D8A2030449]
  3. Practical Technology Development Medical Microrobot Program (R&D Center for Practical Medical Microrobot Platform) - Ministry of Health and Welfare (MOHW, Korea) [HI19C0462]
  4. Korea Health Industry Development Institute (DHIDI, Korea)

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This study addressed the insufficient mechanical strength of natural hydrogel scaffolds in bone tissue engineering by incorporating regenerated cellulose nanofibers into chitosan hydrogel. The resulting rCL/CS composite scaffold showed improved compressive strength, biomineralization, and pre-osteoblast cell viability. The enhanced osteogenic differentiation ability of rCL/CS composite scaffold suggests its promise as a three-dimensional bio-scaffold for bone tissue engineering.
Natural hydrogel scaffolds usually exhibit insufficient mechanical strength which remains a major challenge in bone tissue engineering. In this study, the limitation was addressed by incorporating regenerated cellulose (rCL) nanofibers into chitosan (CS) hydrogel. The rCL nanofibers were regenerated from deacetylation of electmspun cellulose acetate (CA) nanofibers. As-prepared rCL/CS composite scaffold showed unique porous morphology with rCL nanofibers imbibed CS matrix. The compressive strength test exhibited that the rCL/CS scaffold have higher compressive strength compared to pure CS. The rCL/CS scaffold showed increased biomineralization and enhanced pre-osteoblast cell (MC3T3-E1) viability, attachment, and proliferation. The alkaline phosphatase (ALP) and alizarin red (ARS) staining results suggested that the osteogenic differentiation ability was improved in rCL/CS composite scaffold. Hence, the novel fabrication idea and the obtained results suggested that the rCL/CS composite hydrogel scaffolds could be a promising three-dimensional bio-scaffold for bone tissue engineering.

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