Nanopillared Chitosan/Gelatin Films: A Biomimetic Approach for Improved Osteogenesis.
Sevde AltuntaşHarkiranpreet K DhaliwalNicole J BassousAhmed E RadwanPinar AlpaslanThomas WebsterFatih BuyukserinMansoor AmijiPublished in: ACS biomaterials science & engineering (2019)
Biomimicry strategies, inspired from natural organization of living organisms, are being widely used in the design of nanobiomaterials. Particularly, nonlithographic techniques have shown immense potential in the facile fabrication of nanostructured surfaces at large-scale production. Orthopedic biomaterials or coatings possessing extracellular matrix-like nanoscale features induce desirable interactions between the bone tissue and implant surface, also known as osseointegration. In this study, nanopillared chitosan/gelatin (C/G) films were fabricated using nanoporous anodic alumina molds, and their antibacterial properties as well as osteogenesis potential were analyzed by comparing to the flat C/G films and tissue culture polystyrene as controls. In vitro analysis of the expression of RUNX2, osteopontion, and osteocalcin genes for mesenchymal stem cells as well as osteoblast-like Saos-2 cells was found to be increased for the cells grown on nano C/G films, indicating early-stage osteogenic differentiation. Moreover, the mineralization tests (quantitative calcium analysis and alizarin red staining) showed that nanotopography significantly enhanced the mineralization capacity of both cell lines. This work may provide a new perspective of biomimetic surface topography fabrication for orthopedic implant coatings with superior osteogenic differentiation capacity and fast bone regeneration potential.
Keyphrases
- bone regeneration
- mesenchymal stem cells
- extracellular matrix
- induced apoptosis
- room temperature
- early stage
- tissue engineering
- bone marrow
- cell cycle arrest
- drug delivery
- umbilical cord
- human health
- poor prognosis
- hyaluronic acid
- transcription factor
- soft tissue
- genome wide
- carbon nanotubes
- wound healing
- endoplasmic reticulum stress
- climate change
- risk assessment
- cell death
- cystic fibrosis
- mass spectrometry
- radiation therapy
- ionic liquid
- body composition
- metal organic framework
- dna methylation
- pi k akt
- multidrug resistant
- highly efficient
- plant growth
- anti inflammatory
- genome wide analysis