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Effect of enzymatic degradation of chitosan in polyhydroxybutyrate/chitosan/calcium phosphate composites on in vitro osteoblast response
- Source :
- Journal of materials science. Materials in medicine. 27(12)
- Publication Year :
- 2016
-
Abstract
- Polyhydroxybutyrate/chitosan/calcium phosphate composites are interesting biomaterials for utilization in regenerative medicine and they may by applied in reconstruction of deeper subchondral defects. Insufficient informations were found in recent papers about the influence of lysozyme degradation of chitosan in calcium phosphate/chitosan based composites on in vitro cytotoxicity and proliferation activity of osteoblasts. The effect of enzymatic chitosan degradation on osteoblasts proliferation was studied on composite films in which the porosity of origin 3D scaffolds was eliminated and the surface texture was modified. The significantly enhanced proliferation activity with faster population growth of osteoblasts were found on enzymatically degraded biopolymer composite films with α-tricalcium phosphate and nanohydroxyapatite. No cytotoxicity of composite films prepared from lysozyme degraded scaffolds containing a large fraction of low molecular weight chitosans (LMWC), was revealed after 10 days of cultivation. Contrary to above in the higher cytotoxicity origin untreated nanohydroxyapatite films and porous composite scaffolds. The results showed that the synergistic effect of surface distribution, morphology of nanohydroxyapatite particles, microtopography and the presence of LMWC due to chitosan degradation in composite films were responsible for compensation of the cytotoxicity of nanohydroxyapatite composite films or porous composite scaffolds.
- Subjects :
- Calcium Phosphates
Composite number
Hydroxybutyrates
02 engineering and technology
01 natural sciences
Chitosan
Polyhydroxybutyrate
chemistry.chemical_compound
Mice
Biopolymers
Composite material
Tissue Scaffolds
Osteoblast
3T3 Cells
Hydrogen-Ion Concentration
021001 nanoscience & nanotechnology
medicine.anatomical_structure
Lysozyme
0210 nano-technology
Porosity
Materials science
Cell Survival
Polyesters
Biomedical Engineering
Biophysics
chemistry.chemical_element
Bioengineering
engineering.material
Calcium
010402 general chemistry
Biomaterials
medicine
Cell Adhesion
Animals
Cell Proliferation
Osteoblasts
technology, industry, and agriculture
Electric Conductivity
Water
equipment and supplies
Phosphate
0104 chemical sciences
Nanostructures
Molecular Weight
Durapatite
chemistry
engineering
Muramidase
Biopolymer
Subjects
Details
- ISSN :
- 15734838
- Volume :
- 27
- Issue :
- 12
- Database :
- OpenAIRE
- Journal :
- Journal of materials science. Materials in medicine
- Accession number :
- edsair.doi.dedup.....79b0e3d7e73871d0f0e694bdbee9bed1