Application of Chitosan in Bone and Dental Engineering
Abstract
:1. Introduction
2. Results
2.1. Chitosan
2.2. Medical and Pharmaceutical Properties of Chitosan
2.2.1. Drug Delivery
2.2.2. Wound Dressings
2.3. Chitosan-Based Scaffold Preparation
2.4. Chitosan-Based Scaffolds for Bone Regeneration
2.5. Chitosan-Based Application for Dental Engineering: The Case of Periodontal Regeneration
2.6. Chitosan-Based Scaffold in Dental-Pulp Regeneration
3. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Chitosan-Based Biocomposite Scaffolds | |||||
---|---|---|---|---|---|
Polymers and/or Biomaterials | Bioactive Molecule | Models | Observations as Compared to the Properties of Chitosan Polymer Scaffolds Alone | Reference | |
BMP-2 | In vitro | No cytotoxicity and increased osteogenesis | [90] | ||
In vivo | No cytotoxicity, increased biomineralization, and increased osteogenesis | ||||
Recombinant human BMP-2 | In vivo | Enhanced bone regeneration | [91] | ||
In vitro | Increased biomineralization and increased osteogenesis | [92] | |||
In vivo | Improved and earlier bone regeneration | [93] | |||
In vitro | No cytotoxicity, increased biomineralization | [94] | |||
In vivo | Generation of a substantial amount of bone in rat cranium | ||||
Hydroxyapatite | In vivo | New bone tissue formation in rat | [95] | ||
Nano hydroxyapatite | In vivo | Regeneration of segmental bone defects with cortical bone in rabbit | [96] | ||
Nano hydroxyapatite/Nano ZrO2/Nano CaZrO3 | In vitro | No cytotoxicity, decreased water retention and increased mechanical properties | [97] | ||
Calcium sulfate | In vivo | Early bony consolidation | [98] | ||
SiO2 + ZrO2 | In vitro | No cytotoxicity at low concentration, decreased water retention, increased protein adsorption, biomineralization, and biodegradation | [99] | ||
Bioactive glass + carbon nanotube | In vitro | No cytotoxicity, increased water retention, biodegradation, and mechanical properties | [100] | ||
β-tricalcium phosphate | In vitro | No cytotoxicity at low concentration, decreased biodegradation, and increased mechanical properties | [101] | ||
In vivo | Increased new bone formation | [102] | |||
γ-polyglutamic acid | In vivo | Increased new bone formation | [103] | ||
Chondroitine sulfate + apatite | BMP-2 | In vivo | Enhanced bone regeneration | [104] | |
Bioactive glass | In vitro | Decreased water retention, increased biomineralization, biodegradation, and mechanical properties | [105] | ||
Bioactive glass + poly lactic-co-glycolic acid (PLGA) nanoparticles | In vitro | Decreased water retention, and increased mechanical properties | [106] | ||
Carbon nanotube | In vitro | No cytotoxicity, increased biomineralization | [107] | ||
Keratin nanoparticles | In vitro | No cytotoxicity, increased protein adsorption and biodegradation | [108] | ||
Glycerophosphate | In vivo | Enhanced bone regeneration | [109] | ||
Glycerophosphate + graphene oxide | In vitro | No cytotoxicity, increased water retention, protein adsorption, biomineralization, biodegradation, and osteogenesis | [110] | ||
poly-ɛ-caprolactone | BMP-2 | In vitro | No cytotoxicity | [111] | |
In vivo | Regeneration of both the subchondral bone and the cartilage in large animal model | ||||
Chitin + Nano ZrO2 | In vitro | No cytotoxicity, decreased water retention and biodegradation, increased biomineralization and osteogenesis | [112] | ||
Collagen | In vivo | Enhanced bone regeneration | [113] | ||
BMP-2 | In vitro | No cytotoxicity, increased biomineralization and osteogenesis | [114] | ||
In vivo | No cytotoxicity, increased biomineralization and osteogenesis | ||||
BMP-7 | In vivo | Accelerated regeneration of alveolar bone tissue | [115] | ||
PLGA/Polyethylene glycol (PEG) | VEGF | In vitro | Induced angiogenesis | [116] | |
In vivo | Induced angiogenesis and vascularization in rat | ||||
PLGA | rhBMP-2 | In vitro | Controlled growth factor release rate | [117] | |
In vivo | Enhanced bone formation and fast bone regeneration in dog | ||||
Chondroitine sulfate + hydroxyapatite | In vitro | Secretion of higher level of receptor activator of nuclear factor kappa-B ligand (RANKL) to mediate osteoclastogenesis | [118] | ||
Advanced platelet rich fibrin (A-PRF) | In vitro | No cytotoxicity, increased biomineralization and mechanical properties, decreased biodegradation | [119] | ||
Alginate | Nano SiO2 | In vitro | No cytotoxicity, decreased water retention and mechanical properties, increased protein adsorption, biomineralization, biodegradation, and osteogenesis | [120] | |
Nano-sized hydroxyapatite | In vitro | No cytotoxicity, increased biomineralization, osteogenesis, and mechanical properties | [121] | ||
Hydroxyapatite | In vitro | No cytotoxicity | [122] | ||
In vivo | Strong positive effect on bone formation in mice | ||||
BMP-2 | In vitro | No cytotoxicity | [123] | ||
In vivo | Great osteogenesis and reconstruction of critical size bone defects | ||||
Silk fibroin | Nano ZrO2 | In vitro | No cytotoxicity, increased water retention, biomineralization, biodegradation, and mechanical properties | [124] | |
Hydroxyapatite | In vitro | Increased biomineralization and osteogenesis | [125] | ||
TGF-β1 | In vivo | Biocompatibility and extensive osteoconductivity and osteogenesis | [126] | ||
Collagen + Poly(L-Lactide) | Nanohydroxyapatite | BMP-2 | In vitro | Controlled growth factor release rate and more favorable cytocompatibility | [127] |
In vivo | Accelerated regeneration of cancellous bone defect in rabbit | ||||
Carboxyme-thylcellulose | mesoporous wollastonite | In vitro | No cytotoxicity, decreased water retention and biodegradation, increased protein adsorption, biomineralization, and osteogenesis | [128] | |
Gelatin | In vivo | Increased amount of new bone formation | [129] | ||
Hydroxyapatite –montmorillonite | In vitro | Decreased biodegradation, increased biomineralization and mechanical properties | [130] | ||
Nano SiO2 | In vitro | No cytotoxicity, decreased water retention, increased protein adsorption, biomineralization, biodegradation, and mechanical properties | [131] | ||
β-tricalcium phosphate | In vitro | No cytotoxicity, increased water retention, biomineralization, osteogenesis, and mechanical properties | [132] | ||
Hydroxyapatite+ titania | In vitro | No cytotoxicity, increased biomineralization and mechanical properties, decreased biodegradation | [133] | ||
Hydroxyapatite | In vitro | No cytotoxicity, increased osteogenesis and mechanical properties | [134] | ||
Fucoidan | β-tricalcium phosphate | In vitro | No cytotoxicity, increased protein adsorption, biomineralization, osteogenesis, and mechanical properties | [135] | |
poly(propylene carbonate) | In vitro | No cytotoxicity, increased mechanical properties | [136] | ||
Poly-3-hydro xybutyrate-co3-hydroxyvalerate (PHBV) | Hydroxyapatite | In vitro | No cytotoxicity, increased biomineralization, osteogenesis, and mechanical properties | [137] | |
Polyvinyl pyrrolidone | Bioactive glass | In vitro | No cytotoxicity, decreased biodegradation | [138] | |
Polypyrrole-alginate | In vitro | No cytotoxicity, increased biomineralization, decreased water retention, protein adsorption, and biodegradation | [139] | ||
Polyvinyl alcohol or collagen | Bioactive glass | In vitro | No cytotoxicity, increased biomineralization and mechanical properties, decreased water retention and biodegradation | [140] | |
Polyvinyl alcohol | In vitro | No cytotoxicity, increased water retention, osteogenesis, and mechanical properties | [141] | ||
In vivo | Good cartilage healing in rabbit | ||||
Polylactide + Alginate | VEGF | In vitro | Good VEGF release rate, enhanced neovascularization in bone healing and maintenance of bioactivity | [142] | |
In vivo |
Chitosan-Based Biocomposite Scaffolds | ||||
---|---|---|---|---|
Polymers and/or Biomaterials | Bioactive Molecule | Model | Observations | Reference |
β-tricalcium phosphate | In vitro |
| [145] | |
Collagen | BMP-7 | In vivo |
| [146] |
Calcium-aluminate | 1α,25-dihydroxyvitamin D3 (1α,25VD) | In vitro |
| [147] |
Fibrin | In vitro |
| [148] | |
Silver-doped bioactive glass | In vitro |
| [149] |
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Aguilar, A.; Zein, N.; Harmouch, E.; Hafdi, B.; Bornert, F.; Offner, D.; Clauss, F.; Fioretti, F.; Huck, O.; Benkirane-Jessel, N.; et al. Application of Chitosan in Bone and Dental Engineering. Molecules 2019, 24, 3009. https://doi.org/10.3390/molecules24163009
Aguilar A, Zein N, Harmouch E, Hafdi B, Bornert F, Offner D, Clauss F, Fioretti F, Huck O, Benkirane-Jessel N, et al. Application of Chitosan in Bone and Dental Engineering. Molecules. 2019; 24(16):3009. https://doi.org/10.3390/molecules24163009
Chicago/Turabian StyleAguilar, Alicia, Naimah Zein, Ezeddine Harmouch, Brahim Hafdi, Fabien Bornert, Damien Offner, François Clauss, Florence Fioretti, Olivier Huck, Nadia Benkirane-Jessel, and et al. 2019. "Application of Chitosan in Bone and Dental Engineering" Molecules 24, no. 16: 3009. https://doi.org/10.3390/molecules24163009
APA StyleAguilar, A., Zein, N., Harmouch, E., Hafdi, B., Bornert, F., Offner, D., Clauss, F., Fioretti, F., Huck, O., Benkirane-Jessel, N., & Hua, G. (2019). Application of Chitosan in Bone and Dental Engineering. Molecules, 24(16), 3009. https://doi.org/10.3390/molecules24163009