Application of Chitosan and Its Derivative Polymers in Clinical Medicine and Agriculture
Abstract
:1. Introduction
2. Physicochemical Properties of Chitosan
2.1. Chitosan Modification
2.1.1. Phosphorylated Chitosan
2.1.2. Thiolated Chitosan
2.1.3. Ionic Chitosan
3. Chitosan in Biomedical Applications
3.1. Anti-Tumor Effects of Chitosan and Its Derivatives
3.2. Wound Healing
3.3. Tissue Engineering Materials for Bone and Cartilage
3.4. Nanocarriers for Drug Delivery
3.5. Potential Application of Chitosan in the Fight against COVID-19
4. Application of Chitosan in the Field of Agriculture
4.1. Plant Growth Stimulants
4.2. Chitosan-Based Nanocomplexes (Ch-NCs) for Fungicides
4.3. Synergistic Effects of Chitosan and Metals
4.4. Synergistic Effect of Chitosan and Endophytic Strains
5. Conclusions and Future Prospects
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Types | Functional Group | Common Derivatives | Applications | Reference |
---|---|---|---|---|
Thiolated chitosan derivatives | the thiol groups | chitosan-6-mercaptonicotinic acid; chitosan-4-thiobutylamidine; | Tissue-engineered scaffolds; Drug delivery nanocarriers; Wastewater treatment; Antibacterial activity; | [13] |
Phosphorylation of chitosan derivatives | phosphate groups | N-methylene phosphonic chitosan | Induced bone formation; Increased solubility; Fuel cell; | [14] |
Crosslinked chitosan derivatives | cross-linking bridges | Ethylene diamine tetraacetic acid chitosan polymer; Chitosan-glutaraldehyde cross-linked polymers; | Drug delivery systems; Biosorbents; | [15] |
Carboxylic acid chitosan derivatives | Carboxymethyl group | N, O-carboxymethyl chitosan; N, N-carboxymethyl chitosan; Chitosan-methacrylate; | Tissue engineering scaffold materials; food industry; nanobiosensors | [16] |
Cationic chitosan derivatives | quaternary functional groups | N-(2-hydroxy) propyl-3-trimethylammonium chitosan; chitosan-(mono, di, tri)chloroacetate; chitosan-trifluoroacetate; | Antibacterial activity; Increased water solubility; Antioxidant reagent; | [17] |
Sulfated chitosan derivatives | –SO42− groups | 6-O-sulfated chitosan; 2-N,6-O-sulfated chitosan; | Tissue repair and regeneration; anticoagulation; antioxidant; antiviral | [18] |
Nanocarrier Component | Loaded Drug | Vivo or Vitro | Efficacy Mechanism | Reference |
---|---|---|---|---|
Chitosan nanocarrier | Gemcitabine | In vitro | Oral adsorption | [65] |
Chitosan/poly(ethylene glycol) | Gemcitabine | In vitro and in vivo | Reduce the burden of frequent dosing and higher toxicity | [66] |
Chitosan nanoparticle | Herceptin (HER2)conjugated gemcitabine | In vitro | Eventual uptake and prolonged intracellular retention | [67] |
O-carboxymethyl chitosan | Curcumin | In vitro | Increase drug solubility | [68] |
N-octyl-O-sulfate chitosan micelles | Paclitaxel | In vitro | Solubilization of hydrophobic drugs | [69] |
Glycol chitosan–5βcholanic acid (HGC) | Camptothecin | In vitro and in vivo | Increase drug stability, solubility and retention | [70] |
Hydroxyapatite chitosan nanocomposite | Celecoxib | In vitro and in vivo | Sustained-release patterns | [71] |
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Zhang, M.; Zhang, F.; Li, C.; An, H.; Wan, T.; Zhang, P. Application of Chitosan and Its Derivative Polymers in Clinical Medicine and Agriculture. Polymers 2022, 14, 958. https://doi.org/10.3390/polym14050958
Zhang M, Zhang F, Li C, An H, Wan T, Zhang P. Application of Chitosan and Its Derivative Polymers in Clinical Medicine and Agriculture. Polymers. 2022; 14(5):958. https://doi.org/10.3390/polym14050958
Chicago/Turabian StyleZhang, Meng, Fengshi Zhang, Ci Li, Heng An, Teng Wan, and Peixun Zhang. 2022. "Application of Chitosan and Its Derivative Polymers in Clinical Medicine and Agriculture" Polymers 14, no. 5: 958. https://doi.org/10.3390/polym14050958
APA StyleZhang, M., Zhang, F., Li, C., An, H., Wan, T., & Zhang, P. (2022). Application of Chitosan and Its Derivative Polymers in Clinical Medicine and Agriculture. Polymers, 14(5), 958. https://doi.org/10.3390/polym14050958