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壳聚糖在传染病防治策略中的应用

Applications of Chitosan in Prevention and Treatment Strategies of Infectious Diseases.

作者信息

Sinani Genada, Sessevmez Melike, Şenel Sevda

机构信息

Department of Pharmaceutical Technology, Faculty of Pharmacy, Altinbas University, 34147 Istanbul, Türkiye.

Department of Pharmaceutical Technology, Faculty of Pharmacy, Istanbul University, 34116 Istanbul, Türkiye.

出版信息

Pharmaceutics. 2024 Sep 13;16(9):1201. doi: 10.3390/pharmaceutics16091201.


DOI:10.3390/pharmaceutics16091201
PMID:39339237
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11434819/
Abstract

Chitosan is the most commonly investigated functional cationic biopolymer in a wide range of medical applications due to its promising properties such as biocompatibility, biodegradability, and bioadhesivity, as well as its numerous bioactive properties. Within the last three decades, chitosan and its derivatives have been investigated as biomaterials for drug and vaccine delivery systems, besides for their bioactive properties. Due to the functional groups in its structure, it is possible to tailor the delivery systems with desired properties. There has been a great interest in the application of chitosan-based systems also for the prevention and treatment of infectious diseases, specifically due to their antimicrobial, antiviral, and immunostimulatory effects. In this review, recent applications of chitosan in the prevention and treatment of infectious diseases are reviewed, and possibilities and limitations with regards to technical and regulatory aspects are discussed. Finally, the future perspectives on utilization of chitosan as a biomaterial are discussed.

摘要

壳聚糖是在广泛的医学应用中研究最为普遍的功能性阳离子生物聚合物,这归因于其具有如生物相容性、生物降解性和生物粘附性等良好特性,以及众多的生物活性。在过去三十年中,除了其生物活性外,壳聚糖及其衍生物还被研究用作药物和疫苗递送系统的生物材料。由于其结构中的官能团,可以定制具有所需特性的递送系统。基于壳聚糖的系统因其抗菌、抗病毒和免疫刺激作用,在传染病的预防和治疗应用中也引起了极大的关注。在这篇综述中,回顾了壳聚糖在传染病预防和治疗中的最新应用,并讨论了在技术和监管方面的可能性和局限性。最后,讨论了壳聚糖作为生物材料的未来应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6d6/11434819/f3b92d94301c/pharmaceutics-16-01201-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6d6/11434819/f4a19a4f0c41/pharmaceutics-16-01201-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6d6/11434819/f3b92d94301c/pharmaceutics-16-01201-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6d6/11434819/f4a19a4f0c41/pharmaceutics-16-01201-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6d6/11434819/f3b92d94301c/pharmaceutics-16-01201-g002.jpg

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本文引用的文献

[1]
ESKAPE pathogens: antimicrobial resistance, epidemiology, clinical impact and therapeutics.

Nat Rev Microbiol. 2024-10

[2]
Durable lymph-node expansion is associated with the efficacy of therapeutic vaccination.

Nat Biomed Eng. 2024-10

[3]
Nanoparticles as delivery vehicles for antiviral therapeutic drugs.

Eng Regen. 2021

[4]
Enhanced antibacterial activity of porous chitosan-based hydrogels crosslinked with gelatin and metal ions.

Sci Rep. 2024-3-29

[5]
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Virology. 2024-5

[6]
Non-invasive transdermal delivery of biomacromolecules with fluorocarbon-modified chitosan for melanoma immunotherapy and viral vaccines.

Nat Commun. 2024-1-27

[7]
Two centuries of vaccination: historical and conceptual approach and future perspectives.

Front Public Health. 2023

[8]
Simultaneous Optimization of Deacetylation Degree and Molar Mass of Chitosan from Shrimp Waste.

Polymers (Basel). 2024-1-6

[9]
Thiolated chitosan encapsulation constituted mucoadhesive nanovaccine confers broad protection against divergent influenza A viruses.

Carbohydr Polym. 2024-3-15

[10]
Responses of primary human nasal epithelial cells to COVID-19 vaccine candidate.

Asian Pac J Allergy Immunol. 2024-1-6

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