Recent Advancements in Chitosan-Based Biomaterials for Wound Healing.

IF 5.2 3区 医学 Q1 ENGINEERING, BIOMEDICAL Journal of Functional Biomaterials Pub Date : 2025-01-30 DOI:10.3390/jfb16020045
Jahnavi Shah, Dhruv Patel, Dnyaneshwari Rananavare, Dev Hudson, Maxwell Tran, Rene Schloss, Noshir Langrana, Francois Berthiaume, Suneel Kumar
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Abstract

Chitosan is a positively charged natural polymer with several properties conducive to wound-healing applications, such as biodegradability, structural integrity, hydrophilicity, adhesiveness to tissue, and bacteriostatic potential. Along with other mechanical properties, some of the properties discussed in this review are antibacterial properties, mucoadhesive properties, biocompatibility, high fluid absorption capacity, and anti-inflammatory response. Chitosan forms stable complexes with oppositely charged polymers, arising from electrostatic interactions between (+) amino groups of chitosan and (-) groups of other polymers. These polyelectrolyte complexes (PECs) can be manufactured using various materials and methods, which brings a diversity of formulations and properties that can be optimized for specific wound healing as well as other applications. For example, chitosan-based PEC can be made into dressings/films, hydrogels, and membranes. There are various pros and cons associated with manufacturing the dressings; for instance, a layer-by-layer casting technique can optimize the nanoparticle release and affect the mechanical strength due to the formation of a heterostructure. Furthermore, chitosan's molecular weight and degree of deacetylation, as well as the nature of the negatively charged biomaterial with which it is cross-linked, are major factors that govern the mechanical properties and biodegradation kinetics of the PEC dressing. The use of chitosan in wound care products is forecasted to drive the growth of the global chitosan market, which is expected to increase by approximately 14.3% within the next decade. This growth is driven by products such as chitoderm-containing ointments, which provide scaffolding for skin cell regeneration. Despite significant advancements, there remains a critical gap in translating chitosan-based biomaterials from research to clinical applications.

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壳聚糖基伤口愈合生物材料的研究进展。
壳聚糖是一种带正电的天然聚合物,具有生物降解性、结构完整性、亲水性、组织黏附性和抑菌潜力等多种特性,有助于伤口愈合。除其他机械性能外,本文还讨论了抗菌性能、黏附性能、生物相容性、高流体吸收能力和抗炎反应。壳聚糖与带相反电荷的聚合物形成稳定的配合物,这是由壳聚糖的(+)氨基和其他聚合物的(-)氨基之间的静电相互作用产生的。这些聚电解质复合物(PECs)可以使用各种材料和方法制造,这带来了多种配方和性能,可以针对特定伤口愈合以及其他应用进行优化。例如,壳聚糖基PEC可以制成敷料/薄膜、水凝胶和膜。制造这种敷料有各种各样的优点和缺点;例如,逐层铸造技术可以优化纳米颗粒的释放,并由于异质结构的形成而影响机械强度。此外,壳聚糖的分子量和去乙酰化程度,以及与之交联的带负电荷的生物材料的性质,是决定PEC包扎的力学性能和生物降解动力学的主要因素。预计壳聚糖在伤口护理产品中的使用将推动全球壳聚糖市场的增长,预计在未来十年内将增长约14.3%。这种增长是由含有壳皮的软膏等产品推动的,这些产品为皮肤细胞再生提供了支架。尽管取得了重大进展,但在将壳聚糖基生物材料从研究转化为临床应用方面仍存在重大差距。
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来源期刊
Journal of Functional Biomaterials
Journal of Functional Biomaterials Engineering-Biomedical Engineering
CiteScore
4.60
自引率
4.20%
发文量
226
审稿时长
11 weeks
期刊介绍: Journal of Functional Biomaterials (JFB, ISSN 2079-4983) is an international and interdisciplinary scientific journal that publishes regular research papers (articles), reviews and short communications about applications of materials for biomedical use. JFB covers subjects from chemistry, pharmacy, biology, physics over to engineering. The journal focuses on the preparation, performance and use of functional biomaterials in biomedical devices and their behaviour in physiological environments. Our aim is to encourage scientists to publish their results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Several topical special issues will be published. Scope: adhesion, adsorption, biocompatibility, biohybrid materials, bio-inert materials, biomaterials, biomedical devices, biomimetic materials, bone repair, cardiovascular devices, ceramics, composite materials, dental implants, dental materials, drug delivery systems, functional biopolymers, glasses, hyper branched polymers, molecularly imprinted polymers (MIPs), nanomedicine, nanoparticles, nanotechnology, natural materials, self-assembly smart materials, stimuli responsive materials, surface modification, tissue devices, tissue engineering, tissue-derived materials, urological devices.
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