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Bioplatform Fabrication Approaches Affecting Chitosan-Based Interpolymer Complex Properties and Performance as Wound Dressings

机译:影响壳聚糖基互聚物复合物性能和性能的生物敷料作为伤口敷料

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摘要

Chitosan can form interpolymer complexes (IPCs) with anionic polymers to form biomedical platforms (BMPs) for wound dressing/healing applications. This has resulted in its application in various BMPs such as gauze, nano/microparticles, hydrogels, scaffolds, and films. Notably, wound healing has been highlighted as a noteworthy application due to the remarkable physical, chemical, and mechanical properties enabled though the interaction of these polyelectrolytes. The interaction of chitosan and anionic polymers can improve the properties and performance of BMPs. To this end, the approaches employed in fabricating wound dressings was evaluated for their effect on the property–performance factors contributing to BMP suitability in wound dressing. The use of chitosan in wound dressing applications has had much attention due to its compatible biological properties. Recent advancement includes the control of the degree of crosslinking and incorporation of bioactives in an attempt to enhance the physicochemical and physicomechanical properties of wound dressing BMPs. A critical issue with polyelectrolyte-based BMPs is that their effective translation to wound dressing platforms has yet to be realised due to the unmet challenges faced when mimicking the complex and dynamic wound environment. Novel BMPs stemming from the IPCs of chitosan are discussed in this review to offer new insight into the tailoring of physical, chemical, and mechanical properties via fabrication approaches to develop effective wound dressing candidates. These BMPs may pave the way to new therapeutic developments for improved patient outcomes.
机译:壳聚糖可以与阴离子聚合物形成互聚物复合物(IPC),从而形成用于伤口包扎/愈合应用的生物医学平台(BMP)。这已导致其在各种BMP中的应用,例如纱布,纳米/微粒,水凝胶,支架和薄膜。值得注意的是,由于这些聚电解质的相互作用,其具有显着的物理,化学和机械性能,因此伤口愈合已被作为一项值得注意的应用而突出。壳聚糖和阴离子聚合物的相互作用可以改善BMP的性能和性能。为此,对制造伤口敷料的方法对BMP在伤口敷料中适用性的性能因素的影响进行了评估。由于其相容的生物学特性,在伤口敷料中使用壳聚糖备受关注。最近的进展包括控制交联度和生物活性物质的掺入,以试图增强伤口敷料BMP的物理化学和物理机械性能。基于聚电解质的BMP的一个关键问题是,由于在模拟复杂而动态的伤口环境时面临未解决的挑战,因此尚未实现将其有效转化为伤口敷料平台的目标。这篇综述中讨论了源自壳聚糖IPC的新型BMP,旨在通过制造方法开发出有效的伤口敷料候选物,从而对物理,化学和机械性能的定制提供新的见解。这些BMP可能为新的治疗方法铺平道路,以改善患者的预后。

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