Chitosan- and heparin-based advanced hydrogels: their chemistry, structure and biomedical applications

IF 2.2 4区 化学 Q2 Engineering Chemical Papers Pub Date : 2024-11-08 DOI:10.1007/s11696-024-03785-9
Sher Zaman Safi, Sadia Fazil, Laiba Saeed, Humaira Shah, Muhammad Arshad, Hussah M. Alobaid, Fozia Rehman, Faiza Sharif, Chandrabose Selvaraj, Abdul Hamid Orakzai, Muhammad Tariq, Antony V. Samrot, Abdul Qadeer, Abid Ali, Kalaivani Batumalaie, Vetriselvan Subramaniyan, Shah Alam Khan, Ikram Shah Bin Ismail
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Abstract

Chitosan and heparin are two biopolymers with different properties that can be combined to develop biomaterials with unique and desirable characteristics. Chitosan is a cationic polymer with antimicrobial, hemostatic, and wound-healing properties. Heparin is an anionic polymer with anticoagulant properties. The combination of chitosan and heparin can be used to develop biomaterials with a variety of applications, including drug delivery, wound dressing, and tissue engineering. These biomaterials can be fabricated into various forms, such as films, membranes, sponges, hydrogels, nanoparticles, and scaffolds. Chitosan is a natural polysaccharide, present in the form of copolymers of N-acetyl-D-glucosamine as repeating units. Heparin is a natural glycosaminoglycan; a linear sulfated molecule consisting of repetitive units of disaccharide containing uronic acid and N-acetyl glucosamine. Heparin binds and activates the vascular endothelial growth factor (VEGF), which in turn promotes proliferation and migration and thus results in angiogenesis and the formation of new blood vessels. These advantages make chitosan- and heparin-based biomaterials promising candidates for a variety of biomedical applications. However, there are still some challenges that need to be addressed before these biomaterials can be widely used in clinical practices. For example, the degradation rate of chitosan- and heparin-based biomaterials need to be better controlled, and the mechanical properties of these biomaterials need to be improved. Despite these challenges, chitosan- and heparin-based biomaterials have the potential to revolutionize the field of biomedicine. These biomaterials offer several advantages over traditional materials, and they have the potential to be used in a variety of innovative applications. The purpose of this review is to provide a comprehensive overview of the current state of research and applications in this field. It aims to summarize the key findings and advancements in the development and use of chitosan- and heparin-based hydrogels for various biomedical applications.

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壳聚糖和肝素基高级水凝胶:其化学、结构和生物医学应用
壳聚糖和肝素是两种具有不同特性的生物聚合物,两者结合可开发出具有独特和理想特性的生物材料。壳聚糖是一种阳离子聚合物,具有抗菌、止血和伤口愈合特性。肝素是一种阴离子聚合物,具有抗凝血特性。壳聚糖和肝素的组合可用于开发多种用途的生物材料,包括药物输送、伤口敷料和组织工程。这些生物材料可以制成各种形式,如薄膜、膜、海绵、水凝胶、纳米颗粒和支架。壳聚糖是一种天然多糖,以 N-乙酰-D-葡萄糖胺共聚物的形式作为重复单元存在。肝素是一种天然糖胺聚糖;是一种线性硫酸化分子,由含有尿酸和 N-乙酰葡糖胺的双糖重复单元组成。肝素能结合并激活血管内皮生长因子(VEGF),进而促进增殖和迁移,从而导致血管生成和新血管的形成。这些优点使壳聚糖和肝素基生物材料成为各种生物医学应用的理想候选材料。然而,在这些生物材料广泛应用于临床实践之前,仍有一些难题需要解决。例如,壳聚糖和肝素基生物材料的降解率需要更好地控制,这些生物材料的机械性能也需要改进。尽管存在这些挑战,壳聚糖和肝素基生物材料仍有可能在生物医学领域掀起一场革命。与传统材料相比,这些生物材料具有多项优势,并有潜力用于各种创新应用。本综述旨在全面概述该领域的研究和应用现状。它旨在总结壳聚糖和肝素基水凝胶在各种生物医学应用的开发和使用方面的主要发现和进展。
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来源期刊
Chemical Papers
Chemical Papers Chemical Engineering-General Chemical Engineering
CiteScore
3.30
自引率
4.50%
发文量
590
期刊介绍: Chemical Papers is a peer-reviewed, international journal devoted to basic and applied chemical research. It has a broad scope covering the chemical sciences, but favors interdisciplinary research and studies that bring chemistry together with other disciplines.
期刊最新文献
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