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用于生物医学应用的增强壳聚糖抗菌和抗氧化活性的再生方法。

Regeneration Approach to Enhance the Antimicrobial and Antioxidant Activities of Chitosan for Biomedical Applications.

作者信息

Panda Pradeep Kumar, Sadeghi Kambiz, Park Kitae, Seo Jongchul

机构信息

Department of Packaging & Logistics, Yonsei University, Wonju-si 26493, Gangwon-do, Republic of Korea.

出版信息

Polymers (Basel). 2022 Dec 28;15(1):132. doi: 10.3390/polym15010132.

Abstract

Owing to its biodegradability, non-toxicity, and biocompatibility, chitosan (Cs) is a ubiquitous biopolymer. However, applications of Cs are limited owing to the existence of strong inter- and intra-molecular hydrogen bonds within its network. To address this issue, we regenerated medium-molecular-weight Cs to enhance the physico-chemical and functional properties using a cationic approach. Accordingly, alkaline modification was employed to introduce an additional positive charge to the amine functional groups of Cs and moderately disintegrate the inter- and intra-hydrogen bonds. The chemical structure of Cs and regenerated chitosan (RCs) was confirmed through Fourier transform infrared and H-NMR spectroscopy. RCs showed higher zeta potential value compared to Cs. Additionally, using X-ray diffraction, RCs exhibited low crystallinity, which can be attributed to the repulsive force caused by the positive surface charge and the destruction of hydrogen bonds. The RCs exhibited stronger antioxidant activity than Cs. Furthermore, the minimum inhibition concentrations (MICs) of RCs against and were reduced by almost four times compared with those of Cs. The superior functional properties of RCs can be attributed to the formation of a polycationic structure after alkaline modification. Thus, RCs can be introduced as potent agents for various biomedical purposes.

摘要

由于具有生物可降解性、无毒和生物相容性,壳聚糖(Cs)是一种普遍存在的生物聚合物。然而,由于其网络中存在强分子间和分子内氢键,Cs的应用受到限制。为了解决这个问题,我们采用阳离子方法再生了中分子量的Cs,以增强其物理化学和功能特性。因此,采用碱性改性为Cs的胺官能团引入额外的正电荷,并适度破坏分子间和分子内的氢键。通过傅里叶变换红外光谱和H-NMR光谱确认了Cs和再生壳聚糖(RCs)的化学结构。与Cs相比,RCs显示出更高的zeta电位值。此外,通过X射线衍射,RCs表现出低结晶度,这可归因于表面正电荷引起的排斥力和氢键的破坏。RCs表现出比Cs更强的抗氧化活性。此外,与Cs相比,RCs对[具体菌种1]和[具体菌种2]的最低抑菌浓度(MICs)降低了近四倍。RCs优异的功能特性可归因于碱性改性后形成的聚阳离子结构。因此,RCs可作为各种生物医学用途的有效试剂引入。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2681/9824206/818f9044f97b/polymers-15-00132-g001.jpg

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