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壳聚糖/纳米碳酸钙作为先进的抗菌涂层,用于纸质文件。

Chitosan/calcium nanoparticles as advanced antimicrobial coating for paper documents.

机构信息

Sabancı University, Faculty of Engineering and Natural Sciences, Department of Materials Science and Nanoengineering, 34956 Istanbul, Türkiye; Piccolo Nanotechnology and Engineering Limited Company, Yildiz Technopark, 34220 Istanbul, Türkiye.

Acıbadem Mehmet Ali Aydınlar University, Faculty of Engineering, Department of Medical Engineering, Istanbul, Türkiye.

出版信息

Int J Biol Macromol. 2022 Aug 31;215:521-530. doi: 10.1016/j.ijbiomac.2022.06.142. Epub 2022 Jun 25.

Abstract

Preservation of paper-based historical artifacts against deterioration due to the presence of bacteria and fungi colonies has been one of the major issues for the importance of protecting the cultural heritage of humankind. Advances in nanotechnology have enabled the implementation of nanomaterials for this purpose. In this work, calcium/chitosan nanoparticles (Ca/CS NPs) were prepared and well-characterized to investigate their potential as a novel approach for preserving paper-based documents. Following the fundamental characterizations, it was found that Ca/CS NPs are spherical nanoparticles with ~65 nm average size and homogenous dispersion (PdI: 0.2). Besides, minimum inhibition concentration results revealed that Ca/CS NPs show a superior antimicrobial effect against specific bacteria and fungi strains commonly found on paper documents compared to the effect of bare chitosan nanoparticles (CS NPs). After the deposition of Ca/CS NPs onto the paper the pH level was increased and stabilized, and only a limited amount of microbial colony formation was observed for up to 20 days. Moreover, molecular docking analysis provided a better insight into the antibacterial and antifungal activities of these nanoparticles. The antimicrobial activity of CS NPs and Ca/CS NPs was investigated through their interactions with E. coli DNA gyrase B and C. albicans dihydrofolate reductase. The binding modes and all possible interactions of active sites were confirmed by in silico molecular docking method. Collectively, our findings revealed that the formulated Ca/CS NPs are promising candidates for preserving paper documents.

摘要

保存纸质历史文物以防因细菌和真菌菌落的存在而劣化一直是保护人类文化遗产的重要问题之一。纳米技术的进步使得可以将纳米材料用于此目的。在这项工作中,制备了钙/壳聚糖纳米颗粒(Ca/CS NPs)并进行了很好的表征,以研究它们作为保护纸质文献的新方法的潜力。在进行基本特性表征后发现,Ca/CS NPs 是具有~65nm 平均粒径和均匀分散性(PdI:0.2)的球形纳米颗粒。此外,最小抑菌浓度结果表明,与壳聚糖纳米颗粒(CS NPs)相比,Ca/CS NPs 对常见于纸质文献上的特定细菌和真菌菌株具有更好的抗菌作用。将 Ca/CS NPs 沉积在纸张上后,pH 值升高并稳定,在长达 20 天的时间内,仅观察到有限数量的微生物菌落形成。此外,分子对接分析提供了对这些纳米颗粒的抗菌和抗真菌活性的更好了解。通过与大肠杆菌 DNA 拓扑异构酶 B 和白色念珠菌二氢叶酸还原酶的相互作用,研究了 CS NPs 和 Ca/CS NPs 的抗菌活性。通过计算机分子对接方法证实了结合模式和所有可能的活性部位相互作用。总之,我们的研究结果表明,所制备的 Ca/CS NPs 是保护纸质文献的有前途的候选物。

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