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通过点击化学合成木聚糖-点击-季铵化壳聚糖及其在纳米金属材料制备中的应用。

Synthesis of Xylan-Click-Quaternized Chitosan via Click Chemistry and Its Application in the Preparation of Nanometal Materials.

机构信息

State Key Laboratory of Pulp & Paper Engineering, South China University of Technology, Guangzhou 510640, China.

Key Lab for Special Functional Materials of Ministry of Education, School of Materials, Henan University, Kaifeng 475004, China.

出版信息

Molecules. 2022 May 27;27(11):3455. doi: 10.3390/molecules27113455.

Abstract

For the high-valued utilization of hemicelluloses and for realizing the controllable synthesis of NPs, this paper's aim is to combine xylan, chitosan and nanometal materials at the same time. In this research study, firstly, propargyl xylan was synthesized via nucleophilic substitution reaction between xylan and propargyl bromide in NaOH solution. On the other hand, a tosyl group was introduced onto the 6th position of synthesized quaternized chitosan (QCS), and the azide group replaced the tosyl group to obtain 6-amido-QCS (QCS-N). The synthesis conditions of the above reactions were optimized. Subsequently, the novel xylan-click-QCS polymer was obtained via click reaction between terminal alkyne groups on the xylan chains and azide groups on QCS. Then, AgNPs and AuNPs were synthesized by adopting the xylan-click-QCS polymer as the reducing and stabilizing agent, and the reaction conditions were optimized to obtain well-dispersed and highly stable nanoparticles. There were two kinds of Ag nanomaterials, with diameters of 1020 nm and 25 nm, respectively, indicating the formation of Ag nanoclusters, except for Ag nanoparticles, in this reaction. The diameter of the synthesized AuNPs was 2030 nm, which possessed a more uniform size distribution. The Ag nanoclusters with a smaller size (25 nm) could inhibit MCF-7 cell proliferation effectively, indicating their application potential in cancer therapy. The study gives a new approach to the high-value utilization of biopolymers.

摘要

为了实现半纤维素的高值化利用和纳米粒子的可控合成,本文旨在同时结合木聚糖、壳聚糖和纳米金属材料。在这项研究中,首先通过木聚糖与溴代丙炔在 NaOH 溶液中的亲核取代反应合成了炔丙基木聚糖。另一方面,在合成的季铵化壳聚糖(QCS)的 6 位上引入了甲苯磺酰基,并用叠氮基取代甲苯磺酰基得到 6-酰胺基-QCS(QCS-N)。优化了上述反应的合成条件。随后,通过木聚糖链末端炔基与 QCS 上的叠氮基之间的点击反应得到了新型木聚糖点击-QCS 聚合物。然后,采用木聚糖点击-QCS 聚合物作为还原剂和稳定剂合成了 AgNPs 和 AuNPs,并优化了反应条件,得到了分散性好、稳定性高的纳米粒子。该反应除了形成 Ag 纳米颗粒外,还形成了两种 Ag 纳米材料,直径分别为 1020nm 和 25nm,表明形成了 Ag 纳米簇。合成的 AuNPs 的直径为 2030nm,具有更均匀的粒径分布。较小尺寸(25nm)的 Ag 纳米簇能有效抑制 MCF-7 细胞的增殖,表明其在癌症治疗方面具有应用潜力。该研究为生物聚合物的高值化利用提供了一种新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0861/9182352/f85df4706cd5/molecules-27-03455-g001.jpg

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