Research and Development Center for Efficient Utilization of Coastal Bioresources, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai 264003, China; Center for Ocean Mega-Science, Chinese Academy of Sciences, 7 Nanhai Road, Qingdao 266071, China.
Research and Development Center for Efficient Utilization of Coastal Bioresources, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai 264003, China; Center for Ocean Mega-Science, Chinese Academy of Sciences, 7 Nanhai Road, Qingdao 266071, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Int J Biol Macromol. 2020 Dec 15;165(Pt B):1765-1772. doi: 10.1016/j.ijbiomac.2020.10.019. Epub 2020 Oct 5.
As one of the most promising biopolymers for a variety of potential applications, chitosan has attracted much attention because of its unique biological, chemical, and physical properties. The functionalization of chitosan has been adopted to synthesize novel chitosan derivatives with improved water-solubility and excellent biological activities. In this paper, chitosan was functionalized with a triphenylphosphonium group by means of the copper (I) catalyzed azide-alkyne "click" reaction and has been investigated as potential polymer for agricultural antifungal biomaterial. The influence of chemical modification on the structural characteristics and water-solubility of chitosan was investigated by FTIR spectroscopy, H NMR spectroscopy, elemental analysis, and UV-vis spectrum. Furthermore, the antifungal property of target chitosan derivative against four plant threatening fungal pathogens was evaluated and in vitro investigation demonstrated that triphenylphosphonium salt incorporated chitosan backbone had excellent antifungal property compared with chitosan and intermediate chitosan derivative. Notably, target chitosan derivative displayed relatively strongest antifungal effect with over 80% inhibitory index against Botrytis cinerea at 1.0 mg/mL. The results of a detailed antifungal study indicated that cationic chitosan derivative bearing 1,2,3-triazole and triphenylphosphonium moieties provided a promising platform for preparation of novel cationic antifungal biomaterials in the field of agriculture.
壳聚糖作为一种具有多种潜在应用的最有前途的生物聚合物之一,由于其独特的生物、化学和物理性质而引起了广泛关注。壳聚糖的功能化已被采用,以合成具有改善的水溶性和优异的生物活性的新型壳聚糖衍生物。在本文中,通过铜(I)催化的叠氮-炔烃“点击”反应,壳聚糖被功能化上三苯基膦基团,并被研究为农业抗真菌生物材料的潜在聚合物。通过傅里叶变换红外光谱、核磁共振光谱、元素分析和紫外可见光谱研究了化学修饰对壳聚糖结构特征和水溶性的影响。此外,还评估了目标壳聚糖衍生物对四种植物致病真菌的抗真菌性能,体外研究表明,与壳聚糖和中间壳聚糖衍生物相比,含三苯基膦盐的壳聚糖主链具有优异的抗真菌性能。值得注意的是,目标壳聚糖衍生物在 1.0mg/mL 时对灰葡萄孢的抑制率超过 80%,显示出相对最强的抗真菌效果。详细的抗真菌研究结果表明,具有 1,2,3-三唑和三苯基膦部分的阳离子壳聚糖衍生物为制备农业领域新型阳离子抗真菌生物材料提供了有前途的平台。