Department of Textile Technology, Indian Institute of Technology Delhi, New Delhi 110016, India.
Department of Textile Technology, Indian Institute of Technology Delhi, New Delhi 110016, India.
Carbohydr Polym. 2019 Dec 15;226:115298. doi: 10.1016/j.carbpol.2019.115298. Epub 2019 Sep 8.
Traditional method of chitosan (naturally available abundant biopolymer) nanoparticles synthesis is the ionic cross-linking between chitosan and say, sodium tri-polyphosphate (TPP). These nanoparticles are structurally less stable and are basically obtained viaconversion of chitosan, a pure bio-based material, into a hybrid structure of biopolymer and a synthetic chemical. The present work reports a novel attempt to synthesize antimicrobial chitosan nanoparticles by chemical cross-linking with cinnamaldehyde, another eco-friendly bactericidal agent. The synthesized nanoparticles (size range, 80-150 nm) were analysed for their surface morphology. X-ray diffraction pattern denoted the amorphous characteristics of the formed nanoparticles. The FTIR analysis revealed formulation of chitosan nanoparticles to be based on Schiff reaction between amino group of chitosan and aldehyde group of cinnamaldehyde. NMR analysis also confirmed the formulation of cinnamaldehyde cross-linked chitosan nanoparticles. TGA and DSC were performed to analyse thermal characteristics and stability of prepared nanoparticles. Subsequently, the study successfully indicated that the synthesized nanoparticles exhibit synergistic antibacterial activity (98%) against Staphylococcus aureus (Gram-positive) and (96%) Escherichia coli (Gram-negative) bacteria. The MIC and MBC values were found to be 5 mg/mL and 10 mg/mL, respectively, for both types of bacteria.
传统的壳聚糖(天然存在的丰富生物聚合物)纳米粒子合成方法是壳聚糖与三聚磷酸钠(TPP)之间的离子交联。这些纳米粒子结构不太稳定,基本上是通过将纯生物基材料壳聚糖转化为生物聚合物和合成化学物质的混合结构来获得的。本工作报道了一种通过肉桂醛(另一种环保杀菌剂)化学交联合成抗菌壳聚糖纳米粒子的新尝试。合成的纳米粒子(粒径范围 80-150nm)进行了表面形貌分析。X 射线衍射图谱表示形成的纳米粒子具有无定形特征。FTIR 分析表明壳聚糖纳米粒子的形成基于壳聚糖的氨基与肉桂醛的醛基之间的席夫反应。NMR 分析也证实了肉桂醛交联壳聚糖纳米粒子的形成。进行了 TGA 和 DSC 分析以研究制备的纳米粒子的热特性和稳定性。随后,研究成功表明,合成的纳米粒子对金黄色葡萄球菌(革兰氏阳性)和大肠杆菌(革兰氏阴性)具有协同抗菌活性(98%)。对于两种类型的细菌,MIC 和 MBC 值分别为 5mg/mL 和 10mg/mL。