Optimization of Achillea millefolium-Infused Chitosan Nanocarriers for Antibacterial and Dye Degradation Applications.

IF 2.3 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Sorimuthu Revathi, Nibedita Dey, Ashley George Thomas, Praveen Kumar Issac, Mohammed Rafi Shaik, Shaik Althaf Hussain, Ajay Guru
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Abstract

The demand for plant-based nanocarriers and nanodrugs is increasing due to their versatile nature and compatibility. This research focuses on the optimization of Achillea millefolium-infused chitosan nanocarriers for antibacterial and dye degradation applications, emphasizing the novelty of this approach. Different dilutions of Achillea millefolium (A. millefolium) were loaded into low and high-molecular-weight chitosan nanocarriers using the ionotropic gelation method. The synthesized drug-loaded chitosan nanocarriers were characterized using UV-Vis spectroscopy, SEM, DLS, FTIR, and HPLC. The optimized nanocarriers were further analyzed for encapsulation efficiency, antibacterial activity, and dye degradation capacity. The encapsulation efficiency of the drug-loaded chitosan nanocarriers ranged from 15% to 100%. Notably, the low molecular weight chitosan-based nanocarriers demonstrated a significant dye degradation capacity, achieving an impressive 83% degradation rate for Methylene Orange (MO). Moreover, these nanoparticles exhibited superior efficacy compared to un-immobilized counterparts. The A. millefolium -chitosan nanoparticles also significantly enhanced the zone of inhibition against Escherichia coli and Staphylococcus aureus, demonstrating strong antibacterial potential. The combination of A. millefolium and chitosan nanoparticles showcases potential for innovative therapeutic applications, particularly in wastewater treatment and antimicrobial therapies. This study provides novel insights into the development of effective plant-based nanocarriers, paving the way for future research in this field.

优化壳聚糖纳米载体在抗菌和染料降解方面的应用。
由于植物纳米载体和纳米药物的多功能性和兼容性,对它们的需求日益增加。本研究的重点是优化注入壳聚糖的牛膝纳米载体在抗菌和染料降解方面的应用,强调这种方法的新颖性。利用离子凝胶法将不同稀释度的欧蓍草(A. millefolium)载入低分子量和高分子量壳聚糖纳米载体。利用紫外可见光谱、扫描电镜、DLS、傅立叶变换红外光谱和高效液相色谱法对合成的载药壳聚糖纳米载体进行了表征。对优化后的纳米载体进一步分析了其封装效率、抗菌活性和染料降解能力。载药壳聚糖纳米载体的包封效率从 15%到 100%不等。值得注意的是,低分子量壳聚糖纳米载体具有显著的染料降解能力,对亚甲基橙(MO)的降解率高达 83%。此外,与未固定化的同类纳米粒子相比,这些纳米粒子表现出更高的功效。A. millefolium - 壳聚糖纳米粒子还显著提高了对大肠杆菌和金黄色葡萄球菌的抑制区,显示出强大的抗菌潜力。A. millefolium 和壳聚糖纳米粒子的结合展示了创新治疗应用的潜力,尤其是在废水处理和抗菌疗法方面。这项研究为开发有效的植物基纳米载体提供了新的见解,为这一领域的未来研究铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemistry & Biodiversity
Chemistry & Biodiversity 环境科学-化学综合
CiteScore
3.40
自引率
10.30%
发文量
475
审稿时长
2.6 months
期刊介绍: Chemistry & Biodiversity serves as a high-quality publishing forum covering a wide range of biorelevant topics for a truly international audience. This journal publishes both field-specific and interdisciplinary contributions on all aspects of biologically relevant chemistry research in the form of full-length original papers, short communications, invited reviews, and commentaries. It covers all research fields straddling the border between the chemical and biological sciences, with the ultimate goal of broadening our understanding of how nature works at a molecular level. Since 2017, Chemistry & Biodiversity is published in an online-only format.
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