合成银纳米粒子的白花布尔花生物愈伤组织的光催化和抗菌性能

Wudali Narasimha Sudheer, Juhi Puthukulangara Jaison, Praveen Nagella , Kadanthottu Sebastian Joseph
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引用次数: 0

摘要

植物组织培养在植物生物技术中发挥着关键作用,为纳米颗粒的合成提供了创新和可靠的途径。该方法安全、可复制、有效且具有环境可持续性。尽管绿色合成方法的有效性已得到证实,但用于纳米颗粒合成的植物愈伤组织提取物仍处于适度研究阶段。目前的研究填补了这一空白,利用一种已被证实具有潜在药理特性的重要药用植物白花草(Boerhavia diffusa)愈伤组织提取物合成了生态友好的银纳米颗粒(Ag-NPs)。利用UV-Vis光谱、SEM、FTIR和XRD等手段对合成的布尔花介导的Ag-NPs (BD-Ag-NPs)进行了表征。光谱分析显示,在420 nm波长处,BD-Ag-NPs的平均尺寸为9 nm。能量色散x射线(EDX)分析表明,银离子占纳米粒子溶液总重量的51.78 %,而通过XRD证实了BD-Ag-NPs的晶体结构。利用愈伤组织中存在的植物成分进行盖帽,FTIR分析证实Ag离子还原为Ag- nps。此外,BD-Ag-NPs还具有降解纺织染料和广谱抗菌活性等功能特性。目前的研究强调了利用愈伤组织衍生的纳米颗粒用于可持续环境和生物医学应用的潜力。本研究推进了利用组织培养系统合成绿色纳米颗粒的应用,为解决全球挑战做出了重大贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Photocatalytic and antimicrobial properties of Boerhavia diffusa bio-callus synthesized Silver nanoparticles
Plant tissue culture plays a pivotal role in plant biotechnology, and offers innovative and reliable avenues for synthesizing nanoparticles. The approach is safe, replicable, and efficient for therapeutic and environmental sustainability. Despite the proven efficiency of green synthesis approaches, plant callus extracts for nanoparticle synthesis remain moderately investigated. The current study bridges the gap by synthesizing ecofriendly silver nanoparticles (Ag-NPs) using callus extracts of Boerhavia diffusa (Punarnava), an important medicinal plant with proven potential pharmacological properties. These synthesized Boerhavia diffusa-mediated Ag-NPs (BD-Ag-NPs) were characterized using UV-Vis spectroscopy, SEM, FTIR, and XRD. Spectral analysis showed spherical-shaped BD-Ag-NPs with an average size of 9 nm at wavelength 420 nm. Energy-dispersive X-ray (EDX) analysis revealed that silver ions constituted 51.78 % of the total weight of the nanoparticle solutions, while the crystalline structure of the BD-Ag-NPs was confirmed through XRD. Phytoconstituents present in the callus were utilized for capping and the reduction of Ag ions to Ag-NPs was confirmed through FTIR analysis. In addition, BD-Ag-NPs exhibited functional properties like textile dye degradation and broad-spectrum antimicrobial activities against bacterial and fungal pathogens. The current study highlights the potential of employing callus-derived nanoparticles for sustainable environment and biomedical applications. This study advances the application of green nanoparticle synthesis using tissue culture systems and makes significant contributions to addressing global challenges.
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