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利用[植物名称1]、[植物名称2]和[植物名称3]的树皮水提取物生物合成钯纳米颗粒用于潜在的抗氧化和抗菌应用。 (你原文中未给出具体植物名称,这里用[植物名称1]等代替了)

Biosynthesis of Palladium Nanoparticles by Using Aqueous Bark Extract of , and for Potential Antioxidant and Antimicrobial Applications.

作者信息

Coman Nastaca-Alina, Babotă Mihai, Nicolescu Alexandru, Nicolae-Maranciuc Alexandra, Berta Lavinia, Man Adrian, Chicea Dan, Farczadi Lenard, Tanase Corneliu

机构信息

Doctoral School of Medicine and Pharmacy, "George Emil Palade" University of Medicine, Pharmacy, Science, and Technology of Targu Mures, 540142 Targu Mures, Romania.

Research Center of Medicinal and Aromatic Plants, "George Emil Palade" University of Medicine, Pharmacy, Sciences and Technology of Targu Mures, 540139 Targu Mures, Romania.

出版信息

Plants (Basel). 2024 Dec 3;13(23):3390. doi: 10.3390/plants13233390.

Abstract

This study aimed to synthesize palladium nanoparticles (PdNPs) using bioactive compounds from aqueous extracts of species (, , and ) with potential biomedical applications. To optimize PdNPs biosynthesis, various parameters were explored, including the concentration of PdCl, the extract-to-PdCl ratio, and the pH of the solution. The nanoparticles were characterized using ultraviolet/visible spectroscopy (UV/Vis), Fourier-transform infrared spectroscopy (FTIR), and dynamic light scattering (DLS). Total polyphenol content was measured using the Folin-Ciocâlteu method, while antioxidant capacity was evaluated through radical neutralization assays, including ABTS and DPPH, and through iron and copper reduction tests. Antimicrobial activity was tested against Gram-positive and Gram-negative bacteria, as well as species. Phenolic compounds and flavonoids from the extracts were essential for the reduction in palladium ions and the stabilization of the nanoparticles. UV/Vis spectroscopy showed a distinct surface plasmon resonance peak, indicating the successful formation of PdNPs. FTIR analysis confirmed the interaction between the bioactive compounds and PdNPs, revealing characteristic peaks of phenolic groups. DLS analysis indicated a hydrodynamic diameter of 63.9 nm for QD-PdNPs, 48 nm for QF-PdNPs, and 63.1 nm for QP-PdNPs, highlighting good dispersion and stability in solution. Although the PdNPs did not exhibit strong antioxidant properties, they demonstrated selective antimicrobial activity, especially against and methicillin-resistant (MRSA). PdNPs also exhibited significant antifungal activity against , with a minimum inhibitory concentration (MIC) of 0.63 mg/mL, indicating their ability to compromise fungal cell integrity. This study contributes to developing eco-friendly biosynthesis methods for metallic nanoparticles and underscores the potential of PdNPs in various applications, including in the biomedical field.

摘要

本研究旨在利用来自物种(、和)水提取物中的生物活性化合物合成具有潜在生物医学应用价值的钯纳米颗粒(PdNPs)。为优化PdNPs的生物合成,探索了各种参数,包括PdCl的浓度、提取物与PdCl的比例以及溶液的pH值。使用紫外/可见光谱(UV/Vis)、傅里叶变换红外光谱(FTIR)和动态光散射(DLS)对纳米颗粒进行了表征。采用福林-酚法测定总多酚含量,通过自由基中和试验(包括ABTS和DPPH)以及铁和铜还原试验评估抗氧化能力。针对革兰氏阳性菌、革兰氏阴性菌以及物种测试了抗菌活性。提取物中的酚类化合物和黄酮类化合物对于钯离子的还原和纳米颗粒的稳定至关重要。UV/Vis光谱显示出明显的表面等离子体共振峰,表明成功形成了PdNPs。FTIR分析证实了生物活性化合物与PdNPs之间的相互作用,揭示了酚基团的特征峰。DLS分析表明,QD-PdNPs的流体动力学直径为63.9 nm,QF-PdNPs为48 nm,QP-PdNPs为63.1 nm,突出了其在溶液中的良好分散性和稳定性。尽管PdNPs没有表现出强大的抗氧化性能,但它们表现出选择性抗菌活性,尤其是对和耐甲氧西林(MRSA)。PdNPs对也表现出显著的抗真菌活性,最低抑菌浓度(MIC)为0.63 mg/mL,表明它们能够破坏真菌细胞的完整性。本研究有助于开发金属纳米颗粒的生态友好型生物合成方法,并强调了PdNPs在包括生物医学领域在内的各种应用中的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a9d/11644216/8d238c8c1115/plants-13-03390-g001.jpg

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