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阿戈维特™ 银纳米颗粒的作用:促进植物生长且无细胞遗传毒性损伤

Argovit™ Silver Nanoparticles Effects on : Plant Growth Promotion without Cyto Genotoxic Damage.

作者信息

Casillas-Figueroa Francisco, Arellano-García María Evarista, Leyva-Aguilera Claudia, Ruíz-Ruíz Balam, Luna Vázquez-Gómez Roberto, Radilla-Chávez Patricia, Chávez-Santoscoy Rocío Alejandra, Pestryakov Alexey, Toledano-Magaña Yanis, García-Ramos Juan Carlos, Bogdanchikova Nina

机构信息

Escuela de Ciencias de la Salud, UABC, Blvd. Zertuche y Blvd., De los Lagos S/N Fracc, Valle Dorado, 22890 Ensenada, Baja California, Mexico.

Facultad de Ciencias, UABC, Carretera Transpeninsular Ensenada-Tijuana No. 3917 Col. Playitas, 22860 Ensenada, Baja California, Mexico.

出版信息

Nanomaterials (Basel). 2020 Jul 16;10(7):1386. doi: 10.3390/nano10071386.

Abstract

Due to their antibacterial and antiviral effects, silver nanoparticles (AgNP) are one of the most widely used nanomaterials worldwide in various industries, e.g., in textiles, cosmetics and biomedical-related products. Unfortunately, the lack of complete physicochemical characterization and the variety of models used to evaluate its cytotoxic/genotoxic effect make comparison and decision-making regarding their safe use difficult. In this work, we present a systematic study of the cytotoxic and genotoxic activity of the commercially available AgNPs formulation Argovit™ in . The evaluated concentration range, 5-100 µg/mL of metallic silver content (85-1666 µg/mL of complete formulation), is 10-17 times higher than the used for other previously reported polyvinylpyrrolidone (PVP)-AgNP formulations and showed no cytotoxic or genotoxic damage in . Conversely, low concentrations (5 and 10 µg/mL) promote growth without damage to roots or bulbs. Until this work, all the formulations of PVP-AgNP evaluated in regardless of their size, concentration, or the exposure time had shown phytotoxicity. The biological response observed in exposed to Argovit™ is caused by nanoparticles and not by silver ions. The metal/coating agent ratio plays a fundamental role in this response and must be considered within the key physicochemical parameters for the design and manufacture of safer nanomaterials.

摘要

由于其抗菌和抗病毒作用,银纳米颗粒(AgNP)是全球各行业中使用最广泛的纳米材料之一,例如在纺织品、化妆品和生物医学相关产品中。不幸的是,缺乏完整的物理化学表征以及用于评估其细胞毒性/基因毒性作用的多种模型,使得就其安全使用进行比较和决策变得困难。在这项工作中,我们对市售的AgNPs制剂Argovit™在[具体实验对象]中的细胞毒性和基因毒性活性进行了系统研究。所评估的金属银含量浓度范围为5 - 100 µg/mL(完整制剂为85 - 1666 µg/mL),比其他先前报道的聚乙烯吡咯烷酮(PVP)-AgNP制剂所使用的浓度高10 - 17倍,并且在[具体实验对象]中未显示出细胞毒性或基因毒性损伤。相反,低浓度(5和10 µg/mL)促进生长且对根或鳞茎无损伤。在这项工作之前,在[具体实验对象]中评估的所有PVP - AgNP制剂,无论其尺寸、浓度或暴露时间如何,均显示出植物毒性。在暴露于Argovit™的[具体实验对象]中观察到的生物反应是由纳米颗粒引起的,而非银离子。金属/包覆剂比例在这种反应中起基本作用,并且在设计和制造更安全的纳米材料的关键物理化学参数中必须予以考虑。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/81e2/7408422/57ba99c8b8b2/nanomaterials-10-01386-g001.jpg

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