钛酸钡纳米颗粒在培养的牛成纤维细胞中表现出细胞相容性:皮肤暴露模型

Geovana de Carvalho Onorato, Danielle Luciana Aurora Soares do Amaral, Luiz Fernando Cappa de Oliveira, Humberto de Mello Brandao, Michele Munk
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引用次数: 0

摘要

钛酸钡纳米粒子(BaTiO3 NPs)的出现代表了技术、健康和农业综合企业等各个领域的进步。然而,生产量的增加增加了其扩散到环境中的风险,从而引发了人们对动物和人类潜在暴露的担忧,包括皮肤暴露的风险。本研究利用牛成纤维细胞模型探讨了 BaTiO3 NPs 的化学物理特性及其细胞相容性。使用扫描电子显微镜和动态光散射技术分析了 NPs 的尺寸和 Zeta 电位。拉曼光谱用于表征 BaTiO3 NPs 的组成。将牛成纤维细胞体外暴露于 NPs(0.1 至 100 µg mL-1)24 小时,使用噻唑基溴化四氮唑蓝试验和胰蓝排除试验评估细胞相容性。数据通过方差分析进行评估,平均值通过 Tukey 检验进行比较。扫描电子显微镜显示,BaTiO3 NPs 的尺寸约为 100 nm。动态光散射分析表明其水动力尺寸为 149.27 nm,多分散指数为 0.37,Zeta 电位为 -13mV。拉曼光谱分析凸显了 BaTiO3 NPs 的立方相。细胞毒性测试表明,BaTiO3 NPs 不会影响细胞存活率,10 µg mL-1 会增强细胞增殖。总之,这些发现强调了 BaTiO3 NPs 在成纤维细胞中的无毒特性,使其成为一种前景广阔、细胞兼容的纳米材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Barium Titanate Nanoparticles Exhibit Cytocompatibility in Cultured Bovine Fibroblasts: A Model for Dermal Exposure
The emergence of barium titanate nanoparticles (BaTiO3 NPs) represents an advancement in various fields such as technology, health, and agribusiness. However, increased production heightens the risk of their dispersion into the environment, thereby raising concerns about potential exposure to animals and humans, including the risk of dermal exposure. This study explores the chemical-physical properties of BaTiO3 NPs and their cytocompatibility using a bovine fibroblast cell model. The size and Zeta potential of the NPs were analyzed using scanning electron microscopy and dynamic light scattering technique. Raman spectroscopy was used to characterize the composition of the BaTiO3 NPs. Bovine fibroblasts were exposed in vitro to NPs (0.1 to 100 µg mL-1) for 24 hours to evaluate the cytocompatibility using the Thiazolyl Blue Tetrazolium Bromide assay and Trypan Blue exclusion test. The data were evaluated by analysis of variance and the means compared by the Tukey test. Scanning electron microscopy revealed that BaTiO3 NPs measured approximately 100 nm. Dynamic light scattering analysis indicated a hydrodynamic size of 149.27 nm with a polydispersion index of 0.37, and the Zeta potential was -13mV. Raman spectroscopy analysis highlighted the cubic phase of BaTiO3 NPs. Cytotoxicity tests demonstrated that BaTiO3 NPs did not affect cell viability, with 10 µg mL-1 resulting in enhanced cell proliferation. Overall, these findings underscore the non-toxic characteristics of BaTiO3 NPs in fibroblast cells, positioning them as promising and cytocompatible nanomaterials.
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