Growth-Based Bacterial Viability Assay for Interference-Free and High-Throughput Toxicity Screening of Nanomaterials

吸光度 纳米材料 化学 细菌生长 细菌 稀释 连续稀释 高通量筛选 纳米技术 色谱法 生物化学 材料科学 生物 医学 热力学 物理 遗传学 病理 替代医学
作者
Tian Qiu,Thu Ha Nguyen,Natalie V. Hudson-Smith,Peter L. Clement,Dona-Carla Forester,Hilena Frew,Mimi N. Hang,Catherine J. Murphy,Robert J. Hamers,Z. Vivian Feng,Christy L. Haynes
出处
期刊:Analytical Chemistry [American Chemical Society]
卷期号:89 (3): 2057-2064 被引量:57
标识
DOI:10.1021/acs.analchem.6b04652
摘要

Current high-throughput approaches evaluating toxicity of chemical agents toward bacteria typically rely on optical assays, such as luminescence and absorbance, to probe the viability of the bacteria. However, when applied to toxicity induced by nanomaterials, scattering and absorbance from the nanomaterials act as interferences that complicate quantitative analysis. Herein, we describe a bacterial viability assay that is free of optical interference from nanomaterials and can be performed in a high-throughput format on 96-well plates. In this assay, bacteria were exposed to various materials and then diluted by a large factor into fresh growth medium. The large dilution ensured minimal optical interference from the nanomaterial when reading optical density, and the residue left from the exposure mixture after dilution was confirmed not to impact the bacterial growth profile. The fractions of viable cells after exposure were allowed to grow in fresh medium to generate measurable growth curves. Bacterial viability was then quantitatively correlated to the delay of bacterial growth compared to a reference regarded as 100% viable cells; data analysis was inspired by that in quantitative polymerase chain reactions, where the delay in the amplification curve is correlated to the starting amount of the template nucleic acid. Fast and robust data analysis was achieved by developing computer algorithms carried out using R. This method was tested on four bacterial strains, including both Gram-negative and Gram-positive bacteria, showing great potential for application to all culturable bacterial strains. With the increasing diversity of engineered nanomaterials being considered for large-scale use, this high-throughput screening method will facilitate rapid screening of nanomaterial toxicity and thus inform the risk assessment of nanoparticles in a timely fashion.
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