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Improved Algal Toxicity Test System for Robust Omics-Driven Mode-of-Action Discovery in Chlamydomonas reinhardtii

机译:改良的藻类毒性测试系统用于莱茵衣藻的稳固的组学驱动作用模式发现

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摘要

Algae are key components of aquatic food chains. Consequently, they are internationally recognised test species for the environmental safety assessment of chemicals. However, existing algal toxicity test guidelines are not yet optimized to discover molecular modes of action, which require highly-replicated and carefully controlled experiments. Here, we set out to develop a robust, miniaturised and scalable Chlamydomonas reinhardtii toxicity testing approach tailored to meet these demands. We primarily investigated the benefits of synchronised cultures for molecular studies, and of exposure designs that restrict chemical volatilisation yet yield sufficient algal biomass for omics analyses. Flow cytometry and direct-infusion mass spectrometry metabolomics revealed significant and time-resolved changes in sample composition of synchronised cultures. Synchronised cultures in sealed glass vials achieved adequate growth rates at previously unachievably-high inoculation cell densities, with minimal pH drift and negligible chemical loss over 24-h exposures. Algal exposures to a volatile test compound (chlorobenzene) yielded relatively high reproducibility of metabolic phenotypes over experimental repeats. This experimental test system extends existing toxicity testing formats to allow highly-replicated, omics-driven, mode-of-action discovery.
机译:藻类是水生食物链的关键组成部分。因此,它们是国际公认的用于化学品环境安全评估的测试物种。但是,现有的藻类毒性测试指南尚未进行优化以发现分子的作用方式,这需要高度重复且经过严格控制的实验。在这里,我们着手开发一种健壮,小型化和可扩展的莱茵衣藻毒性测试方法,以满足这些需求。我们主要研究了同步培养对分子研究的好处,以及限制化学挥发但产生足够藻类生物量进行组学分析的暴露设计的好处。流式细胞仪和直接输注质谱代谢组学揭示了同步培养物样品成分的显着变化和时间分辨。密封玻璃瓶中的同步培养物在以前无法实现的高接种细胞密度下达到了足够的生长速率,在24小时内暴露时,pH漂移最小,化学损失可忽略不计。与实验重复相比,藻类暴露于挥发性测试化合物(氯苯)可产生较高的代谢表型重现性。该实验测试系统扩展了现有的毒性测试格式,可以进行高度重复的,由组学驱动的作用模式发现。

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