Metabolomics Approach to Reveal the Effects of Ocean Acidification on the Toxicity of Harmful Microalgae: A Review of the Literature

Tsz-Ki Victoria Tsui, H. Kong
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Abstract

Climate change has been associated with intensified harmful algal blooms (HABs). Some harmful microalgae produce toxins that accumulate in food webs, adversely affecting the environment, public health and economy. Ocean acidification (OA) is a major consequence of high anthropogenic CO2 emissions. The carbon chemistry and pH of aquatic ecosystems have been significantly altered as a result. The impacts of climate change on the metabolisms of microalgae, especially toxin biosynthesis, remain largely unknown. This hinders the optimization of HAB mitigation for changed climate conditions. To bridge this knowledge gap, previous studies on the effects of ocean acidification on toxin biosynthesis in microalgae were reviewed. There was no solid conclusion for the toxicity change of saxitoxin-producing dinoflagellates from the genus Alexandrium after high CO2 treatment. Increased domoic acid content was observed in the diatom Pseudo-nitzschia. The brevetoxin content of Karenia brevis remained largely unchanged. The underlying regulatory mechanisms that account for the different toxicity levels observed have not been elucidated. Metabolic flux analysis is useful for investigating the carbon allocations of toxic microalgae under OA and revealing related metabolic pathways for toxin biosynthesis. Gaining knowledge of the responses of microalgae in high CO2 conditions will allow the better risk assessment of HABs in the future.
代谢组学方法揭示海洋酸化对有害微藻毒性的影响:文献综述
气候变化与有害藻华(HABs)加剧有关。一些有害的微藻产生毒素,在食物网中积累,对环境、公共卫生和经济产生不利影响。海洋酸化(OA)是人为二氧化碳高排放的一个主要后果。因此,水生生态系统的碳化学和pH值发生了显著变化。气候变化对微藻代谢,特别是毒素生物合成的影响在很大程度上仍然未知。这阻碍了针对变化的气候条件优化有害藻华的减缓。为了弥补这方面的知识差距,本文对海洋酸化对微藻毒素生物合成的影响进行了综述。高CO2处理对产石蜡毒素的甲藻的毒性变化尚无确切的结论。假尼茨藻中软骨藻酸含量增加。短克雷氏菌的短孢毒素含量基本保持不变。导致观察到的不同毒性水平的潜在调节机制尚未阐明。代谢通量分析有助于研究OA条件下有毒微藻的碳分配,揭示毒素生物合成的相关代谢途径。了解微藻在高二氧化碳条件下的反应将有助于未来更好地评估有害藻华的风险。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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