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藻类生物修复在有机、无机和新兴污染物方面的进展。

Advancement in algal bioremediation for organic, inorganic, and emerging pollutants.

机构信息

Institute of Aquatic Science and Technology, College of Hydrosphere, National Kaohsiung University of Science and Technology, Kaohsiung City, 81157, Taiwan.

Institute of Aquatic Science and Technology, College of Hydrosphere, National Kaohsiung University of Science and Technology, Kaohsiung City, 81157, Taiwan; Sustainable Environment Research Centre, College of Hydrosphere, National Kaohsiung University of Science and Technology, Kaohsiung City, 81157, Taiwan; Department of Marine Environmental Engineering, College of Hydrosphere, National Kaohsiung University of Science and Technology, Kaohsiung City, 81157, Taiwan.

出版信息

Environ Pollut. 2023 Jan 15;317:120840. doi: 10.1016/j.envpol.2022.120840. Epub 2022 Dec 7.

Abstract

Rapidly changing bioremediation prospects are key drive to develop sustainable options that can offer extra benefits rather than only environmental remediation. Algal remediating is gaining utmost attention due to its mesmerising sustainable features, removing odour and toxicity, co-remediating numerous common and emerging inorganic and organic pollutants from gaseous and aqueous environments, and yielding biomass for a range of valuable products refining. Moreover, it also improves carbon footprint via carbon-capturing offers a better option than any other non-algal process for several high CO-emitting industries. Bio-uptake, bioadsorption, photodegradation, and biodegradation are the main mechanisms to remediate a range of common and emerging pollutants by various algae species. Bioadsorption was a dominant remediation mechanism among others implicating surface properties of pollutants and algal cell walls. Photodegradable pollutants were photodegraded by microalgae by adsorbing photons on the surface and intracellularly via stepwise photodissociation and breakdown. Biodegradation involves the transportation of selective pollutants intracellularly, and enzymes help to convert them into simpler non-toxic forms. Robust models are from the green microalgae group and are dominated by Chlorella species. This article compiles the advancements in microalgae-assisted pollutants remediation and value-addition under sustainable biorefinery prospects. Moreover, filling the knowledge gaps, and recommendations for developing an effective platform for emerging pollutants remediation and realization of commercial-scale algal bioremediation.

摘要

快速变化的生物修复前景是开发可持续选择的关键驱动力,这些选择除了环境修复外,还能提供额外的好处。由于藻类修复具有令人着迷的可持续特性,它正在引起人们的极大关注,这些特性包括去除气味和毒性、从气体和水环境中共同修复众多常见和新兴的无机和有机污染物,以及产生用于一系列有价值产品精炼的生物质。此外,它还通过碳捕获来改善碳足迹,为一些高 CO 排放行业提供了比任何其他非藻类工艺更好的选择。生物吸收、生物吸附、光降解和生物降解是各种藻类物种修复一系列常见和新兴污染物的主要机制。生物吸附是其他涉及污染物和藻类细胞壁表面特性的修复机制中的主导机制。可光降解的污染物通过微藻在表面和细胞内通过逐步光解和分解吸附光子进行光降解。生物降解涉及选择性污染物在细胞内的运输,酶有助于将其转化为更简单的无毒形式。稳健的模型来自绿色微藻组,主要由小球藻物种主导。本文综述了在可持续生物炼制前景下,微藻辅助污染物修复和增值的进展。此外,还填补了知识空白,并为开发新兴污染物修复的有效平台和实现藻类生物修复的商业化规模提出了建议。

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