CyanoSol, School of Pharmacy and Life Sciences, Robert Gordon University, Aberdeen AB10 7AQ, U.K.
School of Engineering, Newcastle University, Newcastle Upon Tyne NE1 7RU, U.K.
Environ Sci Technol. 2023 Oct 31;57(43):16372-16385. doi: 10.1021/acs.est.3c05298. Epub 2023 Oct 19.
Climate change and high eutrophication levels of freshwater sources are increasing the occurrence and intensity of toxic cyanobacterial blooms in drinking water supplies. Conventional water treatment struggles to eliminate cyanobacteria/cyanotoxins, and expensive tertiary treatments are needed. To address this, we have designed a sustainable, nature-based solution using biochar derived from waste coconut shells. This biochar provides a low-cost porous support for immobilizing microbial communities, forming biologically enhanced biochar (BEB). Highly toxic microcystin-LR (MC-LR) was used to influence microbial colonization of the biochar by the natural lake-water microbiome. Over 11 months, BEBs were exposed to microcystins, cyanobacterial extracts, and live cyanobacterial cells, always resulting in rapid elimination of toxins and even a 1.6-1.9 log reduction in cyanobacterial cell numbers. After 48 h of incubation with our BEBs, the MC-LR concentrations dropped below the detection limit of 0.1 ng/mL. The accelerated degradation of cyanotoxins was attributed to enhanced species diversity and microcystin-degrading microbes colonizing the biochar. To ensure scalability, we evaluated BEBs produced through batch-scale and continuous-scale pyrolysis, while also guaranteeing safety by maintaining toxic impurities in biochar within acceptable limits and monitoring degradation byproducts. This study serves as a proof-of-concept for a sustainable, scalable, and safe nature-based solution for combating toxic algal blooms.
气候变化和淡水源的高度富营养化正在增加饮用水供应中有毒蓝藻水华的发生和强度。传统的水处理难以消除蓝藻/蓝藻毒素,需要昂贵的三级处理。为了解决这个问题,我们使用废椰子壳制成的生物炭设计了一种可持续的、基于自然的解决方案。这种生物炭为固定微生物群落提供了低成本的多孔支持,形成了生物增强生物炭(BEB)。使用高毒性微囊藻毒素-LR(MC-LR)来影响生物炭被天然湖水微生物组的微生物定殖。在 11 个月的时间里,BEB 暴露于微囊藻毒素、蓝藻提取物和活蓝藻细胞中,总是导致毒素的快速消除,甚至蓝藻细胞数量减少 1.6-1.9 个对数。用我们的 BEB 孵育 48 小时后,MC-LR 浓度降至 0.1ng/mL 以下的检测限以下。蓝藻毒素的加速降解归因于生物炭上定殖的微生物多样性和微囊藻降解微生物的增强。为了确保可扩展性,我们评估了通过批量规模和连续规模热解生产的 BEB,同时通过将生物炭中的有毒杂质保持在可接受的范围内并监测降解副产物来保证安全性。这项研究为一种可持续、可扩展和安全的基于自然的方法提供了概念验证,用于对抗有毒藻类水华。