A microbiome-biochar composite synergistically eliminates the environmental risks of antibiotic mixtures and their toxic byproducts.

Journal of hazardous materials Pub Date : 2024-10-05 Epub Date: 2024-08-09 DOI:10.1016/j.jhazmat.2024.135474
Seungdae Oh, Anh H Nguyen, Ji-Su Kim, Sang-Yeop Chung, Sung Kyu Maeng, Young-Hoon Jung, Kyungjin Cho
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Abstract

This study developed a continuous reactor system employing a hybrid hydrogel composite synthesized using a complex sludge microbiome and an adsorbent (HSA). This HSA-based system effectively eliminated the environmental risks associated with a mixture of the antibiotics ciprofloxacin and sulfamethoxazole, which exhibited higher toxicity in combination than individually at environmentally relevant levels. Analytical chemistry experiments revealed the in-situ generation of various byproducts (BPs) within the bioreactor system, with two of these BPs recording toxicity levels that surpassed those of their parent compound. The HSA approach successfully prevented the functional microbiome from being washed out of the reactor, while HSA efficiently removed antibiotic residues in their original and BP forms through synergistic adsorptive and biotransformation mechanisms, ultimately reducing the overall ecotoxicity. The use of HSA thus demonstrates promise not only as a mean to reduce the threat posed by toxic antibiotic residues to aquatic ecosystems but also as a practical solution to operational challenges, such as biomass loss/washout, that are frequently encountered in various environmental bioprocesses.

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微生物群-生物炭复合材料可协同消除抗生素混合物及其有毒副产品对环境造成的风险。
本研究开发了一种连续反应器系统,该系统采用了一种利用复杂污泥微生物群和吸附剂(HSA)合成的混合水凝胶复合材料。这种基于 HSA 的系统可有效消除环丙沙星和磺胺甲噁唑两种抗生素混合物对环境造成的风险,这两种抗生素在环境相关水平上的毒性组合高于单独使用时的毒性。分析化学实验显示,在生物反应器系统内原位生成了各种副产品(BPs),其中两种副产品的毒性水平超过了其母体化合物。HSA 方法成功地防止了功能微生物群被冲出反应器,同时 HSA 通过协同吸附和生物转化机制有效地去除了抗生素残留物的原形和 BP,最终降低了整体生态毒性。因此,使用 HSA 不仅可以减少有毒抗生素残留物对水生生态系统造成的威胁,还可以切实解决各种环境生物处理过程中经常遇到的生物量损失/冲洗等操作难题。
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