Lignin precursors enhance exolaccase-started humification of bisphenol A to form functional polymers

Shunyao Li , Dan Hong , Kai Sun
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Abstract

Humification plays a significant role in converting phenolic pollutants and forming heterogeneous polymers, but few studies have been performed to investigate exolaccase-started humification (ESH). Herein, the influences of lignin precursors (LPs) on exolaccase-induced bisphenol A (BPA) removal and humification were explored. In particular, the architectural features and botanical effects of the formed humification products were also tested. ESH was extremely beneficial in boosting BPA removal in the presence of LPs. Compared with LP-free (58.49%), 100% of BPA was eliminated after the reaction with ESH for 72 h. Such a process was controlled by an exolaccase-caused random assembly of radicals, which generated a large number of hydrophobic polymers through nonspecific covalent binding of C–C and/or C–O. These humified polymers were extremely stable at pH 2.0–10.0 and −20 °C to 80 °C and displayed unique functions, i.e., scavenged 2,2-diphenyl-1-picrylhydrazyl/2,2′-azino-bis3-ethylbenzothiazoline-6-sulphonic acid radicals and exerted antioxidant capacities. More importantly, the functional polymers could act as auxin analogs to increase the germination index (>100%), plant biomass, and salt tolerance of radish seedlings. Our findings disclosed that ESH could not only be optimized to mitigate the ecological risks of phenolic pollutants and sequester organic carbon in environmental bioremediation, but the resulting abundant auxin analogs also contributed to agricultural productivity.

Abstract Image

木质素前体增强外漆酶启动双酚A的腐殖化形成功能聚合物
腐殖化在转化酚类污染物和形成非均相聚合物方面发挥着重要作用,但很少有研究对漆酶引发的腐殖化(ESH)进行研究。本文探讨了木质素前体(LP)对漆酶诱导的双酚A(BPA)去除和腐殖化的影响。特别是,还测试了所形成的腐殖化产品的建筑特征和植物效果。ESH在LPs存在的情况下对促进BPA的去除非常有益。与无LP(58.49%)相比,与ESH反应72小时后,BPA的去除率为100%。这种过程是由外漆酶引起的自由基的随机组装控制的,该自由基通过C–C和/或C–O的非特异性共价结合产生大量疏水聚合物。这些增湿聚合物在pH 2.0–10.0和−20°C至80°C下极为稳定,并显示出独特的功能,即清除2,2-二苯基-1-苦基肼基/2,2′-叠氮基-双3-乙基苯并噻唑啉-6-磺酸自由基并发挥抗氧化能力。更重要的是,功能性聚合物可以作为生长素类似物,提高萝卜幼苗的发芽指数(>;100%)、植物生物量和耐盐性。我们的研究结果表明,ESH不仅可以在环境生物修复中优化以减轻酚类污染物的生态风险和螯合有机碳,而且由此产生的丰富的生长素类似物也有助于提高农业生产力。
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来源期刊
Eco-Environment & Health
Eco-Environment & Health 环境科学与生态学-生态、环境与健康
CiteScore
11.00
自引率
0.00%
发文量
18
审稿时长
22 days
期刊介绍: Eco-Environment & Health (EEH) is an international and multidisciplinary peer-reviewed journal designed for publications on the frontiers of the ecology, environment and health as well as their related disciplines. EEH focuses on the concept of “One Health” to promote green and sustainable development, dealing with the interactions among ecology, environment and health, and the underlying mechanisms and interventions. Our mission is to be one of the most important flagship journals in the field of environmental health. Scopes EEH covers a variety of research areas, including but not limited to ecology and biodiversity conservation, environmental behaviors and bioprocesses of emerging contaminants, human exposure and health effects, and evaluation, management and regulation of environmental risks. The key topics of EEH include: 1) Ecology and Biodiversity Conservation Biodiversity Ecological restoration Ecological safety Protected area 2) Environmental and Biological Fate of Emerging Contaminants Environmental behaviors Environmental processes Environmental microbiology 3) Human Exposure and Health Effects Environmental toxicology Environmental epidemiology Environmental health risk Food safety 4) Evaluation, Management and Regulation of Environmental Risks Chemical safety Environmental policy Health policy Health economics Environmental remediation
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