利用小球藻对偶氮染料进行植物修复:代谢反应和抗氧化系统的综合分析

IF 4.6 2区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Algal Research-Biomass Biofuels and Bioproducts Pub Date : 2024-08-01 DOI:10.1016/j.algal.2024.103660
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引用次数: 0

摘要

直接绿 6(DG6)是一种常用于纺织工业的合成偶氮染料,因其有毒和致癌特性而对环境和健康构成重大风险。在 50 天的处理过程中,我们分析了不同浓度的 DG6 对褐藻的生物降解能力的影响,并对生长和抗氧化参数进行了表征。研究结果表明,与其他环境温度相比,在较高温度(40 °C)下,粗毛蝇能显著降低 DG6 的含量(p < 0.05)。在酸性范围 pH < 7 内,观察到在 25 天内逐渐提高了去除效率,这与较高浓度(60 mg L-1)下生物量浓度(Xm)、生产率(Px)、特定生长率(μm)和加倍时间(td)等生长指数的提高是一致的。对超氧化物歧化酶 (SOD)、过氧化氢酶 (CAT)、过氧化物酶 (POD)、抗坏血酸过氧化物酶 (APX)、偶氮还原酶和漆酶的酶和非酶抗氧化活性的诱导以及总抗坏血酸池 (AsA + DHA) 和铁还原抗氧化力 (FRAP) 的变化进行了量化。此外,通过确定偶氮还原酶对偶氮键的还原裂解以及过氧化物酶和漆酶对偶氮键的分解,阐明了基本的生物降解机制。利用气相色谱-质谱法(GC-MS)鉴定了这些分子副产物,从而揭示了 DG6 生物降解的代谢途径。这项研究强调了 C. vulgaris 作为一种可持续、低成本的偶氮染料污染水体生物修复解决方案的有效性。这项研究为进一步探索藻类在复杂有机污染物压力下的遗传和代谢适应性奠定了基础,对生态生理学、生物相互作用和进化生物学具有潜在的影响。
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Harnessing Chlorella vulgaris for the phycoremediation of azo dye: A comprehensive analysis of metabolic responses and antioxidant system

This study investigates the phycoremediation potential of microalgae Chlorella vulgaris in the degradation of Direct green 6 (DG6), a synthetic azo dye commonly used in the textile industry, which poses significant environmental and health risks due to its toxic and carcinogenic properties. Over 50 days of treatment, we analyzed the effects of varying concentrations of DG6 on the biodegradation capabilities of C. vulgaris with the characterization of growth and antioxidant parameters. The findings demonstrate that C. vulgaris reduced DG6 levels significantly (p < 0.05) at higher temperatures (40 °C) compared to other environmental ambient temperatures. Within the acidic range pH < 7 progressive removal efficiency was observed within 25 days in consistency with the enhanced growth indices of biomass concentration (Xm), productivity (Px), specific growth rate (μm), and doubling time (td) at the higher concentration of 60 mg L−1. Induction of both enzymatic and non-enzymatic antioxidant activities were quantified for superoxide dismutase (SOD), catalase (CAT), peroxidase (POD), ascorbate peroxidase (APX), azoreductase, and laccase, as well as changes in the total ascorbate pool (AsA + DHA) and ferric reducing antioxidant power (FRAP). Furthermore, the underlying biodegradation mechanisms were elucidated by identifying the reductive cleavage of azo bonds by azoreductase and breakdown by peroxidases and laccase. These molecular by-products were identified using gas chromatography–mass spectrometry (GC–MS), which shed light on the metabolic pathways involved in DG6 biodegradation. This study underscores the effectiveness of C. vulgaris as a sustainable, low-cost solution for the bioremediation of azo-dye-polluted water. This study lays the groundwork for further exploration into the genetic and metabolic adaptations of algae under complex organic pollutant stress, with potential implications for ecophysiology, biotic interactions, and evolutionary biology.

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来源期刊
Algal Research-Biomass Biofuels and Bioproducts
Algal Research-Biomass Biofuels and Bioproducts BIOTECHNOLOGY & APPLIED MICROBIOLOGY-
CiteScore
9.40
自引率
7.80%
发文量
332
期刊介绍: Algal Research is an international phycology journal covering all areas of emerging technologies in algae biology, biomass production, cultivation, harvesting, extraction, bioproducts, biorefinery, engineering, and econometrics. Algae is defined to include cyanobacteria, microalgae, and protists and symbionts of interest in biotechnology. The journal publishes original research and reviews for the following scope: algal biology, including but not exclusive to: phylogeny, biodiversity, molecular traits, metabolic regulation, and genetic engineering, algal cultivation, e.g. phototrophic systems, heterotrophic systems, and mixotrophic systems, algal harvesting and extraction systems, biotechnology to convert algal biomass and components into biofuels and bioproducts, e.g., nutraceuticals, pharmaceuticals, animal feed, plastics, etc. algal products and their economic assessment
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