Degradation and Toxicity Analysis of a Reactive Textile Diazo Dye-Direct Red 81 by Newly IsolatedBacillussp. DMS2

被引:35
作者
Amin, Shivani [1 ]
Rastogi, Rajesh Prasad [1 ]
Chaubey, Mukesh Ghanshyam [2 ]
Jain, Kunal [1 ]
Divecha, Jyoti [3 ]
Desai, Chirayu [4 ]
Madamwar, Datta [1 ,4 ]
机构
[1] Sardar Patel Univ, Postgrad Dept Biosci, UGC Ctr Adv Study, Satellite Campus, Bakrol, India
[2] Sardar Patel Univ, Shree AN Patel PG Inst Sci & Res, Dept Biotechnol, Anand, Gujarat, India
[3] Sardar Patel Univ, Dept Stat, Vallabh Vidyanagar, Gujarat, India
[4] Charotar Univ Sci & Technol CHARUSAT, PD Patel Inst Appl Sci, Changa, India
关键词
Direct Red 81; toxicity; Caenorhabditis elegans; Lemna minor; biodegradation; response surface methodology; RESPONSE-SURFACE METHODOLOGY; AZO DYES; AEROBIC DECOLORIZATION; BY-PRODUCT; DETOXIFICATION; OPTIMIZATION; EFFLUENT; PHYTOTOXICITY; REDUCTION; LACCASE;
D O I
10.3389/fmicb.2020.576680
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
An efficient diazo dye degrading bacterial strain,Bacillussp. DMS2 was isolated from a long-term textile dye polluted environment. The strain was assessed for its innate ability to completely degrade and detoxify Direct Red 81 (DR81) textile dye under microaerophilic conditions. The degradation ability of strain showed significant results on optimizing the nutritional and environmental parameters. Based on statistical models, maximum efficiency of decolorization achieved within 24 h for 100 mg/l of dye supplemented with glucose (0.02%), MgSO4(0.002%) and urea (0.5%) at 30 degrees C and pH (7.0). Moreover, a significant catabolic induction of a laccase and azoreductase suggested its vital role in degrading DR81 into three distinct metabolites (intermediates) as by-products. Further, toxicity analysis of intermediates were performed using seeds of common edible plants, aquatic plant (phytotoxicity) and the nematode model (animal toxicity), which confirmed the non-toxic nature of intermediates. Thus, the inclusive study of DMS2 showed promising efficiency in bioremediation approach for treating industrial effluents.
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页数:12
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