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Mechanistic insight to mycoremediation potential of a metal resistant fungal strain for removal of hazardous metals from multimetal pesticide matrix

机译:机械洞察金属抗性真菌菌株的耐受菌株免除多重农药基质危险金属的潜力

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摘要

Fungi have an exceptional capability to flourish in presence of heavy metals and pesticide. However, the mechanism of bioremediation of pesticide (lindane) and multimetal [mixture of cadmium (Cd), chromium (Cr), copper (Cu), nickel (Ni), lead (Pb), zinc (Zn)] by a fungus is little understood. In the present study, Aspergillus fumigatus, a filamentous fungus was found to accumulate heavy metals in the order [Zn(98%)Pb(95%)Cd(63%)Cr(62%)Ni(46%)Cu(37%)] from a cocktail of 30 mg L-1 multimetal and lindane (30 mg L-1) in a composite media amended with 1% glucose. Particularly, Pb and Zn uptake was enhanced in presence of lindane. Remarkably, lindane was degraded to 1.92 +/- 0.01 mg L-1 in 72 h which is below the permissible limit value (2.0 mg L-1) for the discharge of lindane into the aquatic bodies as prescribed by European Community legislation. The utilization of lindane as a cometabolite from the complex environment was evident by the phenomenal growth of the fungal pellet biomass (5.89 +/- 0.03 g L-1) at 72 h with cube root growth constant of fungus (0.0211 g(1/3) L-1/3 h(-1)) compared to the biomasses obtained in case of the biotic control as well as in presence of multimetal complex without lindane. The different analytical techniques revealed the various stress coping strategies adopted by A. fumigatus for multimetal uptake in the simultaneous presence of multimetal and pesticide. From the Transmission electron microscope coupled energy dispersive X-ray analysis (TEM-EDAX) results, uptake of the metals Cd, Cu and Pb in the cytoplasmic membrane and the accumulation of the metals Cr, Ni and Zn in the cytoplasm of the fungus were deduced. Fourier-transform infrared spectroscopy (FTIR) revealed involvement of carboxyl/amide group of fungal cell wall in metal chelation. Thus A. fumigatus exhibited biosorption and bioaccumulation as the mechanisms involved in detoxification of multimetals. (C) 2020 Elsevier Ltd. All rights reserved.
机译:真菌在重金属和农药存在下具有卓越的蓬勃发展。然而,用真菌的农药(林丹)和多算法[镉(Cd),铬(Cr),铜(Cr),镍(Ni),铅(Pb),锌(Zn)],锌(Zn),锌(Zn),锌(Zn),锌(Zn),锌(Zn),锌(Zn),锌(Zn),锌(Zn),锌(Zn),锌(Zn),锌(Zn),镍很少了解。在本研究中,发现丝状真菌在丝状真菌中累积重金属[Zn(98%)> Pb(95%)> Cd(63%)> Cr(62%)> Ni(46%) > Cu(37%)]从30mg L-1多型和林丹(30mg L-1)的复合介质中的30mg L-1多型和林丹(30mg L-1),用1%葡萄糖修正。特别是,在林烷存在下,Pb和Zn摄取得到增强。值得注意的是,林烷在72小时内降解至1.92 +/- 0.01mg L-1,其低于允许的极限值(2.0mg L-1),用于欧洲共同体立法规定的林丹排放到水生体中。从复合环境中利用林丹的利用是由真菌的真菌颗粒生物质(5.89 +/- 0.03g L-1)的现象生长明显明显,具有真菌的立方根生长常数(0.0211g(1/3 )L-1/3 H(-1))与在生物控制的情况下获得的生物量以及在没有林丹的多态复合物存在下。不同的分析技术揭示了A.Fumigatus采用的各种应力应对策略在多算法和农药同时存在的多态摄取。从透射电子显微镜耦合能量分散X射线分析(TEM-EDAX)结果,细胞质膜中的金属Cd,Cu和Pb的摄取和金属Cr,Ni和Zn的细胞质中的细胞质中的累积推断出来。傅里叶变换红外光谱(FTIR)揭示了羧基/酰胺组在金属螯合物中的真菌细胞壁的参与。因此,A. Fumigatus表现出生物吸附和生物累积作为参与多态解毒的机制。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Environmental Pollution》 |2020年第7期|114255.1-114255.10|共10页
  • 作者单位

    Indian Inst Technol Delhi Ctr Rural Dev & Technol Appl Microbiol Lab New Delhi 110016 India|UFZ Helmholtz Ctr Environm Res Dept Mol Syst Biol Permoserstr 15 D-04318 Leipzig Germany|MS Ramaiah Inst Technol Dept Biotechnol Msr Nagar 560054 Bengaluru India;

    Indian Inst Technol Delhi Ctr Rural Dev & Technol Appl Microbiol Lab New Delhi 110016 India;

    Indian Inst Technol Delhi Ctr Rural Dev & Technol Appl Microbiol Lab New Delhi 110016 India;

    Univ Delhi Dept Zool New Delhi 110007 India;

    UFZ Helmholtz Ctr Environm Res Dept Mol Syst Biol Permoserstr 15 D-04318 Leipzig Germany|Univ Leipzig Fac Biosci Pharm & Psychol Inst Biochem D-04109 Leipzig Germany;

    UFZ Helmholtz Ctr Environm Res Dept Mol Syst Biol Permoserstr 15 D-04318 Leipzig Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Bioaccumulation; Biosorption; Lindane; Multimetal; TEM-EDAX;

    机译:生物累积;生物吸附;林丹;多重;TEM-eDAX;

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