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Multi-biological combined system: A mechanistic approach for removal of multiple heavy metals

机译:多生物联合系统:一种拆除多重重金属的机制方法

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摘要

In this work, interactions of diverse fungal species by the manipulation of cell concentrations has been utilized as the driving feature for the removal of hazardous multi-metals from the aqueous solutions. This study is focused on the exploitation of internal structures of microbes as a repository of lead (Pb(II)) and nickel (Ni(II)). For the concerned purpose 24 heavy metal resistant fungi are isolated from different industrial waste sites to form different microbial combinations as a single unit 'consortia' for achieving highest possible removal rates. Polymerase chain reaction and DNA sequencing are involved for the biochemical characterization and phylogenetic analysis of the screened isolates. The identification and screening studies reveal isolated strains as two Pb resistant fungi viz. K1SF-Pb15 (Aspergillus terreus) and SEF-Pb (Talaromyces islandicus) which have shown metal removal up to 93% and two Ni(II) tolerant fungal isolates namely, MEF-Ni-11 (Neurospora crassa) and Ni-1 (Aspergillus flavus) with removal efficiency of more than 91%. Relationship has been validated between the biosorption capacity and efficiency of the novel consortium under the influence of variable pH, time duration, initial concentration of Pb(II) and Ni(II), and inoculum size which has led to the foundation of effective and economical parameters for its exploitation in practical fields. The fungal consortia when applied on various industrial effluents has exhibited more than 95% of removal for both Pb(II) and Ni(II) simultaneously. The detailed mechanistic insight has shown the involvement of physical, chemical and ionic forces for the removal of heavy metals. So the designed novel multi-biological combined system acted as a repository for Pb(II) and Ni(II) ions with a greater potential which can be guided by the mechanistic methodology for the retrieval and remediation of multiple heavy metals from the real waste water samples. (C) 2021 Elsevier Ltd. All rights reserved.
机译:在这项工作中,通过操纵细胞浓度的不同真菌物种的相互作用被用作从水溶液中去除有害多金属的驱动特征。本研究专注于利用微生物内部结构作为铅的储存(Pb(II))和镍(Ni(II))。对于有关目的,24重金属抗性真菌从不同的工业废物场分离,形成不同的微生物组合,作为单一单位的组成,以实现最高的拆除速率。聚合酶链反应和DNA测序涉及筛选分离株的生物化学表征和系统发育分析。鉴定和筛选研究将分离的菌株显示为两种PB抗性真菌viz。 K1SF-PB15(Aspergillus Terreus)和SEF-PB(Talaromyces islandsicus),其显示金属去除高达93%和两个Ni(II)耐受性真菌分离株,即MeF-Ni-11(Neurospora Crassa)和Ni-1(Aspergillus意大利士)除去效率超过91%。在可变pH,时间持续时间,Pb(II)和Ni(II)和II(II)的影响下的新型联盟的生物吸附能力和效率之间的验证了关系与导致有效且经济的基础实用领域利用的参数。在各种工业污水上施加时的真菌联盟已经同时表现出超过95%的PB(II)和Ni(II)的去除。详细的机械洞察力表明了物理,化学和离子力的参与,以便去除重金属。因此,设计的新型多生物组合系统作为Pb(II)和Ni(II)离子的储存库,其具有更大的潜力,其可以通过机械方法的检索和修复来自真实废水的多重重金属的机械方法引导样品。 (c)2021 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Chemosphere》 |2021年第8期|130018.1-130018.13|共13页
  • 作者单位

    Maharishi Markandeshwar Deemed Be Univ Dept Biotechnol Mullana Ambala 133207 Haryana India;

    Panjab Univ Dept Environm Studies Chandigarh 160014 India|Panjab Univ Dept Chem Chandigarh 160014 India|Panjab Univ Ctr Adv Studies Chandigarh 160014 India;

    Panjab Univ Dept Environm Studies Chandigarh 160014 India;

    Maharishi Markandeshwar Deemed Be Univ Dept Biotechnol Mullana Ambala 133207 Haryana India;

    King Saud Univ Coll Sci Chem Dept Riyadh 11451 Saudi Arabia;

    Princess Nourah Bint Abdulrahman Univ Coll Sci Dept Chem Riyadh 11671 Saudi Arabia;

    King Saud Univ Coll Sci Chem Dept Riyadh 11451 Saudi Arabia;

    Najran Univ Fac Sci & Arts Dept Chem Najran 11001 Saudi Arabia|Najran Univ Promising Ctr Sensors & Elect Devices PCSED Najran 11001 Saudi Arabia;

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

    Consortia; Fungi; Heavy metals; Biosorption capacity;

    机译:Commortia;真菌;重金属;生物吸收能力;

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