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首页> 外文期刊>Chemosphere >Combination of the endophytic manganese-oxidizing bacterium Pantoea eucrina SS01 and biogenic Mn oxides: An efficient and sustainable complex in degradation and detoxification of malachite green
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Combination of the endophytic manganese-oxidizing bacterium Pantoea eucrina SS01 and biogenic Mn oxides: An efficient and sustainable complex in degradation and detoxification of malachite green

机译:内生锰氧化菌Pantoeaeucrina SS01和生物锰氧化物的组合:孔雀石绿的降解和排毒中有效和可持续的复合物

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摘要

Recently, Mn oxides (MnOxs) have been attracting considerable interest in the oxidation of organic pollutants. However, the reduction of MnOx in these reactions leads to the deactivation of the catalyst, which must be frequently regenerated. We evaluated the application of a manganese-oxidizing bacterium (MOB) and MnOx in removing toxic dyes. We studied the co-function of a plant-endophytic MOB, Pantoea eucrina SS01, with its biogenerated MnOx and evaluated the detoxification activity and chemical transformation mechanisms of the complex in malachite green (MG) degradation. We found a synergistic effect between MnOx and the strain. Particularly, strain SS01 could adsorb MG but could not degrade it, whereas the addition of Mn(II) promoted MG degradation by the formation of a complex containing the bacterium and MnOx aggregates (SS01-bio-MnOx), with distinct morphology characteristics. The complex showed a marked sustainability in the degradation of MG into less toxic or non-toxic metabolites. In this process, strain SS01 might have enhanced the regeneration of MnOx, accelerating MG degradation. Our data not only contribute to understanding the mechanism of MG removal by the SS01-bio-MnOx complex, but also provide a scientific basis for the future application of MOB and MnOx.
机译:最近,Mn氧化物(MNOX)一直在吸引有机污染物氧化的大量兴趣。然而,这些反应中的MNOX的还原导致催化剂的失活,该催化剂必须经常再生。我们评估了氧化锰氧化细菌(MOB)和MNO在除去有毒染料中的应用。我们研究了植物 - 内甲虫(Pantoea Eucrina SS01)的共函数,其生物培养的MNOX,并评估了孔雀石绿(Mg)降解中复合物的解毒活性和化学转化机制。我们发现了Mnox和菌株之间的协同效应。特别地,菌株SS01可以吸附Mg但不能降解它,而通过形成含有细菌和MnOx聚集体(SS01-Bio-MNOX)的络合物,添加MN(II)促进Mg降解,具有不同的形态学特性。该综合体显示出明显的可持续性,使Mg的降解成毒性或非毒性代谢物较小。在该过程中,菌株SS01可以增强MNO的再生,加速Mg降解。我们的数据不仅有助于了解SS01-BIO-MNOX复合物的MG拆除机制,而且还为未来的MOB和MNOX应用提供科学依据。

著录项

  • 来源
    《Chemosphere》 |2021年第2期|130785.1-130785.10|共10页
  • 作者单位

    Shandong Normal Univ Coll Life Sci Jinan 250014 Peoples R China;

    Shandong Normal Univ Coll Life Sci Jinan 250014 Peoples R China;

    Shandong Normal Univ Coll Life Sci Jinan 250014 Peoples R China;

    Shandong Normal Univ Coll Life Sci Jinan 250014 Peoples R China;

    Shandong Normal Univ Coll Life Sci Jinan 250014 Peoples R China;

    Shandong Normal Univ Coll Life Sci Jinan 250014 Peoples R China;

    Shandong Normal Univ Coll Life Sci Jinan 250014 Peoples R China;

  • 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

    Malachite green; Manganese-oxidizing bacteria; Mn oxides; Sustainability; Synergistic effect;

    机译:孔雀石绿色;锰氧化细菌;Mn氧化物;可持续性;协同效应;

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