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Marine microbial community response to inorganic and organic sediment amendments in laboratory mesocosms

机译:海洋微生物群落对实验室中膜中无机和有机沉积物修正的反应

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摘要

Sediment amendments provide promising strategies of enhancing sequestration of heavy metals and degradation of organic contaminants. The impacts of sediment amendments for metal and organic remediation including apatite, organoclay (and apatite and organoclay in geotextile mats), acetate, and chitin on environmental microbial communities in overlying water and sediment profiles are reported here. These experiments were performed concurrent with an ecotoxicity evaluation (data submitted in companion paper) and X-ray absorption spectroscopy of zinc speciation post apatite amendments. X-ray absorption spectra showed that a modest modification of zinc speciation occurred in amended treatments. Significant changes in both bacterial cell densities and populations were observed in response to amendments of apatite+organoclay, chitin, and acetate. The enriched bacteria and breakdown of these amendments were likely attributed to water quality degradation (e.g. ammonia and dissolved oxygen). Molecular fingerprints of bacterial communities by denaturant gradient gel electrophoresis (DGGE) showed that distinct bacterial populations occurred in overlying waters from different amendments: apatite+organoclay led to the dominance of Gammaproteobacteria, acetate enriched Alphaproteobacteria, and chitin treatment led to a dominance of Bacteroidetes and Alphaproteobacteria. In amended sediments, Firmicutes, Bacteroidetes, and Deltaproteobacteria (Desulfovibrio) were commonly found with chitin and apatite+ chitin treatments. Finally, sulfate-reducing bacteria (e.g. Desulfovibrio) and metal-reducing bacteria were also recovered with most probable number (MPN) analyses in treatments with acetate, chitin, and apatite+chitin. These geochemically important bacteria were stimulated by amendments and may play critical functional roles in the metal and organic contaminant remediation process for future investigations of contaminated sediments.
机译:沉积物修正提供了增强重金属螯合和有机污染物降解的有前途的策略。本文报道了沉积物改良剂对金属和有机物的修复作用,包括磷灰石,有机粘土(以及土工织物中的磷灰石和有机粘土),乙酸盐和几丁质对上覆水和沉积物剖面中环境微生物群落的影响。这些实验与生态毒性评估(数据在伴侣论文中提交)以及磷灰石改良剂后锌形成的X射线吸收光谱法同时进行。 X射线吸收光谱表明,在修正的处理中锌形态发生了适度的改变。响应磷灰石+有机粘土,甲壳质和乙酸盐的修饰,观察到细菌细胞密度和种群均发生了显着变化。这些细菌的富集和分解可能归因于水质下降(例如氨和溶解氧)。变性梯度凝胶电泳(DGGE)对细菌群落的分子指纹显示,在不同的补水作用下,上覆水域中出现了不同的细菌种群:磷灰石+有机粘土导致了γ-变形杆菌的优势,醋酸盐富集的α-变形细菌的优势,几丁质处理导致了拟杆菌和细菌的优势。丙酸杆菌。在经过修正的沉积物中,通常使用甲壳素和磷灰石+甲壳素处理发现硬毛菌,拟杆菌属和变形杆菌(Desulfovibrio)。最后,在醋酸盐,甲壳素和磷灰石+甲壳素处理中,硫酸盐还原菌(例如Desulfovibrio)和金属还原菌也以最可能数(MPN)分析被回收。这些地球化学上重要的细菌受到修饰的刺激,并可能在金属和有机污染物的修复过程中发挥重要的功能性,以供将来对污染的沉积物进行研究。

著录项

  • 来源
    《Ecotoxicology and Environmental Safety》 |2011年第7期|p.1931-1941|共11页
  • 作者单位

    Department of Earth Sciences, University of Southern California, Los Angeles, CA 90089, USA;

    Department of Earth Sciences, University of Southern California, Los Angeles, CA 90089, USA;

    Department of Earth Sciences, University of Southern California, Los Angeles, CA 90089, USA;

    53560 Hull Street, Code 7175, SPAWAR Systems Center-Pacific, San Diego, CA 92152, USA;

    53560 Hull Street, Code 7175, SPAWAR Systems Center-Pacific, San Diego, CA 92152, USA;

    United States Environmental Protection Agency, National Risk Management Research Laboratory, Cincinnati, OH 45224, USA;

    Department of Earth Sciences, University of Southern California, Los Angeles, CA 90089, USA;

    53560 Hull Street, Code 7175, SPAWAR Systems Center-Pacific, San Diego, CA 92152, USA;

  • 收录信息 美国《科学引文索引》(SCI);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

    bacterial community; amendments; marine sediments; mesocosms;

    机译:细菌群落;修正案;海洋沉积物;中观;
  • 入库时间 2022-08-17 13:26:53

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