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开发微生物群落结构指数(MCSI)作为评估和优化生物修复性能的方法。

Developing a microbial community structure index (MCSI) as an approach to evaluate and optimize bioremediation performance.

机构信息

GSI Environmental Inc, 13949 West Colfax Ave, Suite 210, Lakewood, CO, 80401, USA.

Jacobs, 120 St. James Ave, Boston, MA, 02116, USA.

出版信息

Biodegradation. 2024 Oct;35(6):993-1006. doi: 10.1007/s10532-024-10093-2. Epub 2024 Jul 17.

Abstract

Much attention is placed on organohalide-respiring bacteria (OHRB), such as Dehalococcoides, during the design and performance monitoring of chlorinated solvent bioremediation systems. However, many OHRB cannot function effectively without the support of a diverse group of other microbial community members (MCMs), who play key roles fermenting organic matter into more readily useable electron donors, producing corrinoids such as vitamin B12, or facilitating other important metabolic processes or biochemical reactions. While it is known that certain MCMs support dechlorination, a metric considering their contribution to bioremediation performance has yet to be proposed. Advances in molecular biology tools offer an opportunity to better understand the presence and activity of specific microbes, and their relation to bioremediation performance. In this paper, we test the hypothesis that a specific microbial consortium identified within 16S ribosomal ribonucleic acid (rRNA) gene next generation sequencing (NGS) data can be predictive of contaminant degradation rates. Field-based data from multiple contaminated sites indicate that increasing relative abundance of specific MCMs correlates with increasing first-order degradation rates. Based on these results, we present a framework for computing a simplified metric using NGS data, the Microbial Community Structure Index, to evaluate the adequacy of the microbial ecosystem during assessment of bioremediation performance.

摘要

在设计和监测氯化溶剂生物修复系统时,人们高度关注能够代谢有机卤化物的细菌(如脱卤球菌属)。然而,如果没有其他微生物群落成员(MCM)的支持,许多有机卤化物还原菌(OHRB)无法有效地发挥作用,这些 MCM 成员在将有机物发酵为更易利用的电子供体、产生钴胺素(如维生素 B12)或促进其他重要代谢过程或生化反应方面发挥着关键作用。虽然已知某些 MCM 支持脱氯,但尚未提出衡量其对生物修复性能贡献的指标。分子生物学工具的进步为更好地了解特定微生物的存在和活性及其与生物修复性能的关系提供了机会。在本文中,我们检验了这样一个假设,即在 16S 核糖体核糖核酸(rRNA)基因高通量测序(NGS)数据中鉴定的特定微生物群落可以预测污染物的降解速率。来自多个污染场地的现场数据表明,特定 MCM 的相对丰度增加与一级降解速率的增加呈正相关。基于这些结果,我们提出了一个使用 NGS 数据计算简化指标的框架,即微生物群落结构指数,以在评估生物修复性能时评估微生物生态系统的充分性。

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