质粒主干对多环芳烃生物修复中基因生物增强土壤微生物的偶联率、转偶联适应度和群落组装的影响

IF 6.7 Q1 ENGINEERING, ENVIRONMENTAL
Tessa M. Crosby,  and , Lauren B. Stadler*, 
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引用次数: 0

摘要

原油泄漏和有机物不完全燃烧产生的环境中的多环芳烃(PAHs)对微生物和人类具有高毒性、致突变性或致癌性。利用编码生物降解基因的微生物对多环芳烃进行生物修复是一种很有前途的环境多环芳烃净化方法。然而,由于与本地微生物群落的竞争,外源微生物的生存能力往往受到限制。基因生物增强不是依靠一种或几种细菌的存活,而是利用结合质粒将功能基因传播给原生微生物。在这项研究中,两个拷贝数调控、复制和动员基因不同的质粒主干被设计成含有一个多环芳烃双加氧酶基因(bphC),并结合到土壤细菌上,包括枯草芽孢杆菌、腐臭假单胞菌和不动杆菌,以及由这些细菌组装的合成群落。质粒的适应度效应显著影响模型多环芳烃(2,3-二羟基联苯)的共轭转移率和生物转化率。研究发现,与单一培养的细菌相比,经bphC生物增强的合成群落具有明显更高的多环芳烃降解率,这是一种协同效应。最后,结合率与合成群落中细菌的相对丰度显著相关,强调了质粒的适应度影响如何影响微生物群落的结构和功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Plasmid Backbone Impacts Conjugation Rate, Transconjugant Fitness, and Community Assembly of Genetically Bioaugmented Soil Microbes for PAH Bioremediation

Many polycyclic aromatic hydrocarbons (PAHs) in the environment resulting from crude oil spills and the incomplete combustion of organic matter are highly toxic, mutagenic, or carcinogenic to microorganisms and humans. Bioremediation of PAHs using microorganisms that encode biodegradative genes is a promising approach for environmental PAH cleanup. However, the viability of exogenous microorganisms is often limited due to competition with the native microbial community. Instead of relying on the survival of one or a few species of bacteria, genetic bioaugmentation harnesses conjugative plasmids that spread functional genes to native microbes. In this study, two plasmid backbones that differ in copy number regulation, replication, and mobilization genes were engineered to contain a PAH dioxygenase gene (bphC) and conjugated to soil bacteria including Bacillus subtilis, Pseudomonas putida, and Acinetobacter sp., as well as a synthetic community assembled from these bacteria. Fitness effects of the plasmids in transconjugants significantly impacted the rates of conjugative transfer and biotransformation rates of a model PAH (2,3-dihydroxybiphenyl). A synergistic effect was observed in which synthetic communities bioaugmented with bphC had significantly higher PAH degradation rates than bacteria grown in monocultures. Finally, conjugation rates were significantly associated with the relative abundances of bacteria in synthetic communities, underscoring how fitness impacts of plasmids can shape the microbial community structure and function.

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来源期刊
ACS Environmental Au
ACS Environmental Au 环境科学-
CiteScore
7.10
自引率
0.00%
发文量
0
期刊介绍: ACS Environmental Au is an open access journal which publishes experimental research and theoretical results in all aspects of environmental science and technology both pure and applied. Short letters comprehensive articles reviews and perspectives are welcome in the following areas:Alternative EnergyAnthropogenic Impacts on Atmosphere Soil or WaterBiogeochemical CyclingBiomass or Wastes as ResourcesContaminants in Aquatic and Terrestrial EnvironmentsEnvironmental Data ScienceEcotoxicology and Public HealthEnergy and ClimateEnvironmental Modeling Processes and Measurement Methods and TechnologiesEnvironmental Nanotechnology and BiotechnologyGreen ChemistryGreen Manufacturing and EngineeringRisk assessment Regulatory Frameworks and Life-Cycle AssessmentsTreatment and Resource Recovery and Waste Management
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