提高我们对环境应激影响和微生物组反应的理解

Christopher Weisener
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摘要

在本世纪的过程中,确定成本效益/低维护的解决方案来处理接收流域的污染物将是非常重要的。采用这些策略将涉及更好地理解与这些受污染地点相比,什么是“自然”环境。传统的地球化学测试和标准微生物群落分析(例如,DNA分析)或使用分离物在推断细菌群落实时活动过程的能力方面可能受到限制。近年来,基因组学在人为胁迫条件下微生物组鉴定中的应用取得了很大进展。在许多情况下,微生物的活动将直接影响地表和地下水柱以及污染沉积物环境的化学条件,控制营养物质和污染物的命运。出现了以下问题:可以使用的基线或参考系统是什么?哪些指标可用于研究有毒金属和有机污染物的迁移、循环和生物利用度的长期和短期控制?可以使用的基准或参考系统是什么?哪些指标可用于研究有毒金属和有机污染物的迁移、循环和生物利用度的长期和短期控制?在许多情况下,水中化学氧化和还原性成分的平衡将控制在自然和/或应用系统(例如人工湿地或生物反应器)中观察到的化学和营养梯度的发展。在这些情况下,生物地球化学系统将根据其有利的热力学结果决定特定代谢途径的方向和开始,这是大多数生物修复介质(即微生物)的问题。此外,化学变化的程度(毒性或降解产物)可以直接与它们的生物活性的比例联系起来。在本报告中,将讨论突出自然(基线)和人为影响景观的对比案例研究。重点将是利用新兴的地球化学应用组学识别和连接物理化学过程与微生物群落功能,并确定新的污染物生物指标。
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Improving our Understanding of Environmental Stress Impacts and Responses of the Microbiome
Over the course of this century, it will be important to identify cost effective/low maintenance solutions for treating contaminants in receiving watersheds. Adopting these strategies will involve a better understanding of what defines a “natural” environment compared to these contaminated sites. Traditional geochemical testing and standard microbial community analyses (e.g., DNA profiling) or using isolates can be limited with respect to their ability to infer real-time, active processes of bacterial communities. In recent years the application of genomics to identify the microbial microbiome in anthropogenic stressed conditions has advanced considerably. In many cases, the activity of microorganisms will directly impact the chemical conditions in both surface and subsurface water column and contaminated sediment environments controlling the fate of nutrients and contaminants alike. Questions arise such as: What are the baselines or reference systems that can be used? What indices can be used to study the long-term and short-term controls on the mobility, cycling, and bioavailability of toxic metals and organic contaminants? What are the baselines or reference systems that can be used? What indices can be used to study the long-term and short-term controls on the mobility, cycling, and bioavailability of toxic metals and organic contaminants? In many cases the balance of chemical oxidizing and reducing components in water will control the development of chemical and nutrient gradients observed in either natural and/or applied systems (e.g., constructed wetlands or bioreactors). In these cases, biogeochemical systems will determine the direction and onset of specific metabolic pathways as defined by their favorable thermodynamic outcome, an issue for most bioremediators (i.e., microorganisms). Also, the degree of chemical alteration (toxicity or degradation products) can be directly linked to the proportion of their biological activity. In this presentation, contrasting case studies highlighting natural (baseline) and anthropogenically impacted landscapes will be discussed. The focus will be on identifying and linking physicochemical processes to microbial community function using emerging omics for geochemical applications and ascertaining novel contaminant bioindicators.
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