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Canary in the coliform mine: Exploring the industrial application limits of a microbial respiration alarm system

机译:在大肠杆菌的金丝雀:探索微生物呼吸报警系统的工业应用限制

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摘要

Fundamental ecological principles of ecosystem-level respiration are extensively applied in greenhouse gas and elemental cycle studies. A laboratory system termed CEMS (Carbon Dioxide Evolution Measurement System), developed to explore microbial biofilm growth and metabolic responses, was evaluated as an early-warning system for microbial disturbances in industrial settings: in (a) potable water system contamination, and (b) bioreactor inhibition. Respiration was detected as CO2 production, rather than O2 consumption, including aerobic and anaerobic metabolism. Design, thresholds, and benefits of the remote CO2 monitoring technology were described. Headspace CO2 correlated with contamination levels, as well as chemical (R2 > 0.83-0.96) and microbiological water quality indicators (R2 > 0.78-0.88). Detection thresholds were limiting factors in monitoring drinking water to national and international standards (0 CFU/100 mL fecal coliforms) in both open- (>1500 CFU/mL) and closed-loop CO2 measuring regimes (>100 CFU/100 mL). However, closed-loop detection thresholds allow for the detection of significant contamination events, and monitoring less stringent systems such as irrigation water (<100 CFU/mL). Whole-system respiration was effectively harnessed as an early-warning system in bioreactor performance monitoring. Models were used to deconvolute biological CO2 fluctuations from chemical CO2 dynamics, to optimize this real-time, sustainable, low-waste technology, facilitating timeous responses to biological disturbances in bioreactors.
机译:生态系统级呼吸的基本生态学原理广泛应用于温室气体和元素循环研究。被称为探索微生物生物膜生长和代谢反应的CEMS(二氧化碳进化测量系统)被称为MEMS(二氧化碳演化测量系统)被评估为工业环境中微生物干扰的预警系统:(a)饮用水系统污染,(b生物反应器抑制。呼吸被检测为CO 2生产,而不是O2消耗,包括有氧和厌氧代谢。描述了远程CO2监控技术的设计,阈值和优点。顶空CO2与污染水平相关,化学(R2> 0.83-0.96)和微生物水质指标(R2> 0.78-0.88)。检测阈值是在开放(> 1500CFU / mL)和闭环CO2测量方案(> 100 CFU / 100ml)中监测饮用水到国家和国际标准(0CFU / 100mL粪便大肠)的因素。然而,闭环检测阈值允许检测显着的污染事件,并监测诸如灌溉水(<100CFU / mL)的严格系统。在生物反应器性能监测中有效地利用全系统呼吸作为早期预警系统。模型用于从化学二氧化碳动态进行解胁迫生物二氧化碳波动,以优化这种实时,可持续,低垃圾技术,促进对生物反应器中的生物紊乱的不间断反应。

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