极端微生物代谢和放射性废物处理。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2023-10-15 DOI:10.1007/s00792-023-01312-4
Sarah Jane Butterworth, Franky Barton, Jonathan Richard Lloyd
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引用次数: 0

摘要

几十年的核活动留下了危险放射性废物的遗产,这些废物必须与生物圈隔离超过100000年。安全废物处置的首选方案是深层地下地质处置设施(GDF)。由于所需的地质时间非常长,以及待处理材料的复杂性(包括各种营养物质和电子供体/受体),微生物活动可能会在这些大型设施的安全运行中发挥关键作用。GDF环境为可能居住在设施中的微生物提供了许多代谢挑战,包括高温、压力、辐射、碱度和盐度,具体取决于所采用的具体处理概念。然而,随着在地球上最不适宜居住的环境中发现新型极端微生物,我们对生命边界的理解不断受到挑战和扩展,很明显,在GDF安全案例中必须考虑微生物,以确保对长期性能的准确预测。这篇综述探讨了极端微生物的适应,以及如何应用这些知识来挑战我们目前对GDF环境中微生物活动的假设。我们得出的结论是,无论概念如何,GDF都将由多个极端组成,在现实的环境条件下理解聚酯亲聚物的极限是非常重要的。
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Extremophilic microbial metabolism and radioactive waste disposal.

Decades of nuclear activities have left a legacy of hazardous radioactive waste, which must be isolated from the biosphere for over 100,000 years. The preferred option for safe waste disposal is a deep subsurface geological disposal facility (GDF). Due to the very long geological timescales required, and the complexity of materials to be disposed of (including a wide range of nutrients and electron donors/acceptors) microbial activity will likely play a pivotal role in the safe operation of these mega-facilities. A GDF environment provides many metabolic challenges to microbes that may inhabit the facility, including high temperature, pressure, radiation, alkalinity, and salinity, depending on the specific disposal concept employed. However, as our understanding of the boundaries of life is continuously challenged and expanded by the discovery of novel extremophiles in Earth's most inhospitable environments, it is becoming clear that microorganisms must be considered in GDF safety cases to ensure accurate predictions of long-term performance. This review explores extremophilic adaptations and how this knowledge can be applied to challenge our current assumptions on microbial activity in GDF environments. We conclude that regardless of concept, a GDF will consist of multiple extremes and it is of high importance to understand the limits of polyextremophiles under realistic environmental conditions.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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