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环境和工程条件的变化改变了断裂页岩细菌的质膜脂组。

Changes in environmental and engineered conditions alter the plasma membrane lipidome of fractured shale bacteria.

机构信息

Natural Resources and Earth Systems Science, University of New Hampshire , Durham, New Hampshire, USA.

Department of Civil and Environmental Engineering, University of New Hampshire , Durham, New Hampshire, USA.

出版信息

Microbiol Spectr. 2024 Jan 11;12(1):e0233423. doi: 10.1128/spectrum.02334-23. Epub 2023 Dec 7.

Abstract

Microorganisms inadvertently introduced into the shale reservoir during fracturing face multiple stressors including brine-level salinities and starvation. However, some anaerobic halotolerant bacteria adapt and persist for long periods of time. They produce hydrogen sulfide, which sours the reservoir and corrodes engineering infrastructure. In addition, they form biofilms on rock matrices, which decrease shale permeability and clog fracture networks. These reduce well productivity and increase extraction costs. Under stress, microbes remodel their plasma membrane to optimize its roles in protection and mediating cellular processes such as signaling, transport, and energy metabolism. Hence, by observing changes in the membrane lipidome of model shale bacteria, WG10, and mixed consortia enriched from produced fluids under varying subsurface conditions and growth modes, we provide insight that advances our knowledge of the fractured shale biosystem. We also offer data-driven recommendations for improving biocontrol efficacy and the efficiency of energy recovery from unconventional formations.

摘要

在压裂过程中,微生物会无意中被引入页岩储层,这些微生物会受到多种压力源的影响,包括盐水盐度和饥饿。然而,一些耐盐厌氧菌会适应并长时间存活下来。它们会产生硫化氢,使储层酸化并腐蚀工程基础设施。此外,它们会在岩石基质上形成生物膜,降低页岩渗透率并堵塞裂缝网络。这会降低油井产能并增加开采成本。在压力下,微生物会重塑其质膜,以优化其在保护和介导细胞过程(如信号转导、运输和能量代谢)中的作用。因此,通过观察模型页岩细菌 WG10 和从产液中富集的混合群落在不同地下条件和生长模式下的膜脂组学变化,我们提供了有助于了解裂缝页岩生物系统的见解。我们还提供了数据驱动的建议,以提高生物控制效果和从非常规地层中回收能源的效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd29/10782966/43e63fae76d2/spectrum.02334-23.f001.jpg

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