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Sequencing the Oil Field Microbiome - Can Metagenomics Help Combat MIC?

机译:测序油田微生物组 - 肉体肌肉组合有助于打击麦克风吗?

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Corrosion costs between 1-5% of global gross domestic product annually. Microbiologically influenced corrosion is believed to contribute to around 20% of this. Due to the complexity of the microbial populations involved, the mechanisms of many of these processes are still poorly understood. Culture-based methods such as most probable number technique (MPN) and isolation only reveal a very small proportion of the microorganisms present, meaning that potentially problematic microorganisms are overlooked and not suitably targeted for mitigation. Due to revolutionary advances in DNA sequencing technologies, collectively known as next-generation sequencing (NGS), we are now able to sequence and identify many thousands of microorganisms in a single sample. By looking at the DNA sequences from these samples (metagenomics) we can identify what microorganisms are abundant (amplicon metagenomics), what the microorganisms are doing and even what they are capable of doing, by identifying their genomic and thus metabolic potential (through shotgun metagenomics). This wealth of information can be used to better understand specific corrosion mechanisms, target the responsible groups of microorganisms and ultimately predict their activities in order to control MIC. We present herein case studies where these new technologies have been used, which have enabled targeted mitigation strategies to minimize the impact that microorganisms have in the oil and gas industry.
机译:每年占全球国内生产总值的腐蚀成本。据信,微生物影响腐蚀达到其中的约20%。由于涉及的微生物种群的复杂性,许多这些过程的机制仍然明白很差。基于培养的方法,例如最可能的数量技术(MPN)和分离仅揭示存在的微生物比例非常小,这意味着潜在的有问题的微生物被忽视并且不适合瞄准缓解。由于DNA测序技术的革命性进展,统称为下一代测序(NGS),我们现在能够序列并识别单个样品中的数千个微生物。通过从这些样品(Metagenomics)的DNA序列来看,我们可以通过鉴定它们的基因组和代谢潜力(通过霰弹枪MetageNomics(通过霰弹枪Metagenomics)来查看来自这些样品的微生物是丰富的(扩增子肉质科),微生物正在做什么,甚至能够做些什么。 )。这种丰富的信息可用于更好地了解特定的腐蚀机制,针对责任的微生物群体,并最终预测其活动以控制麦克风。我们在本文中存在案例研究,其中使用了这些新技术,这使得有针对性的缓解策略使微生物在石油和天然气工业中的影响最小化。

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