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Coupled laboratory and field investigations resolve microbial interactions that underpin persistence in hydraulically fractured shales
by
Welch, Susan A.
, Purvine, Samuel
, Eder, Elizabeth K.
, Borton, Mikayla A.
, Hoyt, David W.
, Wrighton, Kelly C.
, Carr, Timothy R.
, Cole, David R.
, Sheets, Julie M.
, Hanson, Andrea J.
, Morgan, David M.
, Nicora, Carrie D.
, Wolfe, Richard A.
, Sharma, Shikha
, Mouser, Paula J.
, Lipton, Mary S.
, Daly, Rebecca A.
, Wilkins, Michael J.
, Roux, Simon
in
hydraulic fracturing, metaproteomics, methanogenesis, Stickland reaction, metagenomics
2018
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Coupled laboratory and field investigations resolve microbial interactions that underpin persistence in hydraulically fractured shales
by
Welch, Susan A.
, Purvine, Samuel
, Eder, Elizabeth K.
, Borton, Mikayla A.
, Hoyt, David W.
, Wrighton, Kelly C.
, Carr, Timothy R.
, Cole, David R.
, Sheets, Julie M.
, Hanson, Andrea J.
, Morgan, David M.
, Nicora, Carrie D.
, Wolfe, Richard A.
, Sharma, Shikha
, Mouser, Paula J.
, Lipton, Mary S.
, Daly, Rebecca A.
, Wilkins, Michael J.
, Roux, Simon
in
hydraulic fracturing, metaproteomics, methanogenesis, Stickland reaction, metagenomics
2018
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Coupled laboratory and field investigations resolve microbial interactions that underpin persistence in hydraulically fractured shales
by
Welch, Susan A.
, Purvine, Samuel
, Eder, Elizabeth K.
, Borton, Mikayla A.
, Hoyt, David W.
, Wrighton, Kelly C.
, Carr, Timothy R.
, Cole, David R.
, Sheets, Julie M.
, Hanson, Andrea J.
, Morgan, David M.
, Nicora, Carrie D.
, Wolfe, Richard A.
, Sharma, Shikha
, Mouser, Paula J.
, Lipton, Mary S.
, Daly, Rebecca A.
, Wilkins, Michael J.
, Roux, Simon
in
hydraulic fracturing, metaproteomics, methanogenesis, Stickland reaction, metagenomics
2018
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Coupled laboratory and field investigations resolve microbial interactions that underpin persistence in hydraulically fractured shales
Journal Article
Coupled laboratory and field investigations resolve microbial interactions that underpin persistence in hydraulically fractured shales
2018
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Overview
Hydraulic fracturing is one of the industrial processes behind the surging natural gas output in the United States. This technology inadvertently creates an engineered microbial ecosystem thousands of meters below Earth’s surface. Here, we used laboratory reactors to perform manipulations of persisting shale microbial communities that are currently not feasible in field scenarios. Metaproteomic and metabolite findings from the laboratory were then corroborated using regression based modeling performed on metagenomic and metabolite data from more than 40 produced fluids from five hydraulically fractured shale wells. Collectively, our findings show that Halanaerobium, Geotoga, and Methanohalophilius strain abundances predict a significant fraction of nitrogen and carbon metabolites in the field. Our laboratory findings also exposed cryptic predatory, cooperative, and competitive interactions that impact microorganisms across fractured shales. Scaling these results from the laboratory to the field identified mechanisms underpinning biogeochemical reactions, yielding knowledge that can be harnessed to potentially increase energy yields and inform management practices in hydraulically fractured shales.
Publisher
National Academy of Sciences, Washington, DC (United States)
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