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Patterns of 15 N assimilation and growth of methanotrophic ANME‐2 archaea and sulfate‐reducing bacteria within structured syntrophic consortia revealed by FISH‐SIMS

Victoria J. Orphan; Kendra A. Turk; Abigail M. Green; Christopher H. House
Environmental Microbiology · Vol. 11, Issue 7 · pp. 1777-1791 · 2009

Abstract

Summary Methane release from the oceans is controlled in large part by syntrophic interactions between anaerobic methanotrophic archaea (ANME) and sulfate‐reducing bacteria (DSS), frequently found as organized consortia. An understanding of the specifics of this symbiotic relationship and the metabolic heterogeneity existing between and within individual methane‐oxidizing aggregates is currently lacking. Here, we use the microanalytical method FISH‐SIMS (fluorescence in situ hybridization‐secondary ion mass spectrometry) to describe the physiological traits and anabolic activity of individual methanotrophic consortia, specifically tracking 15 N‐labelled protein synthesis to examine the effects of organization and size on the metabolic activity of the syntrophic partners. Patterns of 15 N distribution within individual aggregates showed enhanced 15 N assimilation in ANME‐2 cells relative to the co‐associated DSS revealing a decoupling in anabolic activity between the partners. Protein synthesis in ANME‐2 cells was sustained throughout the core of individual ANME‐2/DSS consortia ranging in size range from 4 to 20 μm. This indicates that metabolic activity of the methane‐oxidizing archaea is not limited to, or noticeably enhanced at the ANME−2/DSS boundary. Overall, the metabolic activity of both syntrophic partners within consortia was greater than activity measured in representatives of the ANME‐2 and DSS observed alone, with smaller ANME‐2/DSS aggregates displaying a tendency for greater 15 N uptake and doubling times ranging from 3 to 5 months. The combination of 15 N‐labelling and FISH‐SIMS provides an important perspective on the extent of heterogeneity within methanotrophic aggregates and may aid in constraining predictive models of activity and growth by these syntrophic consortia.

Bibliographic Information

JournalEnvironmental Microbiology
PublisherWiley
Publication Date2009-07-01
Publication Year2009
Volume11
Issue7
Pages1777-1791
Document TypeJournal Article
Print ISSN1462-2912
eISSN1462-2920
DOI10.1111/j.1462-2920.2009.01903.x
SubjectMicrobial Ecology

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NARA Access Coverage1999-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/14622920
Publisher PageOpen Publisher Page
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