Literature DB >> 27378151

Molecular biosignatures reveal common benthic microbial sources of organic matter in ooids and grapestones from Pigeon Cay, The Bahamas.

S S O'Reilly1,2, G Mariotti1, A R Winter3, S A Newman1, E D Matys1, F McDermott2,4, S B Pruss5, T Bosak1, R E Summons1, V Klepac-Ceraj3.   

Abstract

Ooids are sedimentary grains that are distributed widely in the geologic record. Their formation is still actively debated, which limits our understanding of the significance and meaning of these grains in Earth's history. Central questions include the role played by microbes in the formation of ooids and the sources of ubiquitous organic matter within ooid cortices. To address these issues, we investigated the microbial community composition and associated lipids in modern oolitic sands at Pigeon Cay on Cat Island, The Bahamas. Surface samples were taken along a transect from the shallow, turbulent surf zone to calmer, deeper water. Grains transitioned from shiny and abraded ooids in the surf zone, to biofilm-coated ooids at about 3 m water depth. Further offshore, grapestones (cemented aggregates of ooids) dominated. Benthic diatoms and Proteobacteria dominated biofilms. Taxa that may promote carbonate precipitation were abundant, particularly those associated with sulfur cycling. Compared to the lipids associated with surface biofilms, relict lipids bound within carbonate exhibited remarkably similar profiles in all grain types. The enhanced abundance of methyl-branched fatty acids and β-hydroxy fatty acids, 1-O-monoalkyl glycerol ethers and hopanoids bound within ooid and grapestone carbonate confirms a clear association of benthic sedimentary bacteria with these grains. Lipids bound within ooid cortices also contain molecular indicators of microbial heterotrophic degradation of organic matter, possibly in locally reducing conditions. These included the loss of labile unsaturated fatty acids, enhanced long-chain fatty acids/short-chain fatty acids, enriched stable carbon isotopes ratios of fatty acids, and very high stanol/stenol ratios. To what extent some of these molecular signals are derived from later heterotrophic endolithic activity remains to be fully resolved. We speculate that some ooid carbonate forms in microbial biofilms and that early diagenetic degradation of biofilms may also play a role in early stage carbonate precipitation around ooids.
© 2016 John Wiley & Sons Ltd.

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Year:  2016        PMID: 27378151     DOI: 10.1111/gbi.12196

Source DB:  PubMed          Journal:  Geobiology        ISSN: 1472-4669            Impact factor:   4.407


  4 in total

1.  Preservation of uropygial gland lipids in a 48-million-year-old bird.

Authors:  Shane O'Reilly; Roger Summons; Gerald Mayr; Jakob Vinther
Journal:  Proc Biol Sci       Date:  2017-10-25       Impact factor: 5.349

2.  A biofilm and organomineralisation model for the growth and limiting size of ooids.

Authors:  Murray T Batchelor; Robert V Burne; Bruce I Henry; Fei Li; Josef Paul
Journal:  Sci Rep       Date:  2018-01-11       Impact factor: 4.379

3.  Recovery of Fatty Acids from Mineralogic Mars Analogs by TMAH Thermochemolysis for the Sample Analysis at Mars Wet Chemistry Experiment on the Curiosity Rover.

Authors:  Amy J Williams; Jennifer Eigenbrode; Melissa Floyd; Mary Beth Wilhelm; Shane O'Reilly; Sarah Stewart Johnson; Kathleen L Craft; Christine A Knudson; Slavka Andrejkovičová; James M T Lewis; Arnaud Buch; Daniel P Glavin; Caroline Freissinet; Ross H Williams; Cyril Szopa; Maëva Millan; Roger E Summons; Amy McAdam; Kathleen Benison; Rafael Navarro-González; Charles Malespin; Paul R Mahaffy
Journal:  Astrobiology       Date:  2019-03-14       Impact factor: 4.335

4.  Symbiolite formation: a powerful in vitro model to untangle the role of bacterial communities in the photosynthesis-induced formation of microbialites.

Authors:  Matthew R Nitschke; Cátia Fidalgo; João Simões; Cláudio Brandão; Artur Alves; João Serôdio; Jörg C Frommlet
Journal:  ISME J       Date:  2020-03-13       Impact factor: 10.302

  4 in total

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