Literature DB >> 20854329

The methane cycle in ferruginous Lake Matano.

S A Crowe1, S Katsev, K Leslie, A Sturm, C Magen, S Nomosatryo, M A Pack, J D Kessler, W S Reeburgh, J A Roberts, L González, G Douglas Haffner, A Mucci, B Sundby, D A Fowle.   

Abstract

In Lake Matano, Indonesia, the world's largest known ferruginous basin, more than 50% of authigenic organic matter is degraded through methanogenesis, despite high abundances of Fe (hydr)oxides in the lake sediments. Biogenic CH₄ accumulates to high concentrations (up to 1.4 mmol L⁻¹) in the anoxic bottom waters, which contain a total of 7.4 × 10⁵ tons of CH₄. Profiles of dissolved inorganic carbon (ΣCO₂) and carbon isotopes (δ¹³C) show that CH₄ is oxidized in the vicinity of the persistent pycnocline and that some of this CH₄ is likely oxidized anaerobically. The dearth of NO₃⁻ and SO₄²⁻ in Lake Matano waters suggests that anaerobic methane oxidation may be coupled to the reduction of Fe (and/or Mn) (hydr)oxides. Thermodynamic considerations reveal that CH₄ oxidation coupled to Fe(III) or Mn(III/IV) reduction would yield sufficient free energy to support microbial growth at the substrate levels present in Lake Matano. Flux calculations imply that Fe and Mn must be recycled several times directly within the water column to balance the upward flux of CH₄. 16S gene cloning identified methanogens in the anoxic water column, and these methanogens belong to groups capable of both acetoclastic and hydrogenotrophic methanogenesis. We find that methane is important in C cycling, even in this very Fe-rich environment. Such Fe-rich environments are rare on Earth today, but they are analogous to conditions in the ferruginous oceans thought to prevail during much of the Archean Eon. By analogy, methanogens and methanotrophs could have formed an important part of the Archean Ocean ecosystem.
© 2010 Blackwell Publishing Ltd.

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Year:  2010        PMID: 20854329     DOI: 10.1111/j.1472-4669.2010.00257.x

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


  31 in total

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4.  A methanotrophic archaeon couples anaerobic oxidation of methane to Fe(III) reduction.

Authors:  Chen Cai; Andy O Leu; Guo-Jun Xie; Jianhua Guo; Yuexing Feng; Jian-Xin Zhao; Gene W Tyson; Zhiguo Yuan; Shihu Hu
Journal:  ISME J       Date:  2018-04-16       Impact factor: 10.302

5.  Shifting microbial communities sustain multiyear iron reduction and methanogenesis in ferruginous sediment incubations.

Authors:  M S Bray; J Wu; B C Reed; C B Kretz; K M Belli; R L Simister; C Henny; F J Stewart; T J DiChristina; J A Brandes; D A Fowle; S A Crowe; J B Glass
Journal:  Geobiology       Date:  2017-04-17       Impact factor: 4.407

6.  Freshwater bacteria release methane as a byproduct of phosphorus acquisition.

Authors:  Mengyin Yao; Cynthia Henny; Julia A Maresca
Journal:  Appl Environ Microbiol       Date:  2016-09-30       Impact factor: 4.792

7.  Timescales of Oxygenation Following the Evolution of Oxygenic Photosynthesis.

Authors:  Lewis M Ward; Joseph L Kirschvink; Woodward W Fischer
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8.  Limited role for methane in the mid-Proterozoic greenhouse.

Authors:  Stephanie L Olson; Christopher T Reinhard; Timothy W Lyons
Journal:  Proc Natl Acad Sci U S A       Date:  2016-09-26       Impact factor: 11.205

9.  Archaea catalyze iron-dependent anaerobic oxidation of methane.

Authors:  Katharina F Ettwig; Baoli Zhu; Daan Speth; Jan T Keltjens; Mike S M Jetten; Boran Kartal
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10.  Enzymes involved in the anaerobic oxidation of n-alkanes: from methane to long-chain paraffins.

Authors:  Amy V Callaghan
Journal:  Front Microbiol       Date:  2013-05-14       Impact factor: 5.640

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