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Journal Article

Methanogens limited to lower rhizosphere and to an atypical salt marsh niche along a pristine intertidal mangrove continuum

Sebastian Euler; Luke C. Jeffrey; Damien T. Maher; Scott G. Johnston; Ryo Sugimoto; Douglas R. Tait
Limnology and Oceanography · Vol. 68, Issue 9 · pp. 2167-2182 · 2023

Abstract

Mangroves are valuable ecosystems that facilitate primary production, carbon sequestration, and regulation of greenhouse gas (GHG) cycles in coastal sediments, with microorganisms playing key roles. Specialized bacteria and archaea compete for energy and resources in mangrove sediments to inhabit optimal ecological niches and can produce or consume methane (CH 4 )—a potent GHG—in the process. CH 4 cycling in mangroves has gained growing attention, yet uncertainties regarding functional and spatial distributions of microorganisms remain. Here, we demonstrate that in a pristine mangrove forest, CH 4 concentrations and methanogen communities are concentrated within lower or below rhizosphere depths. We also reveal atypical niches for methanogens in the upper tidal salt marsh zone where vegetation is sparse and highest methanogens abundances were detected at deepest depths (4715 reads g −1 ) despite relatively high redox potentials (> 250 mV). Pore water CH 4 concentrations were highest at the deepest depth within the mangrove forest (max. 3.40 ± 0.21 μ M) and coincided with the highest sediment CH 4 fluxes (276.4 ± 54.2 μ mol m −2 d −1 ) and methanotroph abundances at the surface (1309 reads g −1 ). Sediment CH 4 oxidation fractions between the deepest (60 cm) and shallowest (5 cm) depths were estimated between 18.8% and 64.9%. Positive correlation between crab burrows and CH 4 fluxes suggests that CH 4 from deeper sediment and salt marsh niches can be transported via conduits to the atmosphere. The spatial data from this study highlights the importance of investigating CH 4 dynamics across estuarine ecosystem gradients to better understand the complex roles of vital coastal vegetation zones in the face of a changing climate.

Bibliographic Information

JournalLimnology and Oceanography
PublisherWiley
Publication Date2023-09-01
Publication Year2023
Volume68
Issue9
Pages2167-2182
Document TypeJournal Article
Print ISSN0024-3590
eISSN1939-5590
DOI10.1002/lno.12414
SubjectAquatic Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://aslopubs.onlinelibrary.wiley.com/loi/19395590
Publisher PageOpen Publisher Page
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