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Salinity Causes Differences in Stratigraphic Methane Sources and Sinks

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Date 2023 Dec 4
PMID 38046178
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Abstract

Methane metabolism, driven by methanogenic and methanotrophic microorganisms, plays a pivotal role in the carbon cycle. As seawater intrusion and soil salinization rise due to global environmental shifts, understanding how salinity affects methane emissions, especially in deep strata, becomes imperative. Yet, insights into stratigraphic methane release under varying salinity conditions remain sparse. Here we investigate the effects of salinity on methane metabolism across terrestrial and coastal strata (15-40 m depth) through and microcosm simulation studies. Coastal strata, exhibiting a salinity level five times greater than terrestrial strata, manifested a 12.05% decrease in total methane production, but a staggering 687.34% surge in methane oxidation, culminating in 146.31% diminished methane emissions. Salinity emerged as a significant factor shaping the methane-metabolizing microbial community's dynamics, impacting the methanogenic archaeal, methanotrophic archaeal, and methanotrophic bacterial communities by 16.53%, 27.25%, and 22.94%, respectively. Furthermore, microbial interactions influenced strata system methane metabolism. Metabolic pathway analyses suggested Atribacteria JS1's potential role in organic matter decomposition, facilitating methane production via Methanofastidiosales. This study thus offers a comprehensive lens to comprehend stratigraphic methane emission dynamics and the overarching factors modulating them.

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References
1.
Dang C, Morrissey E, Neubauer S, Franklin R . Novel microbial community composition and carbon biogeochemistry emerge over time following saltwater intrusion in wetlands. Glob Chang Biol. 2018; 25(2):549-561. DOI: 10.1111/gcb.14486. View

2.
Chen S, Wang P, Liu H, Xie W, Wan X, Kao S . Population dynamics of methanogens and methanotrophs along the salinity gradient in Pearl River Estuary: implications for methane metabolism. Appl Microbiol Biotechnol. 2019; 104(3):1331-1346. DOI: 10.1007/s00253-019-10221-6. View

3.
Callahan B, McMurdie P, Rosen M, Han A, Johnson A, Holmes S . DADA2: High-resolution sample inference from Illumina amplicon data. Nat Methods. 2016; 13(7):581-3. PMC: 4927377. DOI: 10.1038/nmeth.3869. View

4.
Vanwonterghem I, Evans P, Parks D, Jensen P, Woodcroft B, Hugenholtz P . Methylotrophic methanogenesis discovered in the archaeal phylum Verstraetearchaeota. Nat Microbiol. 2016; 1:16170. DOI: 10.1038/nmicrobiol.2016.170. View

5.
Li D, Luo R, Liu C, Leung C, Ting H, Sadakane K . MEGAHIT v1.0: A fast and scalable metagenome assembler driven by advanced methodologies and community practices. Methods. 2016; 102:3-11. DOI: 10.1016/j.ymeth.2016.02.020. View