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Hydrodynamic disturbance controls microbial community assembly and biogeochemical processes in coastal sediments.

Publication ,  Journal Article
Chen, Y-J; Leung, PM; Cook, PLM; Wong, WW; Hutchinson, T; Eate, V; Kessler, AJ; Greening, C
Published in: The ISME journal
March 2022

The microbial community composition and biogeochemical dynamics of coastal permeable (sand) sediments differs from cohesive (mud) sediments. Tide- and wave-driven hydrodynamic disturbance causes spatiotemporal variations in oxygen levels, which select for microbial generalists and disrupt redox cascades. In this work, we profiled microbial communities and biogeochemical dynamics in sediment profiles from three sites varying in their exposure to hydrodynamic disturbance. Strong variations in sediment geochemistry, biogeochemical activities, and microbial abundance, composition, and capabilities were observed between the sites. Most of these variations, except for microbial abundance and diversity, significantly correlated with the relative disturbance level of each sample. In line with previous findings, metabolically flexible habitat generalists (e.g., Flavobacteriaceae, Woeseaiceae, Rhodobacteraceae) dominated in all samples. However, we present evidence that aerobic specialists such as ammonia-oxidizing archaea (Nitrosopumilaceae) were more abundant and active in more disturbed samples, whereas bacteria capable of sulfate reduction (e.g., uncultured Desulfobacterales), dissimilatory nitrate reduction to ammonium (DNRA; e.g., Ignavibacteriaceae), and sulfide-dependent chemolithoautotrophy (e.g., Sulfurovaceae) were enriched and active in less disturbed samples. These findings are supported by insights from nine deeply sequenced metagenomes and 169 derived metagenome-assembled genomes. Altogether, these findings suggest that hydrodynamic disturbance is a critical factor controlling microbial community assembly and biogeochemical processes in coastal sediments. Moreover, they strengthen our understanding of the relationships between microbial composition and biogeochemical processes in these unique environments.

Duke Scholars

Published In

The ISME journal

DOI

EISSN

1751-7370

ISSN

1751-7362

Publication Date

March 2022

Volume

16

Issue

3

Start / End Page

750 / 763

Related Subject Headings

  • Microbiota
  • Microbiology
  • Hydrodynamics
  • Geologic Sediments
  • Bacterial Physiological Phenomena
  • Bacteria
  • Archaea
  • 41 Environmental sciences
  • 31 Biological sciences
  • 10 Technology
 

Citation

APA
Chicago
ICMJE
MLA
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Chen, Y.-J., Leung, P. M., Cook, P. L. M., Wong, W. W., Hutchinson, T., Eate, V., … Greening, C. (2022). Hydrodynamic disturbance controls microbial community assembly and biogeochemical processes in coastal sediments. The ISME Journal, 16(3), 750–763. https://doi.org/10.1038/s41396-021-01111-9
Chen, Ya-Jou, Pok Man Leung, Perran L. M. Cook, Wei Wen Wong, Tess Hutchinson, Vera Eate, Adam J. Kessler, and Chris Greening. “Hydrodynamic disturbance controls microbial community assembly and biogeochemical processes in coastal sediments.The ISME Journal 16, no. 3 (March 2022): 750–63. https://doi.org/10.1038/s41396-021-01111-9.
Chen Y-J, Leung PM, Cook PLM, Wong WW, Hutchinson T, Eate V, et al. Hydrodynamic disturbance controls microbial community assembly and biogeochemical processes in coastal sediments. The ISME journal. 2022 Mar;16(3):750–63.
Chen, Ya-Jou, et al. “Hydrodynamic disturbance controls microbial community assembly and biogeochemical processes in coastal sediments.The ISME Journal, vol. 16, no. 3, Mar. 2022, pp. 750–63. Epmc, doi:10.1038/s41396-021-01111-9.
Chen Y-J, Leung PM, Cook PLM, Wong WW, Hutchinson T, Eate V, Kessler AJ, Greening C. Hydrodynamic disturbance controls microbial community assembly and biogeochemical processes in coastal sediments. The ISME journal. 2022 Mar;16(3):750–763.

Published In

The ISME journal

DOI

EISSN

1751-7370

ISSN

1751-7362

Publication Date

March 2022

Volume

16

Issue

3

Start / End Page

750 / 763

Related Subject Headings

  • Microbiota
  • Microbiology
  • Hydrodynamics
  • Geologic Sediments
  • Bacterial Physiological Phenomena
  • Bacteria
  • Archaea
  • 41 Environmental sciences
  • 31 Biological sciences
  • 10 Technology