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Microbial succession during the transition from active to inactive stages of deep-sea hydrothermal vent sulfide chimneys

Authors :
Yinzhao Wang
Jialin Hou
Stefan M. Sievert
Xiang Xiao
Vengadesh Perumal Natarajan
Fengping Wang
Jeffrey S. Seewald
Source :
Microbiome, Microbiome, Vol 8, Iss 1, Pp 1-18 (2020)
Publication Year :
2020
Publisher :
Research Square Platform LLC, 2020.

Abstract

BackgroundDeep-sea hydrothermal vents are highly productive biodiversity hotspots in the deep ocean supported by chemosynthetic microorganisms. Prominent features of these systems are sulfide chimneys emanating high-temperature hydrothermal fluids. While several studies have investigated the microbial diversity in both active and inactive sulfide chimneys that have been extinct for up to thousands of years, little is known about chimneys that have ceased activity more recently, as well as the microbial succession occurring during the transition from active to inactive chimneys.ResultsGenome-resolved metagenomics was applied to an active and a recently extinct (~ 7 years) sulfide chimney from the 9–10° N hydrothermal vent field on the East Pacific Rise. Full-length 16S rRNA gene and a total of 173 high-quality metagenome assembled genomes (MAGs) were retrieved for comparative analysis. In the active chimney (L-vent), sulfide- and/or hydrogen-oxidizingCampylobacteriaandAquificaewith the potential for denitrification were identified as the dominant community members and primary producers, fixing carbon through the reductive tricarboxylic acid (rTCA) cycle. In contrast, the microbiome of the recently extinct chimney (M-vent) was largely composed of heterotrophs from various bacterial phyla, includingDelta-/Beta-/AlphaproteobacteriaandBacteroidetes.Gammaproteobacteriawere identified as the main primary producers, using the oxidation of metal sulfides and/or iron oxidation coupled to nitrate reduction to fix carbon through the Calvin-Benson-Bassham (CBB) cycle. Further analysis revealed a phylogenetically distinctNitrospiraecluster that has the potential to oxidize sulfide minerals coupled to oxygen and/or nitrite reduction, as well as for sulfate reduction, and that might serve as an indicator for the early stages of chimneys after venting has ceased.ConclusionsThis study sheds light on the composition, metabolic functions, and succession of microbial communities inhabiting deep-sea hydrothermal vent sulfide chimneys. Collectively, microbial succession during the life span of a chimney could be described to proceed from a “fluid-shaped” microbial community in newly formed and actively venting chimneys supported by the oxidation of reductants in the hydrothermal fluid to a “mineral-shaped” community supported by the oxidation of minerals after hydrothermal activity has ceased. Remarkably, the transition appears to occur within the first few years, after which the communities stay stable for thousands of years.

Details

Database :
OpenAIRE
Journal :
Microbiome, Microbiome, Vol 8, Iss 1, Pp 1-18 (2020)
Accession number :
edsair.doi.dedup.....88a08802a00ae187dde9e467359ffd3c
Full Text :
https://doi.org/10.21203/rs.3.rs-16462/v2