Aerobic microbial communities in the sediments of a marine oxygen minimum zone

Author:

Bhattacharya Sabyasachi1ORCID,Roy Chayan1,Mandal Subhrangshu1,Sarkar Jagannath1,Rameez Moidu Jameela1,Mondal Nibendu1,Mapder Tarunendu2,Chatterjee Sumit1,Pyne Prosenjit1,Alam Masrure1,Haldar Prabir Kumar1,Roy Rimi1,Fernandes Svetlana3,Peketi Aditya3,Chakraborty Ranadhir4,Mazumdar Aninda3,Ghosh Wriddhiman1ORCID

Affiliation:

1. Department of Microbiology, Bose Institute, P-1/12 CIT Scheme VIIM, Kolkata 700054, India

2. Department of Chemistry, Bose Institute, 93/1 APC Road, Kolkata 700009, India

3. Gas Hydrate Research Group, Geological Oceanography, CSIR-National Institute of Oceanography, Dona Paula, Goa 403004, India

4. Department of Biotechnology, University of North Bengal, Raja Rammohanpur, District - Darjeeling, West Bengal 734013, India

Abstract

ABSTRACTThe ecology of aerobic microorganisms is never explored in marine oxygen minimum zone (OMZ) sediments. Here we reveal aerobic bacterial communities along ∼3 m sediment-horizons of the eastern Arabian Sea OMZ. Sulfide-containing sediment-cores retrieved from 530 mbsl (meters beneath the sea-level) and 580 mbsl were explored at 15–30 cm intervals, using metagenomics, pure-culture-isolation, genomics and metatranscriptomics. Genes for aerobic respiration, and oxidation of methane/ammonia/alcohols/thiosulfate/sulfite/organosulfur-compounds, were detected in the metagenomes from all 25 sediment-samples explored. Most probable numbers for aerobic chemolithoautotrophs and chemoorganoheterotrophs at individual sample-sites were up to 1.1 × 107 (g sediment)-1. The sediment-sample collected from 275 cmbsf (centimeters beneath the seafloor) of the 530-mbsl-core yielded many such obligately aerobic isolates belonging to Cereibacter, Guyparkeria, Halomonas, Methylophaga, Pseudomonas and Sulfitobacter which died upon anaerobic incubation, despite being provided with all possible electron acceptors and fermentative substrates. High percentages of metatranscriptomic reads from the 275 cmbsf sediment-sample, and metagenomic reads from all 25 sediment-samples, matched the isolates’ genomic sequences including those for aerobic metabolisms, genetic/environmental information processing and cell division, thereby illustrating the bacteria's in-situ activity, and ubiquity across the sediment-horizons, respectively. The findings hold critical implications for organic carbon sequestration/remineralization, and inorganic compounds oxidation, within the sediment realm of global marine OMZs.

Funder

Ministry of Earth Sciences

Publisher

Oxford University Press (OUP)

Subject

Genetics,Molecular Biology,Microbiology

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