Abstract
Abstract
Background
The Black Sea is the largest brackish water body in the world, although it is connected to the Mediterranean Sea and presents an upper water layer similar to some regions of the former, albeit with lower salinity and temperature. Despite its well-known hydrology and physicochemical features, this enormous water mass remains poorly studied at the microbial genomics level.
Results
We have sampled its different water masses and analyzed the microbiome by shotgun and genome-resolved metagenomics, generating a large number of metagenome-assembled genomes (MAGs) from them. We found various similarities with previously described Black Sea metagenomic datasets, that show remarkable stability in its microbiome. Our datasets are also comparable to other marine anoxic water columns like the Cariaco Basin. The oxic zone resembles to standard marine (e.g. Mediterranean) photic zones, with Cyanobacteria (Synechococcus but a conspicuously absent Prochlorococcus), and photoheterotrophs domination (largely again with marine relatives). The chemocline presents very different characteristics from the oxic surface with many examples of chemolithotrophic metabolism (Thioglobus) and facultatively anaerobic microbes. The euxinic anaerobic zone presents, as expected, features in common with the bottom of meromictic lakes with a massive dominance of sulfate reduction as energy-generating metabolism, a few (but detectable) methanogenesis marker genes, and a large number of “dark matter” streamlined genomes of largely unpredictable ecology.
Conclusions
The Black Sea oxic zone presents many similarities to the global ocean while the redoxcline and euxinic water masses have similarities to other similar aquatic environments of marine (Cariaco Basin or other Black Sea regions) or freshwater (meromictic monimolimnion strata) origin. The MAG collection represents very well the different types of metabolisms expected in this kind of environment. We are adding critical information about this unique and important ecosystem and its microbiome.
Funder
Ministerio de Ciencia, Innovación y Universidades
Conselleria d'Educació, Investigació, Cultura i Esport
Bulgarian Academy of Sciences
Publisher
Springer Science and Business Media LLC
Subject
Genetics,Applied Microbiology and Biotechnology,Microbiology
Reference59 articles.
1. Konovalov SK, Murray JW, Luther GW III. Black Sea biogeochemistry. Oceanography. 2005;18:24–35.
2. Stanev EV, He Y, Staneva J, Yakushev E. Mixing in the black sea detected from the temporal and spatial variability of oxygen and sulfide: Argo float observations and numerical modelling. European Geosciences Union; 2014;
3. Murray JW, Top Z, Özsoy E. Hydrographic properties and ventilation of the Black Sea. Deep Sea res part a Oceanogr res pap. Elsevier. 1991;38:S663–89.
4. Conley DJ, Bjorck S, Bonsdorff E, Carstensen J, Destouni G, Gustafsson BG, et al. Hypoxia-related processes in the Baltic Sea. Environ Sci Technol. ACS Publications. 2009;43:3412–20.
5. Suominen S, Dombrowski N, Sinninghe Damsté JS, Villanueva L. A diverse uncultivated microbial community is responsible for organic matter degradation in the Black Sea sulphidic zone. Environ Microbiol. Wiley Online Library; 2020;
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