Cargando…

Depth-driven patterns in lytic viral diversity, auxiliary metabolic gene content, and productivity in offshore oligotrophic waters

INTRODUCTION: Marine viruses regulate microbial population dynamics and biogeochemical cycling in the oceans. The ability of viruses to manipulate hosts’ metabolism through the expression of viral auxiliary metabolic genes (AMGs) was recently highlighted, having important implications in energy prod...

Descripción completa

Detalles Bibliográficos
Autores principales: Tsiola, Anastasia, Michoud, Grégoire, Daffonchio, Daniele, Fodelianakis, Stilianos, Giannakourou, Antonia, Malliarakis, Dimitris, Pavlidou, Alexandra, Pitta, Elli, Psarra, Stella, Santi, Ioulia, Zeri, Christina, Pitta, Paraskevi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10653327/
https://www.ncbi.nlm.nih.gov/pubmed/38029212
http://dx.doi.org/10.3389/fmicb.2023.1271535
_version_ 1785136388675469312
author Tsiola, Anastasia
Michoud, Grégoire
Daffonchio, Daniele
Fodelianakis, Stilianos
Giannakourou, Antonia
Malliarakis, Dimitris
Pavlidou, Alexandra
Pitta, Elli
Psarra, Stella
Santi, Ioulia
Zeri, Christina
Pitta, Paraskevi
author_facet Tsiola, Anastasia
Michoud, Grégoire
Daffonchio, Daniele
Fodelianakis, Stilianos
Giannakourou, Antonia
Malliarakis, Dimitris
Pavlidou, Alexandra
Pitta, Elli
Psarra, Stella
Santi, Ioulia
Zeri, Christina
Pitta, Paraskevi
author_sort Tsiola, Anastasia
collection PubMed
description INTRODUCTION: Marine viruses regulate microbial population dynamics and biogeochemical cycling in the oceans. The ability of viruses to manipulate hosts’ metabolism through the expression of viral auxiliary metabolic genes (AMGs) was recently highlighted, having important implications in energy production and flow in various aquatic environments. Up to now, the presence and diversity of viral AMGs is studied using -omics data, and rarely using quantitative measures of viral activity alongside. METHODS: In the present study, four depth layers (5, 50, 75, and 1,000 m) with discrete hydrographic features were sampled in the Eastern Mediterranean Sea; we studied lytic viral community composition and AMG content through metagenomics, and lytic production rates through the viral reduction approach in the ultra-oligotrophic Levantine basin where knowledge regarding viral actions is rather limited. RESULTS AND DISCUSSION: Our results demonstrate depth-dependent patterns in viral diversity and AMG content, related to differences in temperature, nutrients availability, and host bacterial productivity and abundance. Although lytic viral production rates were similar along the water column, the virus-to-bacteria ratio was higher and the particular set of AMGs was more diverse in the bathypelagic (1,000 m) than the shallow epipelagic (5, 50, and 75 m) layers, revealing that the quantitative effect of viruses on their hosts may be the same along the water column through the intervention of different AMGs. In the resource- and energy-limited bathypelagic waters of the Eastern Mediterranean, the detected AMGs could divert hosts’ metabolism toward energy production, through a boost in gluconeogenesis, fatty-acid and glycan biosynthesis and metabolism, and sulfur relay. Near the deep-chlorophyll maximum depth, an exceptionally high percentage of AMGs related to photosynthesis was noticed. Taken together our findings suggest that the roles of viruses in the deep sea might be even more important than previously thought as they seem to orchestrate energy acquisition and microbial community dynamics, and thus, biogeochemical turnover in the oceans.
format Online
Article
Text
id pubmed-10653327
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-106533272023-11-02 Depth-driven patterns in lytic viral diversity, auxiliary metabolic gene content, and productivity in offshore oligotrophic waters Tsiola, Anastasia Michoud, Grégoire Daffonchio, Daniele Fodelianakis, Stilianos Giannakourou, Antonia Malliarakis, Dimitris Pavlidou, Alexandra Pitta, Elli Psarra, Stella Santi, Ioulia Zeri, Christina Pitta, Paraskevi Front Microbiol Microbiology INTRODUCTION: Marine viruses regulate microbial population dynamics and biogeochemical cycling in the oceans. The ability of viruses to manipulate hosts’ metabolism through the expression of viral auxiliary metabolic genes (AMGs) was recently highlighted, having important implications in energy production and flow in various aquatic environments. Up to now, the presence and diversity of viral AMGs is studied using -omics data, and rarely using quantitative measures of viral activity alongside. METHODS: In the present study, four depth layers (5, 50, 75, and 1,000 m) with discrete hydrographic features were sampled in the Eastern Mediterranean Sea; we studied lytic viral community composition and AMG content through metagenomics, and lytic production rates through the viral reduction approach in the ultra-oligotrophic Levantine basin where knowledge regarding viral actions is rather limited. RESULTS AND DISCUSSION: Our results demonstrate depth-dependent patterns in viral diversity and AMG content, related to differences in temperature, nutrients availability, and host bacterial productivity and abundance. Although lytic viral production rates were similar along the water column, the virus-to-bacteria ratio was higher and the particular set of AMGs was more diverse in the bathypelagic (1,000 m) than the shallow epipelagic (5, 50, and 75 m) layers, revealing that the quantitative effect of viruses on their hosts may be the same along the water column through the intervention of different AMGs. In the resource- and energy-limited bathypelagic waters of the Eastern Mediterranean, the detected AMGs could divert hosts’ metabolism toward energy production, through a boost in gluconeogenesis, fatty-acid and glycan biosynthesis and metabolism, and sulfur relay. Near the deep-chlorophyll maximum depth, an exceptionally high percentage of AMGs related to photosynthesis was noticed. Taken together our findings suggest that the roles of viruses in the deep sea might be even more important than previously thought as they seem to orchestrate energy acquisition and microbial community dynamics, and thus, biogeochemical turnover in the oceans. Frontiers Media S.A. 2023-11-02 /pmc/articles/PMC10653327/ /pubmed/38029212 http://dx.doi.org/10.3389/fmicb.2023.1271535 Text en Copyright © 2023 Tsiola, Michoud, Daffonchio, Fodelianakis, Giannakourou, Malliarakis, Pavlidou, Pitta, Psarra, Santi, Zeri and Pitta. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Tsiola, Anastasia
Michoud, Grégoire
Daffonchio, Daniele
Fodelianakis, Stilianos
Giannakourou, Antonia
Malliarakis, Dimitris
Pavlidou, Alexandra
Pitta, Elli
Psarra, Stella
Santi, Ioulia
Zeri, Christina
Pitta, Paraskevi
Depth-driven patterns in lytic viral diversity, auxiliary metabolic gene content, and productivity in offshore oligotrophic waters
title Depth-driven patterns in lytic viral diversity, auxiliary metabolic gene content, and productivity in offshore oligotrophic waters
title_full Depth-driven patterns in lytic viral diversity, auxiliary metabolic gene content, and productivity in offshore oligotrophic waters
title_fullStr Depth-driven patterns in lytic viral diversity, auxiliary metabolic gene content, and productivity in offshore oligotrophic waters
title_full_unstemmed Depth-driven patterns in lytic viral diversity, auxiliary metabolic gene content, and productivity in offshore oligotrophic waters
title_short Depth-driven patterns in lytic viral diversity, auxiliary metabolic gene content, and productivity in offshore oligotrophic waters
title_sort depth-driven patterns in lytic viral diversity, auxiliary metabolic gene content, and productivity in offshore oligotrophic waters
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10653327/
https://www.ncbi.nlm.nih.gov/pubmed/38029212
http://dx.doi.org/10.3389/fmicb.2023.1271535
work_keys_str_mv AT tsiolaanastasia depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT michoudgregoire depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT daffonchiodaniele depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT fodelianakisstilianos depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT giannakourouantonia depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT malliarakisdimitris depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT pavlidoualexandra depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT pittaelli depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT psarrastella depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT santiioulia depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT zerichristina depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters
AT pittaparaskevi depthdrivenpatternsinlyticviraldiversityauxiliarymetabolicgenecontentandproductivityinoffshoreoligotrophicwaters