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Seasonal Dynamics Are the Major Driver of Microbial Diversity and Composition in Intensive Freshwater Aquaculture

Aquaculture facilities such as fishponds are one of the most anthropogenically impacted freshwater ecosystems. The high fish biomass reared in aquaculture is associated with an intensive input into the water of fish-feed and fish excrements. This nutrients load may affect the microbial community in...

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Autores principales: Marmen, Sophi, Fadeev, Eduard, Al Ashhab, Ashraf, Benet-Perelberg, Ayana, Naor, Alon, Patil, Hemant J., Cytryn, Eddie, Viner-Mozzini, Yehudit, Sukenik, Assaf, Lalzar, Maya, Sher, Daniel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8264503/
https://www.ncbi.nlm.nih.gov/pubmed/34248892
http://dx.doi.org/10.3389/fmicb.2021.679743
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author Marmen, Sophi
Fadeev, Eduard
Al Ashhab, Ashraf
Benet-Perelberg, Ayana
Naor, Alon
Patil, Hemant J.
Cytryn, Eddie
Viner-Mozzini, Yehudit
Sukenik, Assaf
Lalzar, Maya
Sher, Daniel
author_facet Marmen, Sophi
Fadeev, Eduard
Al Ashhab, Ashraf
Benet-Perelberg, Ayana
Naor, Alon
Patil, Hemant J.
Cytryn, Eddie
Viner-Mozzini, Yehudit
Sukenik, Assaf
Lalzar, Maya
Sher, Daniel
author_sort Marmen, Sophi
collection PubMed
description Aquaculture facilities such as fishponds are one of the most anthropogenically impacted freshwater ecosystems. The high fish biomass reared in aquaculture is associated with an intensive input into the water of fish-feed and fish excrements. This nutrients load may affect the microbial community in the water, which in turn can impact the fish health. To determine to what extent aquaculture practices and natural seasonal cycles affect the microbial populations, we characterized the microbiome of an inter-connected aquaculture system at monthly resolution, over 3 years. The system comprised two fishponds, where fish are grown, and an operational water reservoir in which fish are not actively stocked. Clear natural seasonal cycles of temperature and inorganic nutrients concentration, as well as recurring cyanobacterial blooms during summer, were observed in both the fishponds and the reservoir. The structure of the aquatic bacterial communities in the system, characterized using 16S rRNA sequencing, was explained primarily by the natural seasonality, whereas aquaculture-related parameters had only a minor explanatory power. However, the cyanobacterial blooms were characterized by different cyanobacterial clades dominating at each fishpond, possibly in response to distinct nitrogen and phosphate ratios. In turn, nutrient ratios may have been affected by the magnitude of fish feed input. Taken together, our results show that, even in strongly anthropogenically impacted aquatic ecosystems, the structure of bacterial communities is mainly driven by the natural seasonality, with more subtle effects of aquaculture-related factors.
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spelling pubmed-82645032021-07-09 Seasonal Dynamics Are the Major Driver of Microbial Diversity and Composition in Intensive Freshwater Aquaculture Marmen, Sophi Fadeev, Eduard Al Ashhab, Ashraf Benet-Perelberg, Ayana Naor, Alon Patil, Hemant J. Cytryn, Eddie Viner-Mozzini, Yehudit Sukenik, Assaf Lalzar, Maya Sher, Daniel Front Microbiol Microbiology Aquaculture facilities such as fishponds are one of the most anthropogenically impacted freshwater ecosystems. The high fish biomass reared in aquaculture is associated with an intensive input into the water of fish-feed and fish excrements. This nutrients load may affect the microbial community in the water, which in turn can impact the fish health. To determine to what extent aquaculture practices and natural seasonal cycles affect the microbial populations, we characterized the microbiome of an inter-connected aquaculture system at monthly resolution, over 3 years. The system comprised two fishponds, where fish are grown, and an operational water reservoir in which fish are not actively stocked. Clear natural seasonal cycles of temperature and inorganic nutrients concentration, as well as recurring cyanobacterial blooms during summer, were observed in both the fishponds and the reservoir. The structure of the aquatic bacterial communities in the system, characterized using 16S rRNA sequencing, was explained primarily by the natural seasonality, whereas aquaculture-related parameters had only a minor explanatory power. However, the cyanobacterial blooms were characterized by different cyanobacterial clades dominating at each fishpond, possibly in response to distinct nitrogen and phosphate ratios. In turn, nutrient ratios may have been affected by the magnitude of fish feed input. Taken together, our results show that, even in strongly anthropogenically impacted aquatic ecosystems, the structure of bacterial communities is mainly driven by the natural seasonality, with more subtle effects of aquaculture-related factors. Frontiers Media S.A. 2021-06-24 /pmc/articles/PMC8264503/ /pubmed/34248892 http://dx.doi.org/10.3389/fmicb.2021.679743 Text en Copyright © 2021 Marmen, Fadeev, Al Ashhab, Benet-Perelberg, Naor, Patil, Cytryn, Viner-Mozzini, Sukenik, Lalzar and Sher. 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
Marmen, Sophi
Fadeev, Eduard
Al Ashhab, Ashraf
Benet-Perelberg, Ayana
Naor, Alon
Patil, Hemant J.
Cytryn, Eddie
Viner-Mozzini, Yehudit
Sukenik, Assaf
Lalzar, Maya
Sher, Daniel
Seasonal Dynamics Are the Major Driver of Microbial Diversity and Composition in Intensive Freshwater Aquaculture
title Seasonal Dynamics Are the Major Driver of Microbial Diversity and Composition in Intensive Freshwater Aquaculture
title_full Seasonal Dynamics Are the Major Driver of Microbial Diversity and Composition in Intensive Freshwater Aquaculture
title_fullStr Seasonal Dynamics Are the Major Driver of Microbial Diversity and Composition in Intensive Freshwater Aquaculture
title_full_unstemmed Seasonal Dynamics Are the Major Driver of Microbial Diversity and Composition in Intensive Freshwater Aquaculture
title_short Seasonal Dynamics Are the Major Driver of Microbial Diversity and Composition in Intensive Freshwater Aquaculture
title_sort seasonal dynamics are the major driver of microbial diversity and composition in intensive freshwater aquaculture
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8264503/
https://www.ncbi.nlm.nih.gov/pubmed/34248892
http://dx.doi.org/10.3389/fmicb.2021.679743
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