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Molecular Responses to Thermal and Osmotic Stress in Arctic Intertidal Mussels (Mytilus edulis): The Limits of Resilience

Increases in Arctic temperatures have accelerated melting of the Greenland icesheet, exposing intertidal organisms, such as the blue mussel Mytilus edulis, to high air temperatures and low salinities in summer. However, the interaction of these combined stressors is poorly described at the transcrip...

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Autores principales: Barrett, Nicholas J., Thyrring, Jakob, Harper, Elizabeth M., Sejr, Mikael K., Sørensen, Jesper G., Peck, Lloyd S., Clark, Melody S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8774603/
https://www.ncbi.nlm.nih.gov/pubmed/35052494
http://dx.doi.org/10.3390/genes13010155
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author Barrett, Nicholas J.
Thyrring, Jakob
Harper, Elizabeth M.
Sejr, Mikael K.
Sørensen, Jesper G.
Peck, Lloyd S.
Clark, Melody S.
author_facet Barrett, Nicholas J.
Thyrring, Jakob
Harper, Elizabeth M.
Sejr, Mikael K.
Sørensen, Jesper G.
Peck, Lloyd S.
Clark, Melody S.
author_sort Barrett, Nicholas J.
collection PubMed
description Increases in Arctic temperatures have accelerated melting of the Greenland icesheet, exposing intertidal organisms, such as the blue mussel Mytilus edulis, to high air temperatures and low salinities in summer. However, the interaction of these combined stressors is poorly described at the transcriptional level. Comparing expression profiles of M. edulis from experimentally warmed (30 °C and 33 °C) animals kept at control (23‰) and low salinities (15‰) revealed a significant lack of enrichment for Gene Ontology terms (GO), indicating that similar processes were active under all conditions. However, there was a progressive increase in the abundance of upregulated genes as each stressor was applied, with synergistic increases at 33 °C and 15‰, suggesting combined stressors push the animal towards their tolerance thresholds. Further analyses comparing the effects of salinity alone (23‰, 15‰ and 5‰) showed high expression of stress and osmoregulatory marker genes at the lowest salinity, implying that the cell is carrying out intracellular osmoregulation to maintain the cytosol as hyperosmotic. Identification of aquaporins and vacuolar-type ATPase transcripts suggested the cell may use fluid-filled cavities to excrete excess intracellular water, as previously identified in embryonic freshwater mussels. These results indicate that M. edulis has considerable resilience to heat stress and highly efficient mechanisms to acclimatise to lowered salinity in a changing world.
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spelling pubmed-87746032022-01-21 Molecular Responses to Thermal and Osmotic Stress in Arctic Intertidal Mussels (Mytilus edulis): The Limits of Resilience Barrett, Nicholas J. Thyrring, Jakob Harper, Elizabeth M. Sejr, Mikael K. Sørensen, Jesper G. Peck, Lloyd S. Clark, Melody S. Genes (Basel) Article Increases in Arctic temperatures have accelerated melting of the Greenland icesheet, exposing intertidal organisms, such as the blue mussel Mytilus edulis, to high air temperatures and low salinities in summer. However, the interaction of these combined stressors is poorly described at the transcriptional level. Comparing expression profiles of M. edulis from experimentally warmed (30 °C and 33 °C) animals kept at control (23‰) and low salinities (15‰) revealed a significant lack of enrichment for Gene Ontology terms (GO), indicating that similar processes were active under all conditions. However, there was a progressive increase in the abundance of upregulated genes as each stressor was applied, with synergistic increases at 33 °C and 15‰, suggesting combined stressors push the animal towards their tolerance thresholds. Further analyses comparing the effects of salinity alone (23‰, 15‰ and 5‰) showed high expression of stress and osmoregulatory marker genes at the lowest salinity, implying that the cell is carrying out intracellular osmoregulation to maintain the cytosol as hyperosmotic. Identification of aquaporins and vacuolar-type ATPase transcripts suggested the cell may use fluid-filled cavities to excrete excess intracellular water, as previously identified in embryonic freshwater mussels. These results indicate that M. edulis has considerable resilience to heat stress and highly efficient mechanisms to acclimatise to lowered salinity in a changing world. MDPI 2022-01-15 /pmc/articles/PMC8774603/ /pubmed/35052494 http://dx.doi.org/10.3390/genes13010155 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Barrett, Nicholas J.
Thyrring, Jakob
Harper, Elizabeth M.
Sejr, Mikael K.
Sørensen, Jesper G.
Peck, Lloyd S.
Clark, Melody S.
Molecular Responses to Thermal and Osmotic Stress in Arctic Intertidal Mussels (Mytilus edulis): The Limits of Resilience
title Molecular Responses to Thermal and Osmotic Stress in Arctic Intertidal Mussels (Mytilus edulis): The Limits of Resilience
title_full Molecular Responses to Thermal and Osmotic Stress in Arctic Intertidal Mussels (Mytilus edulis): The Limits of Resilience
title_fullStr Molecular Responses to Thermal and Osmotic Stress in Arctic Intertidal Mussels (Mytilus edulis): The Limits of Resilience
title_full_unstemmed Molecular Responses to Thermal and Osmotic Stress in Arctic Intertidal Mussels (Mytilus edulis): The Limits of Resilience
title_short Molecular Responses to Thermal and Osmotic Stress in Arctic Intertidal Mussels (Mytilus edulis): The Limits of Resilience
title_sort molecular responses to thermal and osmotic stress in arctic intertidal mussels (mytilus edulis): the limits of resilience
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8774603/
https://www.ncbi.nlm.nih.gov/pubmed/35052494
http://dx.doi.org/10.3390/genes13010155
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