Environmental data and annotated transcriptome for Black Perch brain differential gene expression experiments (2015 & 2017)

Acidification-induced changes in cognitive function and behavior have recently been documented in tropical marine fishes, raising concerns about related shifts in species interactions. Here, we investigate whether similar patterns of broad neurological impacts are observed in a temperate Pacific fis...

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Main Author: Toy, Jason
Format: Other/Unknown Material
Language:unknown
Published: Zenodo 2022
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Online Access:https://doi.org/10.7291/D19H5G
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spelling ftzenodo:oai:zenodo.org:5339653 2024-09-15T18:28:21+00:00 Environmental data and annotated transcriptome for Black Perch brain differential gene expression experiments (2015 & 2017) Toy, Jason 2022-03-03 https://doi.org/10.7291/D19H5G unknown Zenodo https://zenodo.org/communities/dryad https://doi.org/10.7291/D19H5G oai:zenodo.org:5339653 info:eu-repo/semantics/openAccess Creative Commons Zero v1.0 Universal https://creativecommons.org/publicdomain/zero/1.0/legalcode info:eu-repo/semantics/other 2022 ftzenodo https://doi.org/10.7291/D19H5G 2024-07-26T22:19:48Z Acidification-induced changes in cognitive function and behavior have recently been documented in tropical marine fishes, raising concerns about related shifts in species interactions. Here, we investigate whether similar patterns of broad neurological impacts are observed in a temperate Pacific fish that experiences regular and often large shifts in environmental pH due to upwelling events and other natural phenomena. In two manipulative laboratory experiments, we tested the effect of acidification, as well as pH variability, on gene expression in the brain tissue of a common temperate kelp forest/estuarine fish, Embiotoca jacksoni . We found that patterns of global gene expression in brain tissue differed significantly across pH level treatments. Additionally, differential gene expression analysis and gene set enrichment analysis identified significant differential expression of specific genes and gene sets both in comparisons of static pH level treatments as well as in static vs. variable pH treatment comparisons where mean pH was consistent. Enriched gene sets included those related to ion transport, signaling pathways, mRNA processing and splicing, and epigenetic regulation of gene expression, among others. Importantly, we found that pH variability decreased the number of differentially expressed genes detected between high and low pH treatments, and that the inter-individual variability in gene expression was significantly greater in variable pH treatments than static treatments of the same mean pH. By demonstrating a broad shift in brain gene expression, these results provide important confirmation of neurological impacts of acidification in a temperate fish species, which are likely to translate to shifts in behavior. This study also provides critical insight into the potential of natural environmental variability to mediate the impacts of ocean acidification. Other/Unknown Material Ocean acidification Zenodo
institution Open Polar
collection Zenodo
op_collection_id ftzenodo
language unknown
description Acidification-induced changes in cognitive function and behavior have recently been documented in tropical marine fishes, raising concerns about related shifts in species interactions. Here, we investigate whether similar patterns of broad neurological impacts are observed in a temperate Pacific fish that experiences regular and often large shifts in environmental pH due to upwelling events and other natural phenomena. In two manipulative laboratory experiments, we tested the effect of acidification, as well as pH variability, on gene expression in the brain tissue of a common temperate kelp forest/estuarine fish, Embiotoca jacksoni . We found that patterns of global gene expression in brain tissue differed significantly across pH level treatments. Additionally, differential gene expression analysis and gene set enrichment analysis identified significant differential expression of specific genes and gene sets both in comparisons of static pH level treatments as well as in static vs. variable pH treatment comparisons where mean pH was consistent. Enriched gene sets included those related to ion transport, signaling pathways, mRNA processing and splicing, and epigenetic regulation of gene expression, among others. Importantly, we found that pH variability decreased the number of differentially expressed genes detected between high and low pH treatments, and that the inter-individual variability in gene expression was significantly greater in variable pH treatments than static treatments of the same mean pH. By demonstrating a broad shift in brain gene expression, these results provide important confirmation of neurological impacts of acidification in a temperate fish species, which are likely to translate to shifts in behavior. This study also provides critical insight into the potential of natural environmental variability to mediate the impacts of ocean acidification.
format Other/Unknown Material
author Toy, Jason
spellingShingle Toy, Jason
Environmental data and annotated transcriptome for Black Perch brain differential gene expression experiments (2015 & 2017)
author_facet Toy, Jason
author_sort Toy, Jason
title Environmental data and annotated transcriptome for Black Perch brain differential gene expression experiments (2015 & 2017)
title_short Environmental data and annotated transcriptome for Black Perch brain differential gene expression experiments (2015 & 2017)
title_full Environmental data and annotated transcriptome for Black Perch brain differential gene expression experiments (2015 & 2017)
title_fullStr Environmental data and annotated transcriptome for Black Perch brain differential gene expression experiments (2015 & 2017)
title_full_unstemmed Environmental data and annotated transcriptome for Black Perch brain differential gene expression experiments (2015 & 2017)
title_sort environmental data and annotated transcriptome for black perch brain differential gene expression experiments (2015 & 2017)
publisher Zenodo
publishDate 2022
url https://doi.org/10.7291/D19H5G
genre Ocean acidification
genre_facet Ocean acidification
op_relation https://zenodo.org/communities/dryad
https://doi.org/10.7291/D19H5G
oai:zenodo.org:5339653
op_rights info:eu-repo/semantics/openAccess
Creative Commons Zero v1.0 Universal
https://creativecommons.org/publicdomain/zero/1.0/legalcode
op_doi https://doi.org/10.7291/D19H5G
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