Genomewide transcriptional reprogramming in the seagrass Cymodocea nodosa under experimental ocean acidification

Here, we report the first use of massive-scale RNA-sequencing to explore seagrass response to CO2-driven ocean acidification (OA). Large-scale gene expression changes in the seagrass Cymodocea nodosa occurred at CO2 levels projected by the end of the century. C.nodosa transcriptome was obtained usin...

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Published in:Molecular Ecology
Main Authors: Ruocco M., Musacchia F., Olive I., Costa M. M., Barrote I., Santos R., Sanges R., Procaccini G., Silva J.
Other Authors: Costa M.M.
Format: Article in Journal/Newspaper
Language:English
Published: 2017
Subjects:
Online Access:https://hdl.handle.net/11585/942248
https://doi.org/10.1111/mec.14204
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author Ruocco M.
Musacchia F.
Olive I.
Costa M. M.
Barrote I.
Santos R.
Sanges R.
Procaccini G.
Silva J.
author2 Ruocco M.
Musacchia F.
Olive I.
Costa M.M.
Barrote I.
Santos R.
Sanges R.
Procaccini G.
Silva J.
author_facet Ruocco M.
Musacchia F.
Olive I.
Costa M. M.
Barrote I.
Santos R.
Sanges R.
Procaccini G.
Silva J.
author_sort Ruocco M.
collection Unknown
container_issue 16
container_start_page 4241
container_title Molecular Ecology
container_volume 26
description Here, we report the first use of massive-scale RNA-sequencing to explore seagrass response to CO2-driven ocean acidification (OA). Large-scale gene expression changes in the seagrass Cymodocea nodosa occurred at CO2 levels projected by the end of the century. C.nodosa transcriptome was obtained using Illumina RNA-Seq technology and de novo assembly, and differential gene expression was explored in plants exposed to short-term high CO2/low pH conditions. At high pCO2, there was a significant increased expression of transcripts associated with photosynthesis, including light reaction functions and CO2 fixation, and also to respiratory pathways, specifically for enzymes involved in glycolysis, in the tricarboxylic acid cycle and in the energy metabolism of the mitochondrial electron transport. The upregulation of respiratory metabolism is probably supported by the increased availability of photosynthates and increased energy demand for biosynthesis and stress-related processes under elevated CO2 and low pH. The upregulation of several chaperones resembling heat stress-induced changes in gene expression highlighted the positive role these proteins play in tolerance to intracellular acid stress in seagrasses. OA further modifies C.nodosa secondary metabolism inducing the transcription of enzymes related to biosynthesis of carbon-based secondary compounds, in particular the synthesis of polyphenols and isoprenoid compounds that have a variety of biological functions including plant defence. By demonstrating which physiological processes are most sensitive to OA, this research provides a major advance in the understanding of seagrass metabolism in the context of altered seawater chemistry from global climate change.
format Article in Journal/Newspaper
genre Ocean acidification
genre_facet Ocean acidification
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spelling ftunibolognairis:oai:cris.unibo.it:11585/942248 2025-06-15T14:45:21+00:00 Genomewide transcriptional reprogramming in the seagrass Cymodocea nodosa under experimental ocean acidification Ruocco M. Musacchia F. Olive I. Costa M. M. Barrote I. Santos R. Sanges R. Procaccini G. Silva J. Ruocco M. Musacchia F. Olive I. Costa M.M. Barrote I. Santos R. Sanges R. Procaccini G. Silva J. 2017 STAMPA https://hdl.handle.net/11585/942248 https://doi.org/10.1111/mec.14204 eng eng info:eu-repo/semantics/altIdentifier/pmid/28614601 info:eu-repo/semantics/altIdentifier/wos/WOS:000407255100011 volume:26 issue:16 firstpage:4241 lastpage:4259 numberofpages:19 journal:MOLECULAR ECOLOGY https://hdl.handle.net/11585/942248 doi:10.1111/mec.14204 carbohydrate metabolism Cymodocea nodosa ocean acidification protein folding seagrasse transcriptome info:eu-repo/semantics/article 2017 ftunibolognairis https://doi.org/10.1111/mec.14204 2025-05-28T08:22:13Z Here, we report the first use of massive-scale RNA-sequencing to explore seagrass response to CO2-driven ocean acidification (OA). Large-scale gene expression changes in the seagrass Cymodocea nodosa occurred at CO2 levels projected by the end of the century. C.nodosa transcriptome was obtained using Illumina RNA-Seq technology and de novo assembly, and differential gene expression was explored in plants exposed to short-term high CO2/low pH conditions. At high pCO2, there was a significant increased expression of transcripts associated with photosynthesis, including light reaction functions and CO2 fixation, and also to respiratory pathways, specifically for enzymes involved in glycolysis, in the tricarboxylic acid cycle and in the energy metabolism of the mitochondrial electron transport. The upregulation of respiratory metabolism is probably supported by the increased availability of photosynthates and increased energy demand for biosynthesis and stress-related processes under elevated CO2 and low pH. The upregulation of several chaperones resembling heat stress-induced changes in gene expression highlighted the positive role these proteins play in tolerance to intracellular acid stress in seagrasses. OA further modifies C.nodosa secondary metabolism inducing the transcription of enzymes related to biosynthesis of carbon-based secondary compounds, in particular the synthesis of polyphenols and isoprenoid compounds that have a variety of biological functions including plant defence. By demonstrating which physiological processes are most sensitive to OA, this research provides a major advance in the understanding of seagrass metabolism in the context of altered seawater chemistry from global climate change. Article in Journal/Newspaper Ocean acidification Unknown Molecular Ecology 26 16 4241 4259
spellingShingle carbohydrate metabolism
Cymodocea nodosa
ocean acidification
protein folding
seagrasse
transcriptome
Ruocco M.
Musacchia F.
Olive I.
Costa M. M.
Barrote I.
Santos R.
Sanges R.
Procaccini G.
Silva J.
Genomewide transcriptional reprogramming in the seagrass Cymodocea nodosa under experimental ocean acidification
title Genomewide transcriptional reprogramming in the seagrass Cymodocea nodosa under experimental ocean acidification
title_full Genomewide transcriptional reprogramming in the seagrass Cymodocea nodosa under experimental ocean acidification
title_fullStr Genomewide transcriptional reprogramming in the seagrass Cymodocea nodosa under experimental ocean acidification
title_full_unstemmed Genomewide transcriptional reprogramming in the seagrass Cymodocea nodosa under experimental ocean acidification
title_short Genomewide transcriptional reprogramming in the seagrass Cymodocea nodosa under experimental ocean acidification
title_sort genomewide transcriptional reprogramming in the seagrass cymodocea nodosa under experimental ocean acidification
topic carbohydrate metabolism
Cymodocea nodosa
ocean acidification
protein folding
seagrasse
transcriptome
topic_facet carbohydrate metabolism
Cymodocea nodosa
ocean acidification
protein folding
seagrasse
transcriptome
url https://hdl.handle.net/11585/942248
https://doi.org/10.1111/mec.14204