Cargando…

Transcriptomic data on the transgenerational exposure of the keystone amphipod Gammarus locusta to simvastatin

The use of transcriptomics data brings new insights and works as a powerful tool to explore the molecular mode of action (MoA) of transgenerational inheritance effects of contaminants of emerging concern. Therefore, in this dataset, we present the transcriptomic data of the transgenerational effects...

Descripción completa

Detalles Bibliográficos
Autores principales: Neuparth, Teresa, Machado, André M., Montes, Rosa, Rodil, Rosario, Barros, Susana, Alves, Nélson, Ruivo, Raquel, Castro, Luis Filipe C., Quintana, José B., Santos, Miguel M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7481811/
https://www.ncbi.nlm.nih.gov/pubmed/32944603
http://dx.doi.org/10.1016/j.dib.2020.106248
_version_ 1783580685165920256
author Neuparth, Teresa
Machado, André M.
Montes, Rosa
Rodil, Rosario
Barros, Susana
Alves, Nélson
Ruivo, Raquel
Castro, Luis Filipe C.
Quintana, José B.
Santos, Miguel M.
author_facet Neuparth, Teresa
Machado, André M.
Montes, Rosa
Rodil, Rosario
Barros, Susana
Alves, Nélson
Ruivo, Raquel
Castro, Luis Filipe C.
Quintana, José B.
Santos, Miguel M.
author_sort Neuparth, Teresa
collection PubMed
description The use of transcriptomics data brings new insights and works as a powerful tool to explore the molecular mode of action (MoA) of transgenerational inheritance effects of contaminants of emerging concern. Therefore, in this dataset, we present the transcriptomic data of the transgenerational effects of environmentally relevant simvastatin levels, one of the most prescribed human pharmaceuticals, in the keystone amphipod species Gammarus locusta. In summary, G. locusta juveniles were maintained under simvastatin exposure up to adulthood (exposed group - F0E) and the offspring of F0E were transferred to control water for the three subsequent generations (transgenerational group - F1T, F2T and F3T). To gain insights into the biological functions and canonical pathways transgenerationally disrupted by simvastatin, a G. locusta de novo transcriptome assembly was produced and the transcriptomic profiles of three individual G. locusta females, per group, over the four generations (F0 to F3) - solvent control groups (F0.C, F1.C, F2.C and F3.C), F0 320 ng/L simvastatin exposed group (F0.320E) and F1 to F3 320 transgenerational group (F1.320T; F2.320T and F3.320T) - were analyzed. Briefly, Illumina HiSeq™ 2500 platform was used to perform RNA sequencing, and due to the unavailability of G. locusta genome, the RNA-seq datasets were assembled de novo using Trinity and annotated with Trinotate software. After assembly and post-processing steps, 106093 transcripts with N50 of 2371 bp and mean sequence length of 1343.98 bp was produced. BUSCO analyses showed a transcriptome with gene completeness of 97.5 % Arthropoda library profile. The Bowtie2, RSEM and edgeR tools were used for the differential gene expression (DEGs) analyses that allowed the identification of a high quantity of genes differentially expressed in all generations. Finally, to identify the main metabolic pathways affected by the transgenerational effects of SIM across all generations, the DGEs genes were blasted onto KEGG pathways database using the KAAS webserver. The data furnished in this article allows a better molecular understanding of the transgenerational effects produced by simvastatin in the keystone amphipod G. locusta and has major implications for hazard and risk assessment of pharmaceuticals and other emerging contaminants. This article is related to the research article entitled “Transgenerational inheritance of chemical-induced signature: a case study with simvastatin [1].
format Online
Article
Text
id pubmed-7481811
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-74818112020-09-16 Transcriptomic data on the transgenerational exposure of the keystone amphipod Gammarus locusta to simvastatin Neuparth, Teresa Machado, André M. Montes, Rosa Rodil, Rosario Barros, Susana Alves, Nélson Ruivo, Raquel Castro, Luis Filipe C. Quintana, José B. Santos, Miguel M. Data Brief Data Article The use of transcriptomics data brings new insights and works as a powerful tool to explore the molecular mode of action (MoA) of transgenerational inheritance effects of contaminants of emerging concern. Therefore, in this dataset, we present the transcriptomic data of the transgenerational effects of environmentally relevant simvastatin levels, one of the most prescribed human pharmaceuticals, in the keystone amphipod species Gammarus locusta. In summary, G. locusta juveniles were maintained under simvastatin exposure up to adulthood (exposed group - F0E) and the offspring of F0E were transferred to control water for the three subsequent generations (transgenerational group - F1T, F2T and F3T). To gain insights into the biological functions and canonical pathways transgenerationally disrupted by simvastatin, a G. locusta de novo transcriptome assembly was produced and the transcriptomic profiles of three individual G. locusta females, per group, over the four generations (F0 to F3) - solvent control groups (F0.C, F1.C, F2.C and F3.C), F0 320 ng/L simvastatin exposed group (F0.320E) and F1 to F3 320 transgenerational group (F1.320T; F2.320T and F3.320T) - were analyzed. Briefly, Illumina HiSeq™ 2500 platform was used to perform RNA sequencing, and due to the unavailability of G. locusta genome, the RNA-seq datasets were assembled de novo using Trinity and annotated with Trinotate software. After assembly and post-processing steps, 106093 transcripts with N50 of 2371 bp and mean sequence length of 1343.98 bp was produced. BUSCO analyses showed a transcriptome with gene completeness of 97.5 % Arthropoda library profile. The Bowtie2, RSEM and edgeR tools were used for the differential gene expression (DEGs) analyses that allowed the identification of a high quantity of genes differentially expressed in all generations. Finally, to identify the main metabolic pathways affected by the transgenerational effects of SIM across all generations, the DGEs genes were blasted onto KEGG pathways database using the KAAS webserver. The data furnished in this article allows a better molecular understanding of the transgenerational effects produced by simvastatin in the keystone amphipod G. locusta and has major implications for hazard and risk assessment of pharmaceuticals and other emerging contaminants. This article is related to the research article entitled “Transgenerational inheritance of chemical-induced signature: a case study with simvastatin [1]. Elsevier 2020-08-31 /pmc/articles/PMC7481811/ /pubmed/32944603 http://dx.doi.org/10.1016/j.dib.2020.106248 Text en © 2020 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Data Article
Neuparth, Teresa
Machado, André M.
Montes, Rosa
Rodil, Rosario
Barros, Susana
Alves, Nélson
Ruivo, Raquel
Castro, Luis Filipe C.
Quintana, José B.
Santos, Miguel M.
Transcriptomic data on the transgenerational exposure of the keystone amphipod Gammarus locusta to simvastatin
title Transcriptomic data on the transgenerational exposure of the keystone amphipod Gammarus locusta to simvastatin
title_full Transcriptomic data on the transgenerational exposure of the keystone amphipod Gammarus locusta to simvastatin
title_fullStr Transcriptomic data on the transgenerational exposure of the keystone amphipod Gammarus locusta to simvastatin
title_full_unstemmed Transcriptomic data on the transgenerational exposure of the keystone amphipod Gammarus locusta to simvastatin
title_short Transcriptomic data on the transgenerational exposure of the keystone amphipod Gammarus locusta to simvastatin
title_sort transcriptomic data on the transgenerational exposure of the keystone amphipod gammarus locusta to simvastatin
topic Data Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7481811/
https://www.ncbi.nlm.nih.gov/pubmed/32944603
http://dx.doi.org/10.1016/j.dib.2020.106248
work_keys_str_mv AT neuparthteresa transcriptomicdataonthetransgenerationalexposureofthekeystoneamphipodgammaruslocustatosimvastatin
AT machadoandrem transcriptomicdataonthetransgenerationalexposureofthekeystoneamphipodgammaruslocustatosimvastatin
AT montesrosa transcriptomicdataonthetransgenerationalexposureofthekeystoneamphipodgammaruslocustatosimvastatin
AT rodilrosario transcriptomicdataonthetransgenerationalexposureofthekeystoneamphipodgammaruslocustatosimvastatin
AT barrossusana transcriptomicdataonthetransgenerationalexposureofthekeystoneamphipodgammaruslocustatosimvastatin
AT alvesnelson transcriptomicdataonthetransgenerationalexposureofthekeystoneamphipodgammaruslocustatosimvastatin
AT ruivoraquel transcriptomicdataonthetransgenerationalexposureofthekeystoneamphipodgammaruslocustatosimvastatin
AT castroluisfilipec transcriptomicdataonthetransgenerationalexposureofthekeystoneamphipodgammaruslocustatosimvastatin
AT quintanajoseb transcriptomicdataonthetransgenerationalexposureofthekeystoneamphipodgammaruslocustatosimvastatin
AT santosmiguelm transcriptomicdataonthetransgenerationalexposureofthekeystoneamphipodgammaruslocustatosimvastatin