Seawater carbonate chemistry and gene expression, shell formation in larval Pacific oysters (Crassostrea gigas)

Background: Despite recent work to characterize gene expression changes associated with larval development in oysters, the mechanism by which the larval shell is first formed is still largely unknown. In Crassostrea gigas, this shell forms within the first 24 h post fertilization, and it has been demonstrated that changes in water chemistry can cause delays in shell formation, shell deformations and higher mortality rates. In this study, we use the delay in shell formation associated with exposure to CO2-acidified seawater to identify genes correlated with initial shell deposition. Results: By fitting linear models to gene expression data in ambient and low aragonite saturation treatments, we are able to isolate 37 annotated genes correlated with initial larval shell formation, which can be categorized into 1) ion transporters, 2) shell matrix proteins and 3) protease inhibitors. Clustering of the gene expression data into co-expression networks further supports the result of the linear models, and also implies an important role of dynein motor proteins as transporters of cellular components during the initial shell formation process. Conclusions: Using an RNA-Seq approach with high temporal resolution allows us to identify a conceptual model for how oyster larval calcification is initiated. This work provides a foundation for further studies on how genetic variation in these identified genes could affect fitness of oyster populations subjected to future environmental changes, such as ocean acidification.

Data and Resources

This dataset has no data

Cite this as

de Wit, Pierre, Durland, Evan, Ventura, Alexander, Langdon, Chris (2018). Dataset: Seawater carbonate chemistry and gene expression, shell formation in larval Pacific oysters (Crassostrea gigas). https://doi.org/10.1594/PANGAEA.893428

DOI retrieved: 2018

Additional Info

Field Value
Imported on November 29, 2024
Last update November 30, 2024
License CC-BY-3.0
Source https://doi.org/10.1594/PANGAEA.893428
Author de Wit, Pierre
Given Name Pierre
Family Name de Wit
More Authors
Durland, Evan
Ventura, Alexander
Langdon, Chris
Source Creation 2018
Publication Year 2018
Resource Type text/tab-separated-values - filename: De_wit-etal_2018_BMCG
Subject Areas
Name: BiologicalClassification

Name: Biosphere

Name: Chemistry

Name: Ecology

Related Identifiers
Title: Gene expression correlated with delay in shell formation in larval Pacific oysters (Crassostrea gigas) exposed to experimental ocean acidification provides insights into shell formation mechanisms
Identifier: https://doi.org/10.1186/s12864-018-4519-y
Type: DOI
Relation: IsSupplementTo
Year: 2018
Source: BMC Genomics
Authors: de Wit Pierre , Durland Evan , Ventura Alexander , Langdon Chris .

Title: Data of figure 3: weighted gene correlation network modules and normalized expression levels
Identifier: https://store.pangaea.de/Publications/DeWit-etal_2018/Weighted_gene_correlation_network_modules_and_normalized_expression_levels.xlsx
Type: DOI
Relation: References
Authors: Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James C , Gentili Bernard , Proye Aurélien , Soetaert Karline , Rae James .

Title: seacarb: seawater carbonate chemistry with R. R package version 3.1
Identifier: https://cran.r-project.org/package=seacarb
Type: DOI
Relation: References
Year: 2016
Authors: Gattuso Jean-Pierre , Epitalon Jean-Marie , Lavigne Héloïse , Orr James C , Gentili Bernard , Proye Aurélien , Soetaert Karline , Rae James .