Published July 11, 2022 | Version v1
Journal article Open

Molecular basis of ocean acidification sensitivity and adaptation in Mytilus galloprovincialis

  • 1. Institute of Marine Sciences
  • 2. University of Chicago
  • 3. Sorbonne Université

Description

Predicting the potential for species adaption to climate change is challenged by the need to identify the physiological mechanisms that underpin species vulnerability. Here, we investigated the sensitivity to ocean acidification in marine mussels during early development, and specifically the trochophore stage. Using RNA and DNA sequencing and in situ RNA hybridization, we identified developmental processes associated with abnormal development and rapid adaptation to low pH. Trochophores exposed to low pH seawater exhibited 43 differentially expressed genes. Gene annotation and in situ hybridization of differentially expressed genes point to pH sensitivity of (1) shell field development and (2) cellular stress response. Five genes within these two processes exhibited shifts in allele frequencies indicative of a potential for rapid adaptation. This case study contributes direct evidence that protecting species' existing genetic diversity is a critical management action to facilitate species resilience to climate change.

Data availability

RNA-seq data have been deposited at NCBI and are publicly available (BioProject number is listed in the key resources table). DNA-seq data have been deposited at NCBI and have publicly been available since the publication of Bitter et al. (2019) (BioProject number is listed in the key resources table).

All original code has been deposited at GitHub and is publicly available (URL is listed in the key resources table).

Any additional information required to reanalyze the data reported in this paper is available from the Lead contact (Mark C. Bitter) upon request.

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Additional details

Identifiers

DOI
10.1016/j.isci.2022.104677
Other
oai:uchicago.tind.io:5326

Funding

U.S. National Science Foundation
OCE-1521597
European Commission
Horizon 2020 Marie Skłodowska-Curie Action
US Department of Education
200A150101
U.S. National Science Foundation
Graduate Research Fellowship
Agence National de la Recherche
Marine-EmbryoTox

UChicago Information

Division(s)
Biological Sciences Division
Department(s)
Ecology and Evolution