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Microalgae are important primary producers and form the basis for the marine food web. As global climate changes, so do salinity levels that algae are exposed to. A metabolic response of algal cells partly alleviates the resulting osmotic stress. Some metabolites involved in the response are well...

2023-09-04 | MTBLS3177 | MetaboLights
The marine teleost intestine plays a vital role in whole body salt and water homeostasis. Marine fish must drink seawater in order to rehydrate, and processing of that seawater throughout the gastrointestinal tract allows for the extraction of water from this highly hyperosmotic source. Although the...
ORGANISM(S): Opsanus beta 
2018-06-26 | PXD005923 | Pride
Genomics
Meditarrean seagrasses molecular responses against hypersalinity exposure
Pocillopora acuta Raw sequence reads from hypersalinity and heat induced polyp bailout
Animal and plant genomes produce numerous small RNAs (smRNAs) regulating gene expression affecting metabolism, development, and epigenetic inheritance. In order to characterize the repertoire of endogenous microRNAs and potential gene targets, we conducted smRNA and mRNA expression profiling over ni...
ORGANISM(S): Symbiodinium sp. A1 
Animal and plant genomes produce numerous small RNAs (smRNAs) regulating gene expression affecting metabolism, development, and epigenetic inheritance. In order to characterize the repertoire of endogenous microRNAs and potential gene targets, we conducted smRNA and mRNA expression profiling over ni...
ORGANISM(S): Symbiodinium sp. A1 
Genomics
Posidonia oceanica leaf and meristem transcriptomes under desalination-related hypersalinity in mesocosm and field settings
Long-term transcriptional adaptation was investigated by comparative transcriptome analysis of E. rubrum grown at different salt concentrations.
ORGANISM(S): Aspergillus ruber 
2014-03-25 | GSE44180 | GEO
Transcriptional adaptation of Eurotium rubrum to hypersalinity
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