Present addresses: ARC Centre of Excellence for Coral Reef Studies, James Cook University, Townsville, Australia and INSU-CNRS, UPMC, LOV, Observatoire Oceanologique de Villefranche, 06230 Villefranche-sur-Mer, France
The transcriptomic response to thermal stress is immediate, transient and potentiated by ultraviolet radiation in the sea anemone Anemonia viridis
Article first published online: 31 JAN 2012
© 2012 Blackwell Publishing Ltd
Volume 21, Issue 5, pages 1158–1174, March 2012
How to Cite
MOYA, A., GANOT, P., FURLA, P. and SABOURAULT, C. (2012), The transcriptomic response to thermal stress is immediate, transient and potentiated by ultraviolet radiation in the sea anemone Anemonia viridis. Molecular Ecology, 21: 1158–1174. doi: 10.1111/j.1365-294X.2012.05458.x
These authors contributed equally to this work
- Issue published online: 23 FEB 2012
- Article first published online: 31 JAN 2012
- Received 16 September 2011; revision received 18 November 2011; accepted 26 November 2011
Fig. S1 Experimental design and temperature curves of the experiment.
Fig. S2 Schematic diagrams for microarray experimental design.
Fig. S3 Venn diagrams for differential expression of genes distribution according to temperature (T), UVR and temperature + UVR (T/UVR) stress at 1, 2 and 5 days.
Fig. S4 Alignment of the Dermatopontin protein homologs. We started using human and Biomphalaria published Dermatopontin (DPT) protein sequences as bait.
Fig. S5 Genomic sequence of the N. vectensis jgi scaffold 152 (from 387969 to 426372) with deduced amino acids sequences corresponding to NvDPTa-d.
Table S1 List of all differentially expressed genes (|Fold|>1.3) identified in response to thermal and/or UVR stress.
Table S2 Gastrodermal and epidermal gene expression at 0, 12h and 36h in response to thermal and UVR stress.
Table S3 Uniseq cDNA sequences (ESTs assembling) used in the manuscript.
Table S4 Zooxanthellae density.
Table S5 RT-qPCR raw data.
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