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Rodriguez-Sastre, N.

Publications and source records attributed to Rodriguez-Sastre, N..

2 recordsLinked to original sources

Ethanol Exposure Perturbs Sea Urchin Development and Disrupts Developmental Timing

Ethanol is a known vertebrate teratogen that causes craniofacial defects as a component of fetal alcohol syndrome (FAS). Our results show that sea urchin embryos treated with ethanol similarly show broad skeletal patterning defects, potentially analogous to the defects associated with FAS. The sea urchin larval skeleton is a simple patterning system that involves only two cell types: the primary mesenchymal cells (PMCs) that secrete the calcium carbonate skeleton and the ectodermal cells that provide migratory, positional, and differentiation cues for the PMCs. Perturbations in RA biosynthesis and Hh signaling pathways are thought to be causal for the FAS phenotype in vertebrates. Surprisingly, our results indicate that these pathways are not functionally relevant for the teratogenic effects of ethanol in developing sea urchins. We found that developmental morphology as well as the expression of ectodermal and PMC genes was delayed by ethanol exposure. Temporal transcriptome analysis revealed significant impacts of ethanol on signaling and metabolic gene expression, and a disruption in the timing of GRN gene expression that includes both delayed and precocious gene expression throughout the specification network. We conclude that the skeletal patterning perturbations in ethanol-treated embryos likely arise from a loss of temporal synchrony within and between the instructive and responsive tissues.

developmental biology↗

Diversification of Transcription Factor NF-κB in Protists

In this report, we investigate the evolution of transcription factor NF-{kappa}B by examining its structure, activity, and regulation in two protists using phylogenetic, cellular, and biochemical techniques. In Capsaspora owczarzaki (Co), we find that full-length NF-{kappa}B has an N-terminal DNA-binding domain and a C-terminal Ankyrin (ANK) repeat inhibitory domain, and its DNA-binding activity is more similar to metazoan NF-{kappa}B rather than Rel proteins. As with mammalian NF-{kappa}B proteins, removal of the ANK repeats is required for Co-NF-{kappa}B to enter the nucleus, bind DNA, and activate transcription. However, C-terminal processing of Co-NF-{kappa}B is not induced by co-expression of IKK in human cells. Exogenously expressed Co-NF-{kappa}B localizes to the nucleus in Co cells. NF-{kappa}B mRNA and DNA-binding levels differ across three life stages of Capsaspora, suggesting distinct roles for NF-{kappa}B in these life stages. RNA-seq and GO analyses identify possible gene targets and biological functions of Co-NF-{kappa}B. We also show that three NF-{kappa}B-like proteins from the choanoflagellate Acanthoeca spectabilis (As) all consist of primarily the N-terminal conserved Rel Homology domain sequences of NF-{kappa}B, and lack C-terminal ANK repeats. All three As-NF-{kappa}B proteins constitutively enter the nucleus of human and Co cells, but differ in their DNA-binding and transcriptional activation activities. Furthermore, all three As-NF-{kappa}B proteins can form heterodimers, indicating that NF-{kappa}B diversified into multi-subunit families at least two times during evolution. Overall, these results present the first functional characterization of NF-{kappa}B in a taxonomic kingdom other than Animalia and provide information about the evolution and diversification of this biologically important transcription factor. SignificanceThese results represent the first functional characterization of the biologically important transcription factor NF-{kappa}B in a taxonomic kingdom other than Animalia. As such, they provide information on the evolutionary origins and basal diversification of NF-{kappa}B outside of metazoans. These results suggest that NF-{kappa}B plays life stage-specific roles in Capsaspora, the closest unicellular ancestor to all metazoans. Finally, the analysis of three NF-{kappa}B proteins in a single choanoflagellate indicates that choanoflagellates have subclasses of NF-{kappa}Bs, which can form heterodimers, suggesting that NF-{kappa}B subunit expansion and diversification has occurred at least twice in evolution.

cell biology↗