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Unexpected role of the steroid-deficiency protein ecdysoneless in pre-mRNA splicing
AK. Claudius, P. Romani, T. Lamkemeyer, M. Jindra, M. Uhlirova,
Language English Country United States
Document type Journal Article, Research Support, Non-U.S. Gov't
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- MeSH
- Cell Cycle genetics MeSH
- Drosophila melanogaster genetics MeSH
- Ecdysone genetics MeSH
- Cells, Cultured MeSH
- Larva genetics MeSH
- Mutation genetics MeSH
- RNA Precursors genetics MeSH
- Drosophila Proteins genetics MeSH
- Ribonucleoproteins, Small Nuclear genetics MeSH
- RNA Splicing genetics MeSH
- Spliceosomes genetics MeSH
- Steroids metabolism MeSH
- Gene Expression Regulation, Developmental genetics MeSH
- Animals MeSH
- Check Tag
- Animals MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
The steroid hormone ecdysone coordinates insect growth and development, directing the major postembryonic transition of forms, metamorphosis. The steroid-deficient ecdysoneless1 (ecd1) strain of Drosophila melanogaster has long served to assess the impact of ecdysone on gene regulation, morphogenesis, or reproduction. However, ecd also exerts cell-autonomous effects independently of the hormone, and mammalian Ecd homologs have been implicated in cell cycle regulation and cancer. Why the Drosophila ecd1 mutants lack ecdysone has not been resolved. Here, we show that in Drosophila cells, Ecd directly interacts with core components of the U5 snRNP spliceosomal complex, including the conserved Prp8 protein. In accord with a function in pre-mRNA splicing, Ecd and Prp8 are cell-autonomously required for survival of proliferating cells within the larval imaginal discs. In the steroidogenic prothoracic gland, loss of Ecd or Prp8 prevents splicing of a large intron from CYP307A2/spookier (spok) pre-mRNA, thus eliminating this essential ecdysone-biosynthetic enzyme and blocking the entry to metamorphosis. Human Ecd (hEcd) can substitute for its missing fly ortholog. When expressed in the Ecd-deficient prothoracic gland, hEcd re-establishes spok pre-mRNA splicing and protein expression, restoring ecdysone synthesis and normal development. Our work identifies Ecd as a novel pre-mRNA splicing factor whose function has been conserved in its human counterpart. Whether the role of mammalian Ecd in cancer involves pre-mRNA splicing remains to be discovered.
Biology Center Academy of Sciences of the Czech Republic Ceske Budejovice Czech Republic
Dipartimento di Biologia Evoluzionistica Sperimentale Università di Bologna Bologna Italy
Proteomics Facility CECAD University of Cologne Cologne Germany
References provided by Crossref.org
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