The Drosophila Medea gene is required downstream of dpp and encodes a functional homolog of human Smad4
Open Access
- 15 April 1998
- journal article
- Published by The Company of Biologists in Development
- Vol. 125 (8) , 1407-1420
- https://doi.org/10.1242/dev.125.8.1407
Abstract
The Transforming Growth Factor-beta superfamily member decapentaplegic (dpp) acts as an extracellular morphogen to pattern the embryonic ectoderm of the Drosophila embryo. To identify components of the dpp signaling pathway, we screened for mutations that act as dominant maternal enhancers of a weak allele of the dpp target gene zerknLllt. In this screen, we recovered new alleles of the Mothers against dpp (Mad) and Medea genes. Phenotypic analysis of the new Medea mutations indicates that Medea, like Mad, is required for both embryonic and imaginal disc patterning. Genetic analysis suggests that Medea may have two independently mutable functions in patterning the embryonic ectoderm. Complete elimination of maternal and zygotic Medea activity in the early embryo results in a ventralized phenotype identical to that of null dpp mutants, indicating that Medea is required for all dpp-dependent signaling in embryonic dorsal-ventral patterning. Injection of mRNAs encoding DPP or a constitutively activated form of the DPP receptor, Thick veins, into embryos lacking all Medea activity failed to induce formation of any dorsal cell fates, demonstrating that Medea acts downstream of the thick veins receptor. We cloned Medea and found that it encodes a protein with striking sequence similarity to human SMAD4. Moreover, injection of human SMAD4 mRNA into embryos lacking all Medea activity conferred phenotypic rescue of the dorsal-ventral pattern, demonstrating conservation of function between the two gene products.Keywords
This publication has 70 references indexed in Scilit:
- Transforming growth factor β-induced phosphorylation of Smad3 is required for growth inhibition and transcriptional induction in epithelial cellsProceedings of the National Academy of Sciences, 1997
- Partnership between DPC4 and SMAD proteins in TGF-β signalling pathwaysNature, 1996
- Receptor-associated Mad homologues synergize as effectors of the TGF-β responseNature, 1996
- TGFβ Signaling: Receptors, Transducers, and Mad ProteinsCell, 1996
- MADR1, a MAD-Related Protein That Functions in BMP2 Signaling PathwaysCell, 1996
- DPC4 , A Candidate Tumor Suppressor Gene at Human Chromosome 18q21.1Science, 1996
- An absolute requirement for both the type II and type I receptors, punt and thick veins, for Dpp signaling in vivoCell, 1995
- Mechanism of activation of the TGF-β receptorNature, 1994
- Functional cDNA libraries from Drosophila embryosJournal of Molecular Biology, 1988
- Molecular consequences of awdb3, a cell-autonomous lethal mutation of Drosophila induced by hybrid dysgenesisDevelopmental Biology, 1988