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Mapping and Application of Enhancer-trap Flippase Expression in Larval and Adult Drosophila CNS
Published on: June 3, 2011
Identification of autosomal regions involved in Drosophila Raf function
W Li1, E Noll, N Perrimon
1Department of Genetics, Harvard Medical School, Boston, Massachusetts 02115, USA.
Abstract:
Raf is an essential downstream effector of activated p21(Ras) (Ras) in transducing proliferation or differentiation signals. Following binding to Ras, Raf is translocated to the plasma membrane, where it is activated by a yet unidentified "Raf activator." In an attempt to identify the Raf activator or additional molecules involved in the Raf signaling pathway, we conducted a genetic screen to identify genomic regions that are required for the biological function of Drosophila Raf (Draf). We tested a collection of chromosomal deficiencies representing approximately 70% of the autosomal euchromatic genomic regions for their abilities to enhance the lethality associated with a hypomorphic viable allele of Draf, Draf(Su2). Of the 148 autosomal deficiencies tested, 23 behaved as dominant enhancers of Draf(Su2), causing lethality in Draf(Su2) hemizygous males. Four of these deficiencies identified genes known to be involved in the Drosophila Ras/Raf (Ras1/Draf) pathway: Ras1, rolled (rl, encoding a MAPK), 14-3-3epsilon, and bowel (bowl). Two additional deficiencies removed the Drosophila Tec and Src homologs, Tec29A and Src64B. We demonstrate that Src64B interacts genetically with Draf and that an activated form of Src64B, when overexpressed in early embryos, causes ectopic expression of the Torso (Tor) receptor tyrosine kinase-target gene tailless. In addition, we show that a mutation in Tec29A partially suppresses a gain-of-function mutation in tor. These results suggest that Tec29A and Src64B are involved in Tor signaling, raising the possibility that they function to activate Draf. Finally, we discovered a genetic interaction between Draf(Su2) and Df(3L)vin5 that revealed a novel role of Draf in limb development. We find that loss of Draf activity causes limb defects, including pattern duplications, consistent with a role for Draf in regulation of engrailed (en) expression in imaginal discs.
Insights
This study identifies new genes, Tec29A and Src64B, involved in the Ras/Raf signaling pathway in Drosophila. These genes may activate Raf and play roles in development, including limb formation.
Area of Science:
- Cell signaling
- Developmental biology
- Genetics
Background:
- Raf is a key signaling molecule downstream of Ras, regulating cell proliferation and differentiation.
- The precise mechanism of Raf activation and its upstream regulators remain incompletely understood.
- Drosophila melanogaster serves as a powerful model organism for dissecting conserved signaling pathways.
Purpose of the Study:
- To identify novel genetic components involved in the Drosophila Ras/Raf signaling pathway.
- To investigate the function of identified genes in developmental processes.
- To elucidate the upstream activators of Drosophila Raf (Draf).
Main Methods:
- Conducted a large-scale genetic screen using Drosophila deficiencies to identify enhancers of a hypomorphic Draf allele.
- Performed genetic interaction analyses to validate the roles of candidate genes.
- Utilized overexpression and mutation studies in Drosophila embryos and imaginal discs.
Main Results:
- Identified 23 genomic regions that enhance Draf lethality, including known Ras/Raf pathway genes (Ras1, rl, 14-3-3epsilon, bowl).
- Discovered novel interactions with Drosophila Tec and Src homologs, Tec29A and Src64B.
- Demonstrated genetic interaction between Src64B and Draf, and a role for Tec29A and Src64B in Torso signaling.
- Revealed a previously unknown role for Draf in Drosophila limb development, affecting pattern formation and engrailed expression.
Conclusions:
- Tec29A and Src64B are implicated in Torso signaling and may function as Draf activators.
- Draf plays a critical role in regulating limb development and pattern formation.
- This study expands our understanding of the Ras/Raf pathway and its developmental functions.

