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Updated: Oct 1, 2026

Cell Aggregation Assays to Evaluate the Binding of the Drosophila Notch with Trans-Ligands and its Inhibition by Cis-Ligands
Published on: January 2, 2018
Reciprocal regulatory interactions between the Notch and Ras signaling pathways in the Drosophila embryonic mesoderm
Ana Carmena1, Eugene Buff, Marc S Halfon
1Program in Molecular Biology, Memorial Sloan-Kettering Cancer Institute, New York, New York 10021, USA.
Abstract:
Convergent intercellular signals must be precisely integrated in order to elicit specific biological responses. During specification of muscle and cardiac progenitors from clusters of equivalent cells in the Drosophila embryonic mesoderm, the Ras/MAPK pathway--activated by both epidermal and fibroblast growth factor receptors--functions as an inductive cellular determination signal, while lateral inhibition mediated by Notch antagonizes this activity. A critical balance between these signals must be achieved to enable one cell of an equivalence group to segregate as a progenitor while its neighbors assume a nonprogenitor identity. We have investigated whether these opposing signals directly interact with each other, and we have examined how they are integrated by the responding cells to specify their unique fates. Our findings reveal that Ras and Notch do not function independently; rather, we have uncovered several modes of cross-talk between these pathways. Ras induces Notch, its ligand Delta, and the epidermal growth factor receptor antagonist, Argos. We show that Delta and Argos then synergize to nonautonomously block a positive autoregulatory feedback loop that amplifies a fate-inducing Ras signal. This feedback loop is characterized by Ras-mediated upregulation of proximal components of both the epidermal and fibroblast growth factor receptor pathways. In turn, Notch activation in nonprogenitors induces its own expression and simultaneously suppresses both Delta and Argos levels, thereby reinforcing a unidirectional inhibitory response. These reciprocal interactions combine to generate the signal thresholds that are essential for proper specification of progenitors and nonprogenitors from groups of initially equivalent cells.
Insights
Cell fate determination in Drosophila requires balancing Ras/MAPK and Notch signaling. Cross-talk between these pathways ensures proper progenitor specification by regulating feedback loops and signal thresholds.
Area of Science:
- Developmental Biology
- Cell Signaling
- Genetics
Background:
- Precise integration of intercellular signals is crucial for biological responses.
- In Drosophila mesoderm, Ras/MAPK and Notch signaling pathways control progenitor specification.
- A balance between inductive (Ras/MAPK) and inhibitory (Notch) signals is essential for cell fate decisions.
Purpose of the Study:
- To investigate the interaction between Ras/MAPK and Notch signaling pathways.
- To understand how these opposing signals are integrated by cells to specify unique fates.
- To elucidate the mechanisms underlying progenitor and non-progenitor cell specification.
Main Methods:
- Investigated cross-talk between Ras and Notch pathways in Drosophila.
- Analyzed the induction of Notch, Delta, and Argos by Ras.
- Examined the synergistic effects of Delta and Argos on Ras signaling feedback loops.
- Studied Notch-mediated reinforcement of inhibitory responses in non-progenitor cells.
Main Results:
- Ras and Notch pathways exhibit significant cross-talk, not functioning independently.
- Ras induces Notch, its ligand Delta, and the antagonist Argos.
- Delta and Argos synergistically inhibit a positive feedback loop amplifying Ras signals.
- Notch activation in non-progenitors reinforces inhibition by upregulating its own expression and downregulating Delta and Argos.
Conclusions:
- Reciprocal interactions between Ras and Notch signaling establish critical signal thresholds.
- These interactions ensure the correct specification of progenitor and non-progenitor cells from equivalent cell groups.
- The findings reveal a complex regulatory network governing cell fate decisions in Drosophila development.
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