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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
Mutual inactivation of Notch receptors and ligands facilitates developmental patterning
David Sprinzak1, Amit Lakhanpal, Lauren LeBon
1Howard Hughes Medical Institute, California Institute of Technology, Pasadena, California, USA.
Abstract:
Developmental patterning requires juxtacrine signaling in order to tightly coordinate the fates of neighboring cells. Recent work has shown that Notch and Delta, the canonical metazoan juxtacrine signaling receptor and ligand, mutually inactivate each other in the same cell. This cis-interaction generates mutually exclusive sending and receiving states in individual cells. It generally remains unclear, however, how this mutual inactivation and the resulting switching behavior can impact developmental patterning circuits. Here we address this question using mathematical modeling in the context of two canonical pattern formation processes: boundary formation and lateral inhibition. For boundary formation, in a model motivated by Drosophila wing vein patterning, we find that mutual inactivation allows sharp boundary formation across a broader range of parameters than models lacking mutual inactivation. This model with mutual inactivation also exhibits robustness to correlated gene expression perturbations. For lateral inhibition, we find that mutual inactivation speeds up patterning dynamics, relieves the need for cooperative regulatory interactions, and expands the range of parameter values that permit pattern formation, compared to canonical models. Furthermore, mutual inactivation enables a simple lateral inhibition circuit architecture which requires only a single downstream regulatory step. Both model systems show how mutual inactivation can facilitate robust fine-grained patterning processes that would be difficult to implement without it, by encoding a difference-promoting feedback within the signaling system itself. Together, these results provide a framework for analysis of more complex Notch-dependent developmental systems.
Insights
Notch and Delta signaling
Area of Science:
- Cellular and developmental biology
- Mathematical modeling
- Systems biology
Background:
- Juxtacrine signaling is crucial for coordinating cell fates during development.
- Notch and Delta proteins mutually inactivate each other via cis-interaction, creating distinct cell states.
- The impact of this mutual inactivation on developmental patterning remains unclear.
Purpose of the Study:
- To investigate how mutual inactivation in Notch-Delta signaling affects developmental patterning.
- To analyze boundary formation and lateral inhibition models using mathematical approaches.
- To understand the role of cis-interaction in robust pattern formation.
Main Methods:
- Mathematical modeling of developmental patterning processes.
- Simulation of boundary formation inspired by Drosophila wing vein development.
- Analysis of lateral inhibition models with and without mutual inactivation.
Main Results:
- Mutual inactivation enables sharper boundaries in Drosophila wing vein patterning models.
- This mechanism enhances robustness to gene expression noise.
- In lateral inhibition, mutual inactivation accelerates patterning and simplifies regulatory requirements.
- It expands parameter ranges for pattern formation and allows simpler circuit architectures.
Conclusions:
- Mutual inactivation in Notch-Delta signaling provides a built-in difference-promoting feedback mechanism.
- This facilitates robust, fine-grained developmental patterning.
- The findings offer a framework for studying complex Notch-dependent developmental systems.
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