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The Ephb2 Receptor Uses Homotypic, Head-to-Tail Interactions within Its Ectodomain as an Autoinhibitory Control
Yan Xu1,2, Dorothea Robev2, Nayanendu Saha2
1Department of Veterinary Biosciences, College of Veterinary Medicine, The Ohio State University, Columbus, OH 43210, USA.
Abstract:
The Eph receptor tyrosine kinases and their ephrin ligands direct axon pathfinding and neuronal cell migration, as well as mediate many other cell-cell communication events. Their dysfunctional signaling has been shown to lead to various diseases, including cancer. The Ephs and ephrins both localize to the plasma membrane and, upon cell-cell contact, form extensive signaling assemblies at the contact sites. The Ephs and the ephrins are divided into A and B subclasses based on their sequence conservation and affinities for each other. The molecular details of Eph-ephrin recognition have been previously revealed and it has been documented that ephrin binding induces higher-order Eph assemblies, which are essential for full biological activity, via multiple, distinct Eph-Eph interfaces. One Eph-Eph interface type is characterized by a homotypic, head-to-tail interaction between the ligand-binding and the fibronectin domains of two adjacent Eph molecules. While the previous Eph ectodomain structural studies were focused on A class receptors, we now report the crystal structure of the full ectodomain of EphB2, revealing distinct and unique head-to-tail receptor-receptor interactions. The EphB2 structure and structure-based mutagenesis document that EphB2 uses the head-to-tail interactions as a novel autoinhibitory control mechanism for regulating downstream signaling and that these interactions can be modulated by posttranslational modifications.
Insights
Eph receptor tyrosine kinases (Eph RTKs) and ephrin ligands mediate cell communication. New EphB2 structures reveal head-to-tail interactions that regulate signaling, offering insights into disease mechanisms.
Area of Science:
- Molecular Biology
- Cell Signaling
- Structural Biology
Background:
- Eph receptor tyrosine kinases (Eph RTKs) and ephrin ligands are crucial for cell-cell communication, impacting development and disease.
- Dysfunctional Eph-ephrin signaling is implicated in various diseases, including cancer.
- Eph RTKs and ephrins form signaling assemblies at cell contact sites, essential for biological activity.
Purpose of the Study:
- To elucidate the structural basis of EphB2 ectodomain interactions.
- To investigate the role of EphB2 head-to-tail interactions in regulating downstream signaling.
- To explore the modulation of these interactions by posttranslational modifications.
Main Methods:
- X-ray crystallography of the full ectodomain of EphB2.
- Structure-based mutagenesis.
- Analysis of receptor-receptor interactions.
Main Results:
- The crystal structure of the full EphB2 ectodomain revealed distinct head-to-tail receptor-receptor interactions.
- These head-to-tail interactions function as a novel autoinhibitory mechanism for EphB2 signaling.
- The study identified that posttranslational modifications can modulate these interactions.
Conclusions:
- EphB2 utilizes unique head-to-tail interactions for autoinhibition, providing a new regulatory mechanism for Eph signaling.
- Understanding these structural and regulatory aspects of EphB2 is vital for deciphering its role in health and disease.
- The findings open avenues for therapeutic strategies targeting Eph-ephrin pathways.
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