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Updated: Aug 21, 2025

Monitoring eIF4F Assembly by Measuring eIF4E-eIF4G Interaction in Live Cells
Published on: May 1, 2020
Structural insights into EphA4 unconventional activation from prediction of the EphA4 and its complex with
Yi-Chuan Li1, Hirohito Yamaguchi2, Yen-Yi Liu3,4
1Department of Biological Science and Technology, China Medical University Taichung, Taiwan.
Abstract:
It has been shown that several ribonuclease (RNase) A superfamily proteins serve as ligands of receptor tyrosine kinases (RTKs), representing a new concept for ligand/receptor interaction. Moreover, recent studies indicate high clinical values for this type of ligand/RTK interactions. However, there is no structural report for this new family of ligand/receptor. In an attempt to understand how RNase and RTK may interact, we focused on the RNase1/ephrin type-A receptor 4 (EphA4) complex and predicted their structure by using the state-of-the-art machine learning method, AlphaFold and its derivative method, AF2Complex. In this model, electrostatic force plays an essential role for the specific ligand/receptor interaction. We found the R39 of RNase1 is the key residue for EphA4-binding and activation. Mutation on this residue causes disruption of an essential basic patch, resulting in weaker ligand-receptor association and leading to the loss of activation. By comparing the surface charge distribution of the RNase A superfamily, we found the positively charged residues on the RNase1 surface is more accessible for EphA4 forming salt bridges than other RNases. Furthermore, RNase1 binds to the ligand-binding domain (LBD) of EphA4, which is responsible for the traditional ligand ephrin-binding. Our model reveals the location of RNase1 on EphA4 partially overlaps with that of ephrin-A5, a traditional ligand of EphA4, suggesting steric hindrance as the basis by which the ephrin-A5 precludes interactions of RNase1 with EphA4. Together, our discovery of RNase1/EphA4 interface provides a potential treatment strategy by blocking the RNase1-EphA4 axis.
Insights
Ribonuclease 1 (RNase1) binds to the Ephrin type-A receptor 4 (EphA4) ligand-binding domain. Key residue R39 on RNase1 is crucial for EphA4 binding and activation, offering potential therapeutic targets.
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Signaling
Background:
- Ribonuclease (RNase) A superfamily proteins are emerging as ligands for receptor tyrosine kinases (RTKs).
- This RNase/RTK interaction represents a novel class of ligand/receptor signaling with significant clinical implications.
- Structural insights into these interactions are currently lacking.
Purpose of the Study:
- To elucidate the structural basis of the interaction between RNase1 and Ephrin type-A receptor 4 (EphA4).
- To identify key residues and mechanisms governing RNase1-EphA4 binding and activation.
- To explore the therapeutic potential of targeting the RNase1-EphA4 axis.
Main Methods:
- Utilized AlphaFold and AF2Complex, advanced machine learning methods, for structure prediction of the RNase1/EphA4 complex.
- Analyzed electrostatic forces, surface charge distribution, and key residues involved in the interaction.
- Compared RNase1 with other RNase A superfamily members regarding EphA4 binding potential.
Main Results:
- Predicted a model where electrostatic forces are critical for RNase1 and EphA4 interaction.
- Identified R39 on RNase1 as a key residue for EphA4 binding and activation; mutations disrupt this.
- RNase1 binds to the EphA4 ligand-binding domain (LBD), partially overlapping with ephrin-A5 binding, suggesting steric hindrance.
Conclusions:
- The RNase1-EphA4 interaction is mediated by specific electrostatic interactions, with R39 being essential.
- RNase1's binding to EphA4's LBD, similar to traditional ephrins, implies potential competition and steric hindrance.
- The elucidated RNase1/EphA4 interface offers a potential therapeutic strategy by targeting this axis.
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