RET receptor tyrosine kinase architecture, assemblies, and activation

Mia Zol-Hanlon1, Neil Q McDonald1,2

  • 1Signalling and Structural Biology Laboratory, Francis Crick Institute, London, United Kingdom.

Insights

The RET receptor, unique for its cadherin-like domains, binds GDNF family ligands (GFLs) via GFR⍺ co-receptors. Understanding RET structure reveals how these complexes activate its tyrosine kinase for signal transmission.

Area of Science:

  • Molecular Biology
  • Cell Signaling
  • Structural Biology

Background:

  • The RET receptor tyrosine kinase is unique among 58 human RTKs for its extracellular cadherin-like domains.
  • These domains form a binding site for glial-cell line derived neurotrophic factor (GDNF) family ligands (GFLs) complexed with GFR⍺ (GDNF family receptor alpha) co-receptors.

Purpose of the Study:

  • To explore how the structure and architecture of the RET receptor facilitate flexible GFL-GFR⍺ binding.
  • To summarize recent advancements in understanding RET structure.
  • To discuss how distinct GFL-GFR⍺-RET complexes activate RET tyrosine kinase signaling.

Main Methods:

  • Structural analysis of the RET receptor and its ligand-binding module.
  • Review of recent literature on RET structure and function.
  • Analysis of GFL-GFR⍺-RET complex assembly and activation mechanisms.

Main Results:

  • The RET extracellular module exhibits a flexible binding site architecture for GFL-GFR⍺ ligands.
  • Recent structural studies provide insights into RET's conformation and ligand interactions.
  • Distinct complex formations dictate the activation of RET's intrinsic tyrosine kinase activity.

Conclusions:

  • The structural flexibility of RET is key to its function.
  • Understanding RET complex assembly is crucial for elucidating intracellular signal relay.
  • This review highlights the interplay between RET structure, ligand binding, and kinase activation.

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