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Published on: March 1, 2024
The oncogenic CCDC6-RET fusion protein is a dual ATP- and ADP-dependent kinase
Ana Martín-Hurtado1, Julia Contreras1, Jana Sánchez-Wandelmer2
1Protein Phosphorylation and Cancer Group, Structural Biology Programme, Spanish National Cancer Research Center (CNIO), Madrid, Spain.
Abstract:
Gene fusion products involving protein kinases are known drivers in human cancers and actionable targets for personalized therapy, yet the structural and molecular determinants that control their function are largely unexplored. Here we show that a CCDC6-RET fusion protein, a driver and therapeutic target in lung and thyroid cancers, is a highly active dimeric kinase. Time-resolved mass spectrometry together with a robust biochemical and biophysical characterization reveal that CCDC6-RET functions as a dual ATP- and ADP-dependent kinase able to bind both nucleotides and to use them as phosphoryl donors. We also identify a crosstalk between the C-terminal and the activation segments controlling both the processing and the catalytic activity of the fusion protein. Furthermore, a 3D-structural assembly of a CCDC6-RET homodimer was generated combining single particle electron microscopy, small-angle X-ray scattering and in silico molecular dynamics simulations. Our structural model together with cross-linking mass spectrometry data demonstrated that CCDC6-RET in the inactive state forms a face-to-face dimer characterized by intermolecular-crosslinked activation segments. Upon nucleotide binding the catalytic domains swing apart and fast activation loop phosphorylation could be driven by a mechanism in cis. Our work uncovers the molecular and structural determinants that control the mechanism of CCDC6-RET autoactivation.
Insights
CCDC6-RET fusion protein, a cancer driver, functions as a dual ATP/ADP-dependent dimeric kinase. Structural studies reveal its autoactivation mechanism involving nucleotide binding and activation segment crosstalk.
Area of Science:
- Oncology
- Molecular Biology
- Structural Biology
Background:
- Gene fusions involving protein kinases drive human cancers.
- These fusion proteins are key targets for personalized cancer therapy.
- Structural and functional determinants of fusion kinase activity remain largely unknown.
Purpose of the Study:
- To elucidate the molecular and structural mechanisms governing CCDC6-RET fusion protein activity.
- To understand the autoactivation process of this oncogenic kinase.
Main Methods:
- Time-resolved mass spectrometry
- Biochemical and biophysical characterization
- Single particle electron microscopy (spEM)
- Small-angle X-ray scattering (SAXS)
- In silico molecular dynamics simulations
- Cross-linking mass spectrometry (XL-MS)
Main Results:
- CCDC6-RET forms a highly active homodimer.
- It functions as a dual ATP- and ADP-dependent kinase.
- A crosstalk between C-terminal and activation segments controls activity.
- Structural analysis revealed a face-to-face dimer with crosslinked activation segments in the inactive state.
- Nucleotide binding induces domain rearrangement, facilitating activation loop phosphorylation via a cis mechanism.
Conclusions:
- CCDC6-RET autoactivates through a novel mechanism involving nucleotide-dependent conformational changes.
- Understanding these determinants provides insights into targeted therapy development for CCDC6-RET-driven cancers.
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