Structure and chemical inhibition of the RET tyrosine kinase domain
Phillip P Knowles1, Judith Murray-Rust, Svend Kjaer
1Structural Biology Laboratory, London Research Institute, Cancer Research UK, London WC2A 3PX, UK.
Abstract:
The RET proto-oncogene encodes a receptor tyrosine kinase for the glial cell line-derived neurotrophic factor family of ligands. Loss-of-function mutations in RET are implicated in Hirschsprung disease, whereas activating mutations in RET are found in human cancers, including familial medullar thyroid carcinoma and multiple endocrine neoplasias 2A and 2B. We report here the biochemical characterization of the human RET tyrosine kinase domain and the structure determination of the non-phosphorylated and phosphorylated forms. Both structures adopt the same active kinase conformation competent to bind ATP and substrate and have a pre-organized activation loop conformation that is independent of phosphorylation status. In agreement with the structural data, enzyme kinetic data show that autophosphorylation produces only a modest increase in activity. Longer forms of RET containing the juxtamembrane domain and C-terminal tail exhibited similar kinetic behavior, implying that there is no cis-inhibitory mechanism within the RET intracellular domain. Our results suggest the existence of alternative inhibitory mechanisms, possibly in trans, for the autoregulation of RET kinase activity. We also present the structures of the RET tyrosine kinase domain bound to two inhibitors, the pyrazolopyrimidine PP1 and the clinically relevant 4-anilinoquinazoline ZD6474. These structures explain why certain multiple endocrine neoplasia 2-associated RET mutants found in patients are resistant to inhibition and form the basis for design of more effective inhibitors.
Insights
The RET receptor tyrosine kinase maintains an active conformation regardless of phosphorylation. This suggests alternative, possibly trans-acting, mechanisms regulate its activity, informing the design of new cancer inhibitors.
Area of Science:
- Biochemistry
- Structural Biology
- Oncology
Background:
- The RET proto-oncogene encodes a receptor tyrosine kinase involved in development and cancer.
- Mutations in RET are linked to Hirschsprung disease and various cancers, including medullary thyroid carcinoma.
Purpose of the Study:
- To biochemically characterize the human RET tyrosine kinase domain.
- To determine the structures of non-phosphorylated and phosphorylated RET kinase.
- To investigate RET kinase inhibition and resistance mechanisms.
Main Methods:
- Protein expression and purification of human RET tyrosine kinase domain.
- X-ray crystallography for structure determination.
- Enzyme kinetics assays.
- Co-crystallization with inhibitors PP1 and ZD6474.
Main Results:
- RET kinase adopts an active conformation independent of phosphorylation status.
- Autophosphorylation yields only a modest increase in activity.
- No cis-inhibitory mechanism was identified within the RET intracellular domain.
- Structures with inhibitors PP1 and ZD6474 reveal resistance mechanisms in RET mutants.
Conclusions:
- RET kinase autoregulation likely involves trans-acting mechanisms.
- Structural insights explain resistance to inhibitors in certain RET mutants.
- Findings provide a basis for designing more effective RET-targeted cancer therapies.
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Receptor Tyrosine Kinases
Inhibition of Cdk Activity
Inhibition of CDK Activity
Enzyme Inhibition
The JAK-STAT Signaling Pathway
Transducer Mechanism: Enzyme-Linked Receptors
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