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Published on: July 17, 2019
Enzymatic Characterization of Wild-Type and Mutant Janus Kinase 1
Nicholas P D Liau1,2, Artem Laktyushin3,4, Rhiannon Morris5,6
1Walter and Eliza Hall Institute, 1G Royal Parade, Parkville 3052, VIC, Australia. liau.nick@gmail.com.
Abstract:
Janus kinases (JAKs) are found constitutively associated with cytokine receptors and are present in an inactive state prior to cytokine exposure. Activating mutations of JAKs are causative for a number of leukemias, lymphomas, and myeloproliferative diseases. In particular, the JAK2V617F mutant is found in most human cases of polycythemia vera, a disease characterized by over-production of erythrocytes. The V617F mutation is found in the pseudokinase domain of JAK2 and it leads to cytokine-independent activation of the kinase, as does the orthologous mutation in other JAK-family members. The mechanism whereby this mutation hyperactivates these kinases is not well understood, primarily due to the fact that the full-length JAK proteins are difficult to produce for structural and kinetic studies. Here we have overcome this limitation to perform a series of enzymatic analyses on full-length JAK1 and its constitutively active mutant form (JAK1V658F). Consistent with previous studies, we show that the presence of the pseudokinase domain leads to a dramatic decrease in enzymatic activity with no further decrease from the presence of the FERM or SH2 domains. However, we find that the mutant kinase, in vitro, is indistinguishable from the wild-type enzyme in every measurable parameter tested: KM (ATP), KM (substrate), kcat, receptor binding, thermal stability, activation rate, dephosphorylation rate, and inhibitor affinity. These results show that the V658F mutation does not enhance the intrinsic enzymatic activity of JAK. Rather this data is more consistent with a model in which there are cellular processes and interactions that prevent JAK from being activated in the absence of cytokine and it is these constraints that are affected by disease-causing mutations.
Insights
Activating Janus kinase (JAK) mutations cause blood cancers. This study found that the JAK1V658F mutation does not increase the enzyme's intrinsic activity, suggesting other cellular factors are involved in disease.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Janus kinases (JAKs) are crucial for cytokine signaling and are constitutively associated with cytokine receptors.
- Activating JAK mutations, such as JAK2V617F in polycythemia vera, are linked to leukemias, lymphomas, and myeloproliferative diseases.
- The precise mechanism by which JAK mutations lead to hyperactivation remains unclear, partly due to challenges in studying full-length JAK proteins.
Purpose of the Study:
- To investigate the enzymatic activity of full-length JAK1 and its constitutively active mutant JAK1V658F.
- To elucidate the role of the pseudokinase domain in JAK enzymatic activity.
- To understand the mechanism of JAK hyperactivation in disease-associated mutations.
Main Methods:
- Production and purification of full-length wild-type JAK1 and the JAK1V658F mutant.
- Comprehensive enzymatic assays including kinetic parameter determination (KM, kcat), receptor binding, thermal stability, and inhibitor affinity.
- Analysis of activation and dephosphorylation rates.
Main Results:
- The pseudokinase domain significantly reduces JAK1 enzymatic activity.
- In vitro, JAK1V658F exhibited indistinguishable kinetic parameters (KM, kcat), receptor binding, thermal stability, and inhibitor affinity compared to wild-type JAK1.
- The V658F mutation did not enhance the intrinsic enzymatic activity of JAK1.
Conclusions:
- The V658F mutation does not directly increase the inherent enzymatic capability of JAK1.
- Disease-causing JAK mutations likely affect cellular processes that regulate JAK activation in response to cytokines.
- Further research should focus on cellular interactions and regulatory mechanisms rather than solely on intrinsic kinase activity to understand JAK-driven diseases.
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