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A High-throughput Cre-Lox Activated Viral Membrane Fusion Assay to Identify Inhibitors of HIV-1 Viral Membrane Fusion
Published on: August 14, 2018
Expression, purification and crystallization of CLK1 kinase - A potential target for antiviral therapy
Noa Dekel1, Yael Eisenberg-Domovich1, Alexander Karlas2
1The Wolfson Centre for Applied Structural Biology, The Hebrew University of Jerusalem, Jerusalem 91904, Israel.
Abstract:
Cdc-like kinase 1 (CLK1) is a dual-specificity kinase capable of autophosphorylation on tyrosine residues and Ser/Thr phosphorylation of its substrates. CLK1 belongs to the CLK kinase family that regulates alternative splicing through phosphorylation of serine-arginine rich (SR) proteins. Recent studies have demonstrated that CLK1 has an important role in the replication of influenza A and chikungunya viruses. Furthermore, CLK1 was found to be relevant for the replication of HIV-1 and the West Nile virus, making CLK1 an interesting cellular candidate for the development of a host-directed antiviral therapy that might be efficient for treatment of newly emerging viruses. We describe here our attempts and detailed procedures to obtain the recombinant kinase domain of CLK1 in suitable amounts for crystallization in complex with specific inhibitors. The key solution for the reproducibility of crystals resides in devising and refining expression and purification protocols leading to homogeneous protein. Co-expression of CLK1 with λ-phosphatase and careful purification has yielded crystals of CLK1 complexed with the KH-CB19 inhibitor that diffracted to 1.65 Å. These results paved the path to the screening of more structures of CLK1 complexed compounds, leading to further optimization of their inhibitory activity. Moreover, since kinases are desired targets in numerous pathologies, the approach we report here, the co-expression of kinases with λ-phosphatase, previously used in other kinases, can be adopted as a general protocol in numerous kinase targets for obtaining reproducible and homogenic non-phosphorylated (inactive) forms suitable for biochemical and structural studies thus facilitating the development of novel inhibitors.
Insights
Cdc-like kinase 1 (CLK1) is crucial for viral replication. Researchers developed a method using co-expression with lambda-phosphatase to obtain pure, inactive CLK1 for crystallization, aiding antiviral drug development.
Area of Science:
- Biochemistry
- Structural Biology
- Virology
Background:
- Cdc-like kinase 1 (CLK1) is a key regulator of alternative splicing and plays a role in the replication of various viruses, including influenza A, chikungunya, HIV-1, and West Nile virus.
- Its involvement in viral replication makes CLK1 a potential target for host-directed antiviral therapies against emerging viruses.
Purpose of the Study:
- To obtain recombinant CLK1 kinase domain in sufficient quantities for crystallization with specific inhibitors.
- To establish reproducible expression and purification protocols for homogeneous CLK1 protein.
Main Methods:
- Co-expression of CLK1 with lambda-phosphatase to yield non-phosphorylated, inactive protein.
- Refinement of expression and purification protocols to achieve protein homogeneity.
- Crystallization of CLK1 in complex with the KH-CB19 inhibitor.
Main Results:
- Successfully obtained homogeneous CLK1 protein through optimized co-expression and purification.
- Achieved crystallization of CLK1 complexed with the KH-CB19 inhibitor, yielding crystals that diffracted to 1.65 Å resolution.
- Demonstrated the utility of CLK1-inhibitor complex structures for further optimization of inhibitory activity.
Conclusions:
- The co-expression of CLK1 with lambda-phosphatase provides a reliable method for obtaining non-phosphorylated kinase suitable for structural studies.
- This approach facilitates the development of novel CLK1 inhibitors and can be broadly applied to other kinase targets for drug discovery.
- The reported methodology advances the potential for developing host-directed antiviral therapies targeting CLK1.

