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Published on: December 7, 2014
Mirk/Dyrk1B Kinase Inhibitors in Targeted Cancer Therapy
Nikolaos Kokkorakis1,2, Marios Zouridakis3, Maria Gaitanou1
1Laboratory of Cellular and Molecular Neurobiology-Stem Cells, Hellenic Pasteur Institute, 11521 Athens, Greece.
Abstract:
During the last years, there has been an increased effort in the discovery of selective and potent kinase inhibitors for targeted cancer therapy. Kinase inhibitors exhibit less toxicity compared to conventional chemotherapy, and several have entered the market. Mirk/Dyrk1B kinase is a promising pharmacological target in cancer since it is overexpressed in many tumors, and its overexpression is correlated with patients' poor prognosis. Mirk/Dyrk1B acts as a negative cell cycle regulator, maintaining the survival of quiescent cancer cells and conferring their resistance to chemotherapies. Many studies have demonstrated the valuable therapeutic effect of Mirk/Dyrk1B inhibitors in cancer cell lines, mouse xenografts, and patient-derived 3D-organoids, providing a perspective for entering clinical trials. Since the majority of Mirk/Dyrk1B inhibitors target the highly conserved ATP-binding site, they exhibit off-target effects with other kinases, especially with the highly similar Dyrk1A. In this review, apart from summarizing the data establishing Dyrk1B as a therapeutic target in cancer, we highlight the most potent Mirk/Dyrk1B inhibitors recently reported. We also discuss the limitations and perspectives for the structure-based design of Mirk/Dyrk1B potent and highly selective inhibitors based on the accumulated structural data of Dyrk1A and the recent crystal structure of Dyrk1B with AZ191 inhibitor.
Insights
Mirk/Dyrk1B kinase inhibitors show promise for targeted cancer therapy by inhibiting cancer cell survival and chemoresistance. Developing selective inhibitors is crucial to minimize off-target effects on similar kinases like Dyrk1A.
Area of Science:
- Oncology
- Pharmacology
- Biochemistry
Background:
- Mirk/Dyrk1B kinase is overexpressed in numerous cancers, correlating with poor patient prognosis.
- This kinase regulates cell cycle, promoting survival and chemotherapy resistance in quiescent cancer cells.
- Targeting Mirk/Dyrk1B offers a promising strategy for cancer therapy with potentially lower toxicity than conventional chemotherapy.
Purpose of the Study:
- To review the evidence supporting Mirk/Dyrk1B as a viable therapeutic target in oncology.
- To highlight recently developed potent inhibitors of Mirk/Dyrk1B.
- To discuss challenges and future directions in designing selective Mirk/Dyrk1B inhibitors.
Main Methods:
- Literature review of studies on Mirk/Dyrk1B kinase in cancer.
- Analysis of reported Mirk/Dyrk1B inhibitors and their efficacy.
- Examination of structural data for Mirk/Dyrk1A and Mirk/Dyrk1B-AZ191 complex.
Main Results:
- Mirk/Dyrk1B inhibitors have demonstrated therapeutic effects in preclinical cancer models, including cell lines, xenografts, and organoids.
- Current inhibitors often target the ATP-binding site, leading to potential off-target effects, particularly with the highly similar Dyrk1A kinase.
- Accumulated structural data provides a basis for structure-based drug design.
Conclusions:
- Mirk/Dyrk1B is a validated therapeutic target for cancer treatment.
- Further research is needed to develop highly selective Mirk/Dyrk1B inhibitors to enhance efficacy and reduce side effects.
- Structure-based design approaches hold promise for creating next-generation Mirk/Dyrk1B inhibitors.
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