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Discovery and optimization of selective RET inhibitors via scaffold hopping
Zhibo Luo1, Lingli Wang2, Zhifei Fu3
1Baiyunshan Pharmaceutical General Factory, Guangzhou Baiyunshan Pharmaceutical Holdings Co., Ltd., Guangzhou 510515, PR China; Key Laboratory of Key Technology Research on Chemical Raw Materials and Preparations of Guangdong Province, Guangzhou 510515, PR China.
Abstract:
Aberrant alterations of rearranged during transfection (RET) have been identified as actionable drivers of multiple cancers, including thyroid carcinoma and lung cancer. Currently, several approved multikinase inhibitors such as vandetanib and cabozantinib demonstrate clinical activity in patients with RET-rearranged or RET-mutant cancers. However, the observed response rates are only modest and the 'off-target' toxicities resulted from the inhibition of other kinases is also a concern. Herein, we designed and synthesized a series of RET inhibitors based on the structure of selective RET inhibitor BLU-667 and investigated their biological activities. We identified compound 9 as a novel potent and selective RET inhibitor with improved drug-like properties. Compound 9 exhibits a selective inhibitory profile with an inhibitory concentration 50 (IC50) of 1.29 nM for RET and 1.97 (RET V804M) or 0.99 (RET M918T) for mutant RETs. The proliferation of Ba/F3 cells transformed with NSCLC related KIF5B-RET fusion was effectively suppressed by compound 9 (IC50 = 19 nM). Additionally, compound 9 displayed less 'off-target' effects than BLU-667. In mouse xenograft models, compound 9 repressed tumor growth driven by KIF5B-RET-Ba/F3 cells in a dose-dependent manner. Based on its exceptional kinase selectivity, good potency and high exposure in tumor tissues, compound 9 represents a promising lead for the discovery of RET directed therapeutic agents and the study of RET-driven tumor biology.
Insights
A novel potent and selective rearranged during transfection (RET) inhibitor, compound 9, effectively suppresses cancer cell proliferation and tumor growth. It shows improved drug-like properties and reduced off-target effects compared to existing therapies.
Area of Science:
- Oncology
- Medicinal Chemistry
- Molecular Biology
Background:
- Aberrant rearranged during transfection (RET) alterations drive various cancers, including thyroid and lung cancers.
- Approved multikinase inhibitors show modest efficacy and off-target toxicities in RET-driven cancers.
Purpose of the Study:
- To design and synthesize novel potent and selective RET inhibitors.
- To evaluate the anti-cancer activity and drug-like properties of newly developed compounds.
Main Methods:
- Structure-based design and synthesis of RET inhibitors.
- In vitro kinase inhibition assays and cellular proliferation assays.
- In vivo efficacy studies using mouse xenograft models.
Main Results:
- Compound 9 identified as a potent and selective RET inhibitor (IC50 = 1.29 nM for RET).
- Compound 9 effectively suppressed proliferation of KIF5B-RET fusion-transformed Ba/F3 cells (IC50 = 19 nM).
- Compound 9 demonstrated dose-dependent tumor growth inhibition in mouse xenograft models with reduced off-target effects.
Conclusions:
- Compound 9 exhibits promising potency, selectivity, and drug-like properties for RET-driven cancers.
- Compound 9 represents a potential lead for developing novel therapeutic agents targeting RET.
- Further investigation of compound 9 is warranted for RET-directed cancer therapy and research.
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