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Published on: November 9, 2020
Discovery of a first-in-class protein degrader for the c-ros oncogene 1 (ROS1)
Jiawen Yang1, Yifan Wu2, Qiaoliang Zhu3
1Department of Thoracic Surgery, Zhongshan Hospital, Fudan University, Shanghai 200032, China; Shanghai Institute for Advanced Immunochemical Studies, ShanghaiTech University, Shanghai 201210, China; Shanghai Clinical Research and Trial Center, Shanghai 201210, China.
Abstract:
The c-ros oncogene 1 (ROS1), an oncogenic driver, is known to induce non-small cell lung cancer (NSCLC) when overactivated, particularly through the formation of fusion proteins. Traditional targeted therapies focus on inhibiting ROS1 activity with ROS 1 inhibitors to manage cancer progression. However, a new strategy involving the design of protein degraders offers a more potent approach by completely degrading ROS1 fusion oncoproteins, thereby effectively blocking their kinase activity and enhancing anti-tumour potential. Utilizing PROteolysis-TArgeting Chimera (PROTAC) technology and informed by molecular docking and rational design, we report the first ROS1-specific PROTAC, SIAIS039. This degrader effectively targets multiple ROS1 fusion oncoproteins (CD74-ROS1, SDC4-ROS1 and SLC34A2-ROS1) in engineered Ba/F3 cells and HCC78 cells, demonstrating anti-tumour effects against ROS1 fusion-driven cancer cells. It suppresses cell proliferation, induces cell cycle arrest, and apoptosis, and inhibits clonogenicity. The anti-tumour efficacy of SIAIS039 surpasses two approved drugs, crizotinib and entrectinib, and matches that of the top inhibitors, including lorlatinib and taletrectinib. Mechanistic studies confirm that the degradation induced by 039 requires the participation of ROS1 ligands and E3 ubiquitin ligases, and involves the proteasome and ubiquitination. In addition, 039 exhibited excellent oral bioavailability in a mouse xenograft model, highlighting its potential for clinical application. In conclusion, our study presents a promising and novel therapeutic strategy for ROS1 fusion-positive NSCLC by targeting ROS1 fusion oncoproteins for degradation, laying the foundation for the development of further PROTAC and offering hope for patients with ROS1 fusion-positive NSCLC.
Insights
Researchers developed SIAIS039, the first PROteolysis-TArgeting Chimera (PROTAC) to degrade ROS1 fusion oncoproteins. This novel approach shows superior anti-tumour effects in non-small cell lung cancer (NSCLC) models, offering new hope for patients.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- ROS1 fusions are key drivers in non-small cell lung cancer (NSCLC).
- Current therapies inhibit ROS1 activity but do not eliminate the oncogenic driver.
- Protein degraders offer a more potent therapeutic strategy by eliminating target oncoproteins.
Purpose of the Study:
- To develop and characterize the first ROS1-specific PROteolysis-TArgeting Chimera (PROTAC).
- To evaluate the anti-tumour efficacy of the novel PROTAC against ROS1 fusion-driven NSCLC.
- To investigate the mechanism of action and pharmacokinetic profile of the PROTAC.
Main Methods:
- PROTAC design using molecular docking and rational drug design.
- In vitro studies in engineered cell lines (Ba/F3, HCC78) expressing ROS1 fusions.
- In vivo efficacy assessment using a mouse xenograft model.
- Mechanistic studies involving ubiquitination and proteasomal degradation pathways.
Main Results:
- SIAIS039 effectively degrades multiple ROS1 fusion oncoproteins (CD74-ROS1, SDC4-ROS1, SLC34A2-ROS1).
- SIAIS039 demonstrates significant anti-tumour activity, suppressing proliferation, inducing cell cycle arrest, and apoptosis.
- The PROTAC exhibits superior efficacy compared to approved drugs and matches top-tier inhibitors, with good oral bioavailability.
Conclusions:
- SIAIS039 represents a novel and potent therapeutic strategy for ROS1 fusion-positive NSCLC via targeted protein degradation.
- The study validates PROTAC technology as a promising approach for treating cancers driven by specific oncoproteins.
- This work lays the groundwork for developing next-generation PROTACs for ROS1-driven malignancies.
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