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Updated: Jul 15, 2025

Monitoring of Nanodrug Accumulation in Murine Breast Cancer Metastases
Published on: August 23, 2024
Identification and validation of a small molecule targeting ROR1 for the treatment of triple negative breast cancer
Shradheya R R Gupta1, Tram M Ta2, Maryam Khan2
1Molecular Biology Research Laboratory, Department of Zoology, Deshbandhu College, University of Delhi, New Delhi, India.
Abstract:
Introduction: Breast cancer is the most common cancer in women, with roughly 10-15% of new cases classified as triple-negative breast cancer (TNBC). Traditional chemotherapies are often toxic to normal cells. Therefore, it is important to discover new anticancer compounds that target TNBC while causing minimal damage to normal cells. Receptor tyrosine kinase-like Orphan Receptor 1 (ROR1) is an oncofetal protein overexpressed in numerous human malignancies, including TNBC. This study investigated potential small molecules targeting ROR1. Methodology: Using AutoDock Vina and Glide, we screened 70,000 chemicals for our investigation. We obtained 10 representative compounds via consensus voting, deleting structural alerts, and clustering. After manual assessment, compounds 2 and 4 were chosen for MD simulation and cell viability experiment. Compound 4 showed promising results in the viability assay, which led us to move further with the apoptosis assay and immunoblotting. Results: Compound 4 (CID1261330) had docking scores of -6.635 and -10.8. It fits into the pocket and shows interactions with GLU64, ASP174, and PHE93. Its RMSD fluctuates around 0.20 nm and forms two stable H-bonds indicating compound 4 stability. It inhibits cell proliferation in MDA-MB-231, HCC1937, and HCC1395 cell lines, with IC50 values of approximately 2 μM to 10 μM, respectively. Compound 4 did not kill non-malignant epithelial breast cells MCF-10A (IC50 > 27 μM). These results were confirmed by the significant number of apoptotic cells in MDA-MB-231 cells (47.6%) but not in MCF-10A cells (7.3%). Immunoblot analysis provided additional support in the same direction. Discussion: These findings collectively suggest that compound 4 has the potential to effectively eliminate TNBC cells while causing minimal harm to normal breast cells. The promising outcomes of this study lay the groundwork for further testing of compound 4 in other malignancies characterized by ROR1 upregulation, serving as a proof-of-concept for its broader applicability.
Insights
A new compound, compound 4, shows promise in targeting triple-negative breast cancer (TNBC) by inhibiting ROR1. This molecule effectively kills cancer cells while sparing healthy breast cells, offering a potential new therapeutic avenue.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Triple-negative breast cancer (TNBC) accounts for 10-15% of breast cancer cases and lacks targeted therapies.
- Traditional chemotherapy for TNBC can be toxic to normal cells.
- Receptor tyrosine kinase-like Orphan Receptor 1 (ROR1) is an oncofetal protein overexpressed in TNBC.
Purpose of the Study:
- To identify and evaluate small molecules targeting ROR1 for TNBC treatment.
- To assess the efficacy and selectivity of a promising compound against TNBC cells.
Main Methods:
- Virtual screening of 70,000 chemicals using AutoDock Vina and Glide.
- Molecular dynamics (MD) simulation and cell viability assays.
- Apoptosis assays and immunoblotting to confirm mechanism of action.
Main Results:
- Compound 4 (CID1261330) demonstrated strong binding affinity to ROR1 with favorable docking scores.
- Compound 4 selectively inhibited proliferation of TNBC cell lines (MDA-MB-231, HCC1937, HCC1395) with low micromolar IC50 values.
- Compound 4 showed minimal toxicity to non-malignant breast cells (MCF-10A) and induced significant apoptosis in TNBC cells.
Conclusions:
- Compound 4 is a potent and selective inhibitor of ROR1 in TNBC.
- This compound exhibits a favorable therapeutic window, effectively targeting cancer cells while sparing normal cells.
- Compound 4 represents a promising candidate for further development in TNBC and other ROR1-overexpressing malignancies.
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