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Disarib, a Specific BCL2 Inhibitor, Induces Apoptosis in Triple-Negative Breast Cancer Cells and Impedes Tumour
Meghana Manjunath1, Febina Ravindran1, Shivangi Sharma1,2
1Department of Biotechnology and Applied Bioinformatics, Institute of Bioinformatics and Applied Biotechnology, Electronic City Phase 1, Bengaluru 560100, India.
Abstract:
Targeted cancer therapy aims to disrupt the functions of proteins that regulate cancer progression, mainly by using small molecule inhibitors (SMIs). SMIs exert their effect by modulating signalling pathways, organelle integrity, chromatin components, and several biosynthetic processes essential for cell division and survival. Antiapoptotic protein BCL2 is highly upregulated in many cancers compared with normal cells, making it an ideal target for cancer therapy. Around 75% of primary breast cancers overexpress BCL2, providing an opportunity to explore BCL2 inhibitors as a therapeutic option. Disarib is an SMI that has been developed as a selective BCL2 inhibitor. Disarib works by disrupting BCL2-BAK interaction and activating intrinsic apoptotic pathways in leukemic cells while sparing normal cells. We investigated the effects of Disarib, a BCL2 specific inhibitor, on breast cancer cells and xenografts. Cytotoxicity and fluorometric assays revealed that Disarib induced cell death by increasing reactive oxygen species and activating intrinsic apoptotic pathways in Triple-Negative Breast Cancer cells (MDA-MB-231 and MDA-MB-468). Disarib also affected the colony-forming properties of these cells. MDA-MB-231- and MDA-MB-468-derived xenografts showed a significant reduction in tumours upon Disarib treatment. Through the transcriptomics approach, we also explored the influence of BCL2 inhibitors on energy metabolism, mitochondrial dynamics, and epithelial-to-mesenchymal transition (EMT). Mitochondrial dynamics and glucose metabolism mainly regulate energy metabolism. The change in energetics regulates tumour growth through epithelial-mesenchymal transition, and angiogenesis. RNA sequencing (RNAseq) analysis revealed that BCL2 inhibitors ABT-199 and Disarib maintain Oxphos levels in MDA-MB-231. However, key glycolytic genes were significantly downregulated. Mitochondrial fission genes were seen to be downregulated both in RNAseq data and semi quantitative real time polymerase chain reaction (qRTPCR) in Disarib-treated TNBC cells and xenografts. Lastly, Disarib inhibited wound healing and epithelial-to-mesenchymal transition. This study showed that Disarib disrupts mitochondrial function, activates the intrinsic apoptotic pathway in breast cancer, and inhibits epithelial-to-mesenchymal transition both in vitro and in vivo. These findings highlight Disarib's potential as a multifaceted therapeutic strategy for patients with Triple-Negative Breast Cancer.
Insights
Disarib, a BCL2 inhibitor, effectively triggers cell death and reduces tumor growth in Triple-Negative Breast Cancer models by activating apoptosis and inhibiting key metabolic and migratory pathways. This study highlights Disarib
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Targeted cancer therapies utilize small molecule inhibitors (SMIs) to disrupt cancer-driving proteins.
- The antiapoptotic protein BCL2 is overexpressed in many cancers, including 75% of breast cancers, making it a promising therapeutic target.
- Disarib is a selective BCL2 inhibitor designed to induce apoptosis in cancer cells.
Purpose of the Study:
- To investigate the efficacy of Disarib, a BCL2 inhibitor, against Triple-Negative Breast Cancer (TNBC) cells and xenografts.
- To explore the molecular mechanisms underlying Disarib's effects, including its impact on apoptosis, energy metabolism, mitochondrial dynamics, and epithelial-to-mesenchymal transition (EMT).
Main Methods:
- Cytotoxicity and fluorometric assays were used to assess Disarib's effects on TNBC cell lines (MDA-MB-231, MDA-MB-468).
- In vivo efficacy was evaluated using TNBC xenograft models.
- Transcriptomics (RNA sequencing) and qRT-PCR were employed to analyze gene expression changes related to metabolism, mitochondrial function, and EMT.
- Wound healing assays assessed the impact on cell migration.
Main Results:
- Disarib induced significant cell death in TNBC cells by increasing reactive oxygen species and activating intrinsic apoptotic pathways.
- Treatment with Disarib led to a notable reduction in tumor size in xenograft models.
- RNA sequencing revealed that Disarib downregulated key glycolytic genes while maintaining oxidative phosphorylation (Oxphos) levels and downregulating mitochondrial fission genes.
- Disarib inhibited wound healing and EMT in TNBC cells and xenografts.
Conclusions:
- Disarib effectively targets BCL2 in Triple-Negative Breast Cancer, inducing apoptosis and inhibiting tumor growth.
- Disarib exhibits multifaceted effects, including disruption of mitochondrial function, modulation of energy metabolism, and inhibition of EMT.
- These findings support Disarib's potential as a novel therapeutic agent for Triple-Negative Breast Cancer.
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