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Targeting Cell Cycle Proteins in Breast Cancer Cells with siRNA by Using Lipid-Substituted Polyethylenimines
Manoj B Parmar1, Hamidreza Montazeri Aliabadi2, Parvin Mahdipoor3
1Faculty of Pharmacy and Pharmaceutical Sciences, University of Alberta , Edmonton, AB , Canada.
Abstract:
The cell cycle proteins are key regulators of cell cycle progression whose deregulation is one of the causes of breast cancer. RNA interference (RNAi) is an endogenous mechanism to regulate gene expression and it could serve as the basis of regulating aberrant proteins including cell cycle proteins. Since the delivery of small interfering RNA (siRNA) is a main barrier for implementation of RNAi therapy, we explored the potential of a non-viral delivery system, 2.0 kDa polyethylenimines substituted with linoleic acid and caprylic acid, for this purpose. Using a library of siRNAs against cell cycle proteins, we identified cell division cycle protein 20 (CDC20), a recombinase RAD51, and serine-threonine protein kinase CHEK1 as effective targets for breast cancer therapy, and demonstrated their therapeutic potential in breast cancer MDA-MB-435, MDA-MB-231, and MCF7 cells with respect to another well-studied cell cycle protein, kinesin spindle protein. We also explored the efficacy of dicer-substrate siRNA (DsiRNA) against CDC20, RAD51, and CHEK1, where a particular DsiRNA against CDC20 showed an exceptionally high inhibition of cell growth in vitro. There was no apparent effect of silencing selected cell cycle proteins on the potency of the chemotherapy drug doxorubicin. The efficacy of DsiRNA against CDC20 was subsequently assessed in a xenograft model, which indicated a reduced tumor growth as a result of CDC20 DsiRNA therapy. The presented study highlighted specific cell cycle protein targets critical for breast cancer therapy, and provided a polymeric delivery system for their effective down-regulation.
Insights
Researchers developed a novel non-viral delivery system for RNA interference (RNAi) therapy, effectively targeting cell cycle proteins like CDC20 to inhibit breast cancer growth in vitro and in vivo.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Cell cycle protein deregulation is a key factor in breast cancer development.
- RNA interference (RNAi) offers a therapeutic strategy for gene expression regulation.
- Effective delivery of small interfering RNA (siRNA) remains a significant challenge in RNAi therapy.
Purpose of the Study:
- To evaluate a novel non-viral polymeric delivery system for siRNA.
- To identify effective cell cycle protein targets for breast cancer RNAi therapy.
- To assess the therapeutic potential of targeting CDC20, RAD51, and CHEK1.
Main Methods:
- Utilized a library of siRNAs against cell cycle proteins in breast cancer cell lines (MDA-MB-435, MDA-MB-231, MCF7).
- Employed a 2.0 kDa polyethylenimine-based non-viral delivery system.
- Tested dicer-substrate siRNA (DsiRNA) efficacy, including against CDC20, RAD51, and CHEK1.
- Evaluated DsiRNA against CDC20 in a xenograft mouse model.
Main Results:
- Identified CDC20, RAD51, and CHEK1 as effective therapeutic targets.
- Demonstrated significant inhibition of breast cancer cell growth using DsiRNA against CDC20.
- Observed reduced tumor growth in a xenograft model following CDC20 DsiRNA therapy.
- Found no significant interaction between targeted gene silencing and doxorubicin efficacy.
Conclusions:
- A novel polymeric delivery system effectively facilitates RNAi therapy for breast cancer.
- CDC20, RAD51, and CHEK1 are promising therapeutic targets for breast cancer intervention.
- DsiRNA targeting CDC20 shows significant potential for reducing tumor growth.
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