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Monitoring of Nanodrug Accumulation in Murine Breast Cancer Metastases
Published on: August 23, 2024
Targeting ETS1 with RNAi-based supramolecular nanoassemblies for multidrug-resistant breast cancer therapy
Min Wu1, Xingang Liu2, Weihong Jin3
1Institute of Chemical Biology and Pharmaceutical Chemistry, Zhejiang University, Hangzhou 310028, China; Department of Physics & Materials Science, City University of Hong Kong, Tat Chee Avenue, Kowloon, Hong Kong, China.
Abstract:
Overexpression of erythroblastosis virus E26 oncogene homolog 1 (ETS1) gene is correlated with both tumor progression and poor response to chemotherapy in cancer treatment, and the exploitation of RNA interference (RNAi) technology to downregulate ETS1 seems to be a promising approach to reverse multidrug-resistant cancer cells to chemotherapy. Hence, the RNAi-based nanomedicine which is able to simultaneously downregulate ETS1 expression and to deliver chemotherapeutic agents may improve multidrug-resistant cancer therapy synergistically. In this study, we developed a supramolecular nanoassembly that could deliver siRNA targeting ETS1 (siETS1) and doxorubicin (DOX) as an effective nanomedicine to achieve successful chemotherapy towards multidrug-resistant breast cancer. The nanotherapeutic system was prepared by loading adamantane-conjugated doxorubicin (AD) into polyethyleneimine-modified (2-hydroxypropyl)-γ-cyclodextrin (HP) through the supramolecular assembly to form AD-loaded HP (HPAD), followed by electrostatically-driven self-assembly between siETS1 and HPAD. When the HPAD/siETS1 nanoassemblies were delivered into drug-resistant MCF-7/ADR cells, the drug efflux was significantly reduced as a result of simultaneous silencing of ETS1 and MDR1 genes. Importantly, the HPAD/siETS1 nanoassembly could enhance drug residence time at tumor site, and effectively inhibit drug-resistant tumor growth due to the inhibition of angiogenesis and necrosis in tumor tissues. Western blot analysis indicated that the gene expression of both ETS1 and MDR1 in vivo was considerably downregulated after the drug-resistant tumor-bearing mouse was treated with HPAD/siETS1 nanoassemblies. This study offers a new therapeutic delivery strategy targeting ETS1 for the effective multidrug-resistant chemotherapy.
Insights
This study presents a novel nanomedicine that simultaneously delivers chemotherapy and RNA interference targeting the ETS1 gene. This approach effectively overcomes multidrug resistance in breast cancer by downregulating ETS1 and MDR1, inhibiting tumor growth.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Overexpression of the ETS1 gene correlates with tumor progression and chemotherapy resistance.
- RNA interference (RNAi) offers a potential strategy to downregulate ETS1 and reverse multidrug resistance.
- Combined delivery of RNAi and chemotherapeutics in nanomedicine may synergistically enhance cancer therapy.
Purpose of the Study:
- To develop an RNAi-based nanomedicine for simultaneous delivery of ETS1-targeting siRNA and doxorubicin.
- To investigate the efficacy of this nanomedicine in overcoming multidrug resistance in breast cancer.
- To evaluate the synergistic therapeutic effects of targeting ETS1 and delivering chemotherapeutics.
Main Methods:
- Development of a supramolecular nanoassembly using modified cyclodextrins and adamantane-conjugated doxorubicin.
- Loading of siRNA targeting ETS1 (siETS1) and doxorubicin (DOX) into the nanoassembly.
- In vitro and in vivo evaluation of the nanotherapeutic system in multidrug-resistant MCF-7/ADR cells and tumor-bearing mice.
Main Results:
- The nanoassembly effectively delivered siETS1 and DOX into drug-resistant cells, reducing drug efflux.
- Simultaneous silencing of ETS1 and MDR1 genes was achieved, enhancing chemotherapy efficacy.
- The nanomedicine inhibited tumor growth by reducing angiogenesis and inducing necrosis, with significant in vivo downregulation of ETS1 and MDR1.
Conclusions:
- The developed supramolecular nanoassembly is a promising therapeutic strategy for multidrug-resistant breast cancer.
- Simultaneous targeting of ETS1 and delivery of chemotherapeutics offers a synergistic approach to overcome drug resistance.
- This study provides a novel delivery system for effective cancer chemotherapy targeting ETS1.
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