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Preparation of Exosomes for siRNA Delivery to Cancer Cells
Published on: December 5, 2018
iRGD-engineered exosomes mediate siMYC delivery for effective tumor suppression in triple-negative breast cancer
Hui Li1, Weiguang Yuan2,3, Jialin Liu4,5,6
1Department of Ultrasound, The First Affiliated Hospital of Harbin Medical University, Harbin, China.
Abstract:
Triple-negative breast cancer (TNBC) is an aggressive cancer with a poor prognosis. MYC overexpression drives tumor progression, but the lack of an efficient siMYC delivery system remains a major challenge. Exosomes (Exos), as biocompatible nanocarriers, offer a solution. Here, we engineered internalizing RGD peptide (iRGD)-Exos to enhance siMYC delivery and improve therapeutic efficacy. iRGD-Exos were generated by transfecting FreeStyle™ 293-F (293-F) cells with an iRGD-Flag-Lamp2b plasmid, followed by ultracentrifugation and isolation. siMYC was loaded via electroporation. Exosomes were characterized, and their uptake efficiency was measured. CCK-8 assays and flow cytometry were conducted to analyze the effects of exosomes on the proliferation and apoptosis of TNBC cells. Apoptosis staining was also conducted on patient-derived organoids (PDOs). In a TNBC xenograft mouse model, fluorescence imaging, tumor volume measurement, and histological analysis were conducted to assess tumor targeting and therapeutic effects of engineered exosomes. Systemic toxicity was evaluated based on hematological, biochemical, and histopathological analyses. The iRGD modification significantly enhanced the uptake efficiency of exosomes by αvβ3 integrin-positive Hs578T TNBC cells. Following siMYC loading via electroporation, iRGD-Exos-siMYC markedly suppressed the proliferation of TNBC cells and induced their apoptosis. Additionally, it promoted apoptosis in PDOs, further supporting its antitumor potential. In vivo, iRGD-Exos-siMYC exhibited superior tumor-targeting capability, effectively inhibiting tumor growth and significantly downregulating MYC expression. Moreover, biosafety evaluations confirmed that iRGD-Exos-siMYC possesses good biosafety. This study demonstrated that iRGD-modified exosomes can effectively deliver siMYC to TNBC cells, enhancing gene silencing and antitumor efficacy. The targeted exosomal drug delivery system showed high tumor selectivity and minimal systemic toxicity. These findings provide new insights into exosome-based gene therapy and highlight the value of iRGD-Exos-siMYC as a novel treatment strategy for TNBC.
Insights
Engineered exosomes carrying therapeutic RNA effectively target and treat triple-negative breast cancer. This novel exosome delivery system enhances gene silencing and reduces tumor growth with minimal toxicity.
Area of Science:
- Biomedical Engineering
- Nanomedicine
- Cancer Therapy
Background:
- Triple-negative breast cancer (TNBC) is aggressive with limited treatment options.
- MYC overexpression is a key driver of TNBC progression.
- Efficient delivery of therapeutic agents like small interfering RNA (siRNA) against MYC is challenging.
Purpose of the Study:
- To engineer exosomes modified with an internalizing RGD peptide (iRGD) for enhanced delivery of siMYC to TNBC cells.
- To evaluate the therapeutic efficacy and biosafety of iRGD-exosomes loaded with siMYC (iRGD-Exos-siMYC) in preclinical models.
Main Methods:
- Engineered exosomes (iRGD-Exos) by transfecting 293-F cells with an iRGD-Flag-Lamp2b plasmid.
- Loaded siMYC into exosomes via electroporation.
- Assessed exosome uptake, TNBC cell proliferation, apoptosis (in vitro and in patient-derived organoids), tumor targeting, and therapeutic effects in a TNBC xenograft mouse model.
- Evaluated systemic toxicity through hematological, biochemical, and histopathological analyses.
Main Results:
- iRGD modification significantly increased exosome uptake by TNBC cells expressing αvβ3 integrin.
- iRGD-Exos-siMYC effectively suppressed TNBC cell proliferation and induced apoptosis in vitro and in patient-derived organoids.
- In vivo studies demonstrated superior tumor targeting, significant tumor growth inhibition, and MYC expression downregulation.
- Systemic toxicity assessments confirmed good biosafety of the engineered exosomes.
Conclusions:
- iRGD-modified exosomes serve as an effective platform for delivering siMYC to TNBC cells, enhancing gene silencing and antitumor efficacy.
- This targeted exosomal drug delivery system exhibits high tumor selectivity and minimal systemic toxicity.
- iRGD-Exos-siMYC represents a promising novel therapeutic strategy for triple-negative breast cancer.
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