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Updated: Jun 25, 2025

Studying Triple Negative Breast Cancer Using Orthotopic Breast Cancer Model
Published on: March 20, 2020
TNA-Mediated Antisense Strategy to Knockdown Akt Genes for Triple-Negative Breast Cancer Therapy
Pan Li1, Shixue Zheng2, Hoi Man Leung1
1Department of Chemistry and State Key Laboratory of Marine Pollution, City University of Hong Kong, Tat Chee Avenue, Kowloon, Hong Kong SAR, P. R. China.
Abstract:
Triple-negative breast cancer (TNBC) remains a significant challenge in terms of treatment, with limited efficacy of chemotherapy due to side effects and acquired drug resistance. In this study, a threose nucleic acid (TNA)-mediated antisense approach is employed to target therapeutic Akt genes for TNBC therapy. Specifically, two new TNA strands (anti-Akt2 and anti-Akt3) are designed and synthesized that specifically target Akt2 and Akt3 mRNAs. These TNAs exhibit exceptional enzymatic resistance, high specificity, enhance binding affinity with their target RNA molecules, and improve cellular uptake efficiency compared to natural nucleic acids. In both 2D and 3D TNBC cell models, the TNAs effectively inhibit the expression of their target mRNA and protein, surpassing the effects of scrambled TNAs. Moreover, when administered to TNBC-bearing animals in combination with lipid nanoparticles, the targeted anti-Akt TNAs lead to reduced tumor sizes and decreased target protein expression compared to control groups. Silencing the corresponding Akt genes also promotes apoptotic responses in TNBC and suppresses tumor cell proliferation in vivo. This study introduces a novel approach to TNBC therapy utilizing TNA polymers as antisense materials. Compared to conventional miRNA- and siRNA-based treatments, the TNA system holds promise as a cost-effective and scalable platform for TNBC treatment, owing to its remarkable enzymatic resistance, inexpensive synthetic reagents, and simple production procedures. It is anticipated that this TNA-based polymeric system, which targets anti-apoptotic proteins involved in breast tumor development and progression, can represent a significant advancement in the clinical development of effective antisense materials for TNBC, a cancer type that lacks effective targeted therapy.
Insights
New threose nucleic acid (TNA) antisense molecules effectively target Akt genes in triple-negative breast cancer (TNBC) models. This TNA approach shows promise for TNBC therapy due to enhanced stability and efficacy.
Area of Science:
- Biochemistry and Molecular Biology
- Cancer Therapeutics
- Nucleic Acid Chemistry
Background:
- Triple-negative breast cancer (TNBC) presents significant therapeutic challenges due to chemotherapy limitations, including side effects and drug resistance.
- Targeting key genes like Akt is crucial for developing effective TNBC treatments.
- Existing antisense therapies like miRNA and siRNA face limitations in stability and efficiency.
Purpose of the Study:
- To investigate the potential of threose nucleic acid (TNA)-mediated antisense strategies for targeting therapeutic Akt genes in TNBC.
- To design and evaluate novel TNA strands (anti-Akt2 and anti-Akt3) for their efficacy in inhibiting Akt gene expression and function in TNBC.
Main Methods:
- Design and synthesis of two specific TNA strands targeting Akt2 and Akt3 mRNA.
- Evaluation of TNA properties including enzymatic resistance, specificity, binding affinity, and cellular uptake.
- In vitro assessment in 2D and 3D TNBC cell models and in vivo studies using TNBC-bearing animal models.
Main Results:
- Synthesized TNAs demonstrated superior enzymatic resistance, specificity, binding affinity, and cellular uptake compared to natural nucleic acids.
- TNAs effectively inhibited target mRNA and protein expression in TNBC cell models and reduced tumor size in vivo.
- Targeted gene silencing by TNAs promoted apoptosis and suppressed tumor cell proliferation in vivo.
Conclusions:
- TNA-based antisense polymers offer a novel and promising therapeutic approach for triple-negative breast cancer.
- The TNA system exhibits advantages over conventional miRNA and siRNA therapies, including cost-effectiveness, scalability, and enhanced stability.
- This TNA platform targeting anti-apoptotic proteins represents a significant advancement for developing effective antisense materials for TNBC treatment.
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