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Monitoring of Nanodrug Accumulation in Murine Breast Cancer Metastases
Published on: August 23, 2024
Coordinated modulation of long non-coding RNA ASBEL and curcumin co-delivery through multicomponent nanocomplexes for
Xuesong He1, Fengjuan Lin2, Runqing Jia1
1Department of Environment and Life Science, Beijing International Science and Technology, Cooperation Base of Antivirus Drug, Beijing University of Technology, Beijing, 100124, China.
Background:
Abnormally regulated long non-coding RNAs (lncRNAs) functions in cancer emphasize their potential to serve as potential targets for cancer therapeutic intervention. LncRNA ASBEL has been identified as oncogene and an anti-sense transcript of tumor-suppressor gene of BTG3 in triple-negative breast cancer (TNBC).
Results:
Herein, multicomponent self-assembled polyelectrolyte nanocomplexes (CANPs) based on the polyelectrolytes of bioactive hyaluronic acid (HA) and chitosan hydrochloride (CS) were designed and prepared for the collaborative modulation of oncogenic lncRNA ASBEL with antago3, an oligonucleotide antagonist targeting lncRNA ASBEL and hydrophobic curcumin (Cur) co-delivery for synergetic TNBC therapy. Antago3 and Cur co-incorporated CANPs were achieved via a one-step assembling strategy with the cooperation of noncovalent electrostatic interactions, hydrogen-bonding, and hydrophobic interactions. Moreover, the multicomponent assembled CANPs were ulteriorly decorated with a near-infrared fluorescence (NIRF) Cy-5.5 dye (FCANPs) for synchronous NIRF imaging and therapy monitoring performance. Resultantly, MDA-MB-231 cells proliferation, migration, and invasion were efficiently inhibited, and the highest apoptosis ratio was induced by FCANPs with coordination patterns. At the molecular level, effective regulation of lncRNA ASBEL/BTG3 and synchronous regulation of Bcl-2 and c-Met pathways could be observed.
Conclusion:
As expected, systemic administration of FCANPs resulted in targeted and preferential accumulation of near-infrared fluorescence signal and Cur in the tumor tissue. More attractively, systemic FCANPs-mediated collaborative modulating lncRNA ASBEL/BTG3 and Cur co-delivery significantly suppressed the MDA-MB-231 xenograft tumor growth, inhibited metastasis and extended survival rate with negligible systemic toxicity. Our present study represented an effective approach to developing a promising theranostic platform for combating TNBC in a combined therapy pattern.
Insights
This study developed novel nanocomplexes for triple-negative breast cancer (TNBC) therapy. These complexes deliver an antagonist for the oncogenic lncRNA ASBEL and curcumin, effectively inhibiting tumor growth and metastasis.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Cancer Therapeutics
Background:
- Long non-coding RNAs (lncRNAs) are implicated in cancer, with lncRNA ASBEL identified as an oncogene in triple-negative breast cancer (TNBC).
- Targeting oncogenic lncRNAs presents a therapeutic opportunity for TNBC treatment.
Purpose of the Study:
- To develop a theranostic platform for synergistic TNBC therapy.
- To co-deliver an antagonist of lncRNA ASBEL and curcumin using self-assembled nanocomplexes.
- To enable synchronous imaging and therapy monitoring.
Main Methods:
- Fabrication of multicomponent self-assembled polyelectrolyte nanocomplexes (CANPs) using hyaluronic acid (HA) and chitosan hydrochloride (CS).
- Incorporation of antago3 (ASBEL antagonist) and curcumin (Cur) into CANPs via electrostatic, hydrogen-bonding, and hydrophobic interactions.
- Decoration of CANPs with a near-infrared fluorescence (NIRF) dye (Cy-5.5) to create FCANPs for imaging.
Main Results:
- FCANPs demonstrated efficient inhibition of MDA-MB-231 cell proliferation, migration, and invasion, inducing significant apoptosis.
- Molecular analysis revealed effective regulation of the lncRNA ASBEL/BTG3 axis and downstream signaling pathways (Bcl-2, c-Met).
- Systemic administration led to targeted accumulation of FCANPs and curcumin in tumor tissues.
Conclusions:
- FCANPs effectively suppressed xenograft tumor growth, inhibited metastasis, and extended survival rates in TNBC models.
- The developed theranostic platform offers a promising approach for combined therapy with minimal systemic toxicity.
- This study highlights the potential of nanocomplexes for synergistic TNBC treatment and monitoring.
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