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Updated: Jan 8, 2026

Dual CRISPR-Interference Strategy for Targeting Synthetic Lethal Interactions Between Non-Coding RNAs in Cancer Cells
Published on: May 30, 2025
Aptamer-functionalized nanoparticles for CRISPR-Cas9 delivery to circulating malignant cells for therapeutic efficacy
Xin-Ru Liao1, Di Han2, Li-Jin Qi1
1Key Laboratory of Biomedical Polymers of Ministry of Education, Department of Chemistry, Wuhan University, Wuhan, Hubei 430072, China.
Abstract:
Genome editing therapies targeting oncogenic pathways represent a promising alternative to small-molecule inhibitors, enabling durable therapeutic responses without inducing drug resistance. However, their success hinges on overcoming tumor heterogeneity, as malignant cells of cancer patients exhibit significant phenotypic variability. To advance personalized research on genome editing efficacy, tailored delivery systems capable of precisely targeting heterogeneous cancer cell populations are essential. Herein, we developed a facile modification strategy to construct a multiplexed surface-functionalized gene delivery system targeting heterogeneous cancer cells for personalized therapeutic studies. The system integrates the EGFR-targeting TuTu22 aptamer with SYL3C-conjugated hyaluronic acid (SYL3C-HA) for EpCAM and CD44 recognition. This triple-targeting platform enables efficient delivery of genome editing plasmid for c-Met knockout in both cancer cell lines and circulating malignant cells (CMCs) from cancer patients. The c-Met knockout not only reduces tumor malignancy but also reverses immune suppression, evidenced by PD-L1 downregulation and restored immune surveillance. By combining gene delivery with an ex vivo patient-derived evaluation platform, this system provides a robust tool for personalized research on the therapeutic strategies for tumor progression inhibition and immunity restoration.
Insights
Researchers developed a novel gene delivery system to target heterogeneous cancer cells. This system enables precise c-Met knockout, reducing tumor malignancy and restoring immune surveillance for personalized cancer therapy.
Area of Science:
- Oncology
- Biotechnology
- Molecular Biology
Background:
- Cancer genome editing therapies offer durable responses but struggle with tumor heterogeneity.
- Targeting diverse cancer cell populations requires advanced, personalized delivery systems.
Purpose of the Study:
- To develop a multiplexed gene delivery system for targeting heterogeneous cancer cells.
- To enable personalized research on genome editing efficacy against cancer.
Main Methods:
- Constructed a surface-functionalized gene delivery system with TuTu22 aptamer (EGFR-targeting) and SYL3C-conjugated hyaluronic acid (EpCAM, CD44 recognition).
- Utilized the triple-targeting platform for c-Met gene knockout in cancer cell lines and patient-derived circulating malignant cells (CMCs).
- Evaluated the system's efficacy using an ex vivo patient-derived platform.
Main Results:
- The system efficiently delivered genome editing plasmids for c-Met knockout.
- c-Met knockout reduced tumor malignancy and reversed immune suppression by downregulating PD-L1.
- Immune surveillance was restored, indicating therapeutic potential.
Conclusions:
- The developed triple-targeting gene delivery system is effective for personalized cancer therapy research.
- This platform facilitates studies on inhibiting tumor progression and restoring anti-tumor immunity.
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