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Site-Specific Integration of TRAIL in iPSC-Derived Mesenchymal Stem Cells for Targeted Cancer Therapy
Zujia Wang1, Hongting Chen1, Peiyun Wang1
1Center for Medical Genetics & Hunan Key Laboratory of Medical Genetics, School of Life Sciences, Central South University, Changsha, Hunan, People's Republic of China.
Abstract:
Mesenchymal stem cells (MSCs) are a promising cellular vehicle for transferring anti-cancer factors to malignant tumors. Currently, a variety of anti-cancer agents, including the tumor necrosis factor (TNF)-related apoptosis-inducing ligand (TRAIL), have been loaded into MSCs derived from a range of sources through different engineering methods. These engineered MSCs exhibit enormous therapeutic potential for various cancers. To avoid the intrinsic defects of MSCs derived from tissues and the potential risk of viral vectors, TRAIL was site-specifically integrated into the ribosomal DNA (rDNA) locus of human-induced pluripotent stem cells (iPSCs) using a non-viral rDNA-targeting vector and transcription activator-like effector nickases (TALENickases). These genetically modified human iPSCs were differentiated into an unlimited number of homogeneous induced MSCs (TRAIL-iMSCs) that overexpressed TRAIL in both culture supernatants and cell lysates while maintaining MSC-like characteristics over continuous passages. We found that TRAIL-iMSCs significantly induced apoptosis in A375, A549, HepG2, and MCF-7 cells in vitro. After intravenous infusion, TRAIL-iMSCs had a prominent tissue tropism for A549 or MCF-7 xenografts and significantly inhibited tumor growth through the activation of apoptotic signaling pathways without obvious side effects in tumor-bearing mice models. Altogether, our results showed that TRAIL-iMSCs have strong anti-tumor effects in vitro and in vivo on a range of cancers. This study allows for the development of an unlimited number of therapeutic gene-targeted MSCs with stable quality and high homogeneity for cancer therapy, thus highlighting a universal and safe strategy for stem cell-based gene therapy with high potential for clinical applications.
Insights
Engineered mesenchymal stem cells (MSCs) delivering tumor necrosis factor (TNF)-related apoptosis-inducing ligand (TRAIL) effectively target and inhibit various cancer cells in vitro and in vivo, offering a safe stem cell-based therapy.
Area of Science:
- Biomedical Engineering
- Cancer Biology
- Stem Cell Therapy
Background:
- Mesenchymal stem cells (MSCs) are explored as delivery vehicles for anti-cancer agents.
- Engineering MSCs with therapeutic factors like tumor necrosis factor (TNF)-related apoptosis-inducing ligand (TRAIL) shows promise for cancer treatment.
- Existing methods face challenges like intrinsic MSC defects and viral vector risks.
Purpose of the Study:
- To develop a safe and efficient method for generating genetically modified MSCs for cancer therapy.
- To create induced MSCs (iMSCs) overexpressing TRAIL using a non-viral approach.
- To evaluate the anti-tumor efficacy and safety of these TRAIL-expressing iMSCs (TRAIL-iMSCs).
Main Methods:
- Site-specific integration of TRAIL gene into the ribosomal DNA (rDNA) locus of human-induced pluripotent stem cells (iPSCs) using non-viral vectors and TALENickases.
- Differentiation of genetically modified iPSCs into homogeneous TRAIL-iMSCs.
- In vitro apoptosis induction assays and in vivo xenograft tumor models in mice.
Main Results:
- TRAIL-iMSCs maintained MSC characteristics and stably overexpressed TRAIL.
- TRAIL-iMSCs significantly induced apoptosis in multiple cancer cell lines (A375, A549, HepG2, MCF-7) in vitro.
- TRAIL-iMSCs demonstrated tumor tropism, inhibited tumor growth in vivo, and activated apoptotic pathways with no significant side effects.
Conclusions:
- TRAIL-iMSCs exhibit potent in vitro and in vivo anti-tumor effects across various cancers.
- This study presents a universal and safe strategy for producing large quantities of homogeneous, gene-targeted MSCs for clinical cancer therapy.
- The developed method holds significant potential for advancing stem cell-based gene therapy applications.
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