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Mesenchymal Stem Cells Expressing CES1 and Soluble TRAIL Activate CPT-11 and Induce Apoptosis in Lung Cancer Brain
Dong Oh Kim1,2, Eun Hwa Jang1, Young Do Kwon1
1Department of Anatomy and Cell Biology, Sungkyunkwan University School of Medicine, Suwon, South Korea.
Abstract:
We aimed to develop a novel therapeutic strategy for lung cancer brain metastases by leveraging the tumor-tropic properties of genetically engineered Wharton's Jelly-derived mesenchymal stem cells (WJ-MSC) as vehicles for dual-agent gene therapy across the blood-brain barrier. WJ-MSCs were transiently engineered using lipid nanoparticle technology to coexpress soluble TRAIL (sTRAIL) and the prodrug-activating enzyme carboxylesterase 1 (CES1). In vitro analyses assessed transfection efficiency, therapeutic protein expression, apoptosis induction, and maintenance of stemness. Tumor-homing capacity was evaluated via EGFP labeling and intracerebral tracking. Therapeutic efficacy was tested in subcutaneous and intracerebral lung cancer xenograft models using bioluminescent imaging, histopathology, and IHC. In vivo treatment included intraperitoneal CPT-11 administration to assess synergy between CES1-mediated prodrug activation and sTRAIL-induced apoptosis. Modified WJ-MSCs exhibited preserved stem cell characteristics and strong tropism toward brain tumor sites. They secreted high levels of functional sTRAIL and CES1, enabling local activation of CPT-11 into SN-38 and inducing apoptosis through death receptor signaling (DR4/DR5). Combination therapy with WJ-MSCs-CES1.sTRAIL and CPT-11 significantly suppressed tumor growth in lung cancer brain metastasis models compared with control groups. The approach demonstrated selective cytotoxicity, minimal off-target effects, and favorable safety profiles. This study establishes a nonviral, transient gene delivery platform using autologous WJ-MSCs for dual-action gene therapy in lung cancer brain metastases. The combined use of CES1 and sTRAIL and enables precise tumor targeting and drug activation, offering a promising avenue for personalized, stem cell-based treatment strategies to improve outcomes in patients with brain metastatic lung cancer.
Significance:
This study presents a nonviral, stem cell-based therapy for brain metastatic non-small cell lung cancer using WJ-MSCs expressing sTRAIL and CES1. These engineered cells home to tumors, activate CPT-11, and induce apoptosis. The dual-action strategy significantly reduced brain tumor burden with minimal toxicity, demonstrating strong therapeutic potential.
Insights
This study engineered Wharton
Area of Science:
- Oncology
- Stem Cell Biology
- Gene Therapy
Background:
- Lung cancer brain metastases are a significant clinical challenge.
- Current treatments for brain metastases have limited efficacy and severe side effects.
- Targeted delivery across the blood-brain barrier remains a hurdle for effective therapies.
Purpose of the Study:
- To develop a novel dual-agent gene therapy for lung cancer brain metastases.
- To utilize genetically engineered Wharton's Jelly-derived mesenchymal stem cells (WJ-MSCs) as tumor-tropic delivery vehicles.
- To overcome the blood-brain barrier for targeted cancer treatment.
Main Methods:
- Transiently engineered WJ-MSCs using lipid nanoparticle (LNP) technology to co-express soluble TRAIL (sTRAIL) and carboxylesterase 1 (CES1).
- Assessed in vitro stemness, transfection efficiency, protein expression, and apoptosis induction.
- Evaluated tumor-homing capacity and therapeutic efficacy in subcutaneous and intracerebral lung cancer xenograft models.
Main Results:
- Modified WJ-MSCs maintained stem cell characteristics and demonstrated strong tropism toward brain tumors.
- Engineered cells secreted functional sTRAIL and CES1, enabling local activation of CPT-11 to SN-38.
- Combination therapy significantly suppressed tumor growth in brain metastasis models with selective cytotoxicity and favorable safety.
Conclusions:
- Established a non-viral, transient gene delivery platform using WJ-MSCs for dual-action gene therapy in lung cancer brain metastases.
- Demonstrated the potential of combining CES1 and sTRAIL for precise tumor targeting and drug activation.
- This stem cell-based approach offers a promising strategy for personalized treatment of brain metastatic lung cancer.
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