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.

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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