Oncolytic Newcastle disease virus delivered by Mesenchymal stem cells-engineered system enhances the therapeutic

Mohsen Keshavarz1,2, Mir Saeed Ebrahimzadeh3, Seyed Mohammad Miri4

  • 1The Persian Gulf Tropical Medicine Research Center, The Persian Gulf Biomedical Sciences Research Institute, Bushehr University of Medical Sciences, Bushehr, Iran.

Virology Journal
|May 7, 2020
PubMed
Abstract

Insights

Mesenchymal stem cells (MSCs) carrying Newcastle disease virus (NDV) effectively treat HPV-associated tumors. This immunotherapy approach enhances anti-tumor immunity and induces apoptosis in the tumor microenvironment.

Area of Science:

  • Immunology
  • Oncology
  • Biotechnology

Background:

  • Human papillomavirus (HPV)-associated malignancies are a significant cause of cancer in both sexes.
  • Cancer immunotherapy offers a promising therapeutic avenue.
  • Mesenchymal stem cells (MSCs) are explored as carriers for oncolytic viruses in cancer treatment.

Purpose of the Study:

  • To evaluate MSCs as a delivery system for oncolytic Newcastle disease virus (NDV) against HPV-associated tumors.
  • To investigate the impact of MSC-NDV treatment on immune responses and tumor microenvironment.

Main Methods:

  • MSCs were isolated, cultured, and characterized from C57BL mice bone marrow.
  • Flow cytometry was used to analyze cell surface markers.
  • Histological and immunohistochemical studies assessed immune cell infiltration, cytokine responses, and apoptosis in the tumor microenvironment.

Main Results:

  • MSCs demonstrated migratory capacity and tumor tropism after peritumoral administration.
  • MSC-NDV treatment significantly reduced tumor growth.
  • Enhanced E7-specific lymphocyte proliferation, CD8+ T cell responses, and splenic cytokine production (IFN-γ, IL-4, IL-12) were observed.
  • Upregulated caspase-9 expression and increased myeloid-derived suppressor cell (MDSC) infiltration were noted.

Conclusions:

  • MSCs loaded with oncolytic NDV represent a potential cancer immunotherapy strategy.
  • This approach effectively induces Th1 immune responses and apoptosis within the tumor microenvironment.

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