Single immunizations of self-amplifying or non-replicating mRNA-LNP vaccines control HPV-associated tumors in mice

Jamile Ramos da Silva1,2, Karine Bitencourt Rodrigues1, Guilherme Formoso Pelegrin1

  • 1Vaccine Development Laboratory, Department of Microbiology, Institute of Biomedical Sciences, University of São Paulo, São Paulo, SP 05508-000, Brazil.

Insights

Three novel mRNA vaccine types targeting human papillomavirus (HPV) showed significant efficacy in mice. These vaccines activated immune cells, prevented tumor relapse, and eradicated tumors, outperforming DNA and protein vaccines.

Area of Science:

  • Immunology
  • Vaccinology
  • Oncology

Background:

  • Messenger RNA (mRNA) vaccines have shown success against COVID-19.
  • Therapeutic strategies for cervical cancer caused by human papillomavirus (HPV) are needed.
  • HPV-16 E7 oncoprotein is a target for cervical cancer vaccines.

Purpose of the Study:

  • To compare the performance of three mRNA vaccine modalities against HPV-16-associated tumors in mice.
  • To evaluate the immunogenicity and therapeutic efficacy of gDE7 mRNA vaccines.

Main Methods:

  • Generated three types of mRNA vaccines: self-amplifying mRNA, unmodified non-replicating mRNA, and nucleoside-modified non-replicating mRNA.
  • Vaccines encoded a chimeric protein (gDE7) targeting HPV-16 E7 oncoprotein.
  • Tested vaccines in mouse models, including subcutaneous and orthotopic tumors, and compared them to DNA and protein vaccines.

Main Results:

  • Single low-dose immunizations with gDE7 mRNA vaccines activated E7-specific CD8+ T cells.
  • Vaccines induced memory T cell responses and eradicated tumors at various stages.
  • gDE7 mRNA-LNP vaccines provided potent tumor protection in orthotopic models.
  • All tested mRNA vaccines outperformed gDE7 DNA and recombinant protein vaccines.

Conclusions:

  • Three distinct mRNA vaccine modalities demonstrated immunogenicity and therapeutic efficacy against HPV-16-associated tumors in mice.
  • The gDE7 mRNA vaccines are promising candidates for further clinical evaluation.
  • mRNA vaccine technology holds potential for treating infectious diseases and cancer.