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Identifying DNA Mutations in Purified Hematopoietic Stem/Progenitor Cells
Published on: February 24, 2014
Vaccines for immunoprevention of DNA mismatch repair deficient cancers
Alejandro Hernandez-Sanchez1, Mark Grossman2, Kevin Yeung2
1Department of Applied Tumor Biology, University Hospital Heidelberg Institute of Pathology, Heidelberg, Germany.
Abstract:
The development of cancer vaccines to induce tumor-antigen specific immune responses was sparked by the identification of antigens specific to or overexpressed in cancer cells. However, weak immunogenicity and the mutational heterogeneity in many cancers have dampened cancer vaccine successes. With increasing information about mutational landscapes of cancers, mutational neoantigens can be predicted computationally to elicit strong immune responses by CD8 +cytotoxic T cells as major mediators of anticancer immune response. Neoantigens are potentially more robust immunogens and have revived interest in cancer vaccines. Cancers with deficiency in DNA mismatch repair have an exceptionally high mutational burden, including predictable neoantigens. Lynch syndrome is the most common inherited cancer syndrome and is caused by DNA mismatch repair gene mutations. Insertion and deletion mutations in coding microsatellites that occur during DNA replication include tumorigenesis drivers. The induced shift of protein reading frame generates neoantigens that are foreign to the immune system. Mismatch repair-deficient cancers and Lynch syndrome represent a paradigm population for the development of a preventive cancer vaccine, as the mutations induced by mismatch repair deficiency are predictable, resulting in a defined set of frameshift peptide neoantigens. Furthermore, Lynch syndrome mutation carriers constitute an identifiable high-risk population. We discuss the pathogenesis of DNA mismatch repair deficient cancers, in both Lynch syndrome and sporadic microsatellite-unstable cancers. We review evidence for pre-existing immune surveillance, the three mechanisms of immune evasion that occur in cancers and assess the implications of a preventive frameshift peptide neoantigen-based vaccine. We consider both preclinical and clinical experience to date. We discuss the feasibility of a cancer preventive vaccine for Lynch syndrome carriers and review current antigen selection and delivery strategies. Finally, we propose RNA vaccines as having robust potential for immunoprevention of Lynch syndrome cancers.
Insights
Preventive cancer vaccines targeting frameshift peptide neoantigens show promise for Lynch syndrome. These vaccines leverage predictable mutations in mismatch repair-deficient cancers to elicit strong CD8+ T cell responses.
Area of Science:
- Oncology
- Immunology
- Genetics
Background:
- Cancer vaccine development faces challenges due to weak immunogenicity and tumor heterogeneity.
- Neoantigens, particularly frameshift peptide neoantigens in mismatch repair-deficient cancers, offer a promising strategy for cancer vaccines.
- Lynch syndrome, an inherited cancer syndrome, is characterized by DNA mismatch repair deficiency and a high mutational burden.
Purpose of the Study:
- To explore the potential of a preventive cancer vaccine based on frameshift peptide neoantigens for Lynch syndrome.
- To discuss the pathogenesis of mismatch repair-deficient cancers and their immune evasion mechanisms.
- To review preclinical and clinical evidence for frameshift peptide neoantigen-based vaccines and RNA vaccine technology.
Main Methods:
- Computational prediction of neoantigens from mutational landscapes.
- Analysis of DNA mismatch repair deficiency and microsatellite instability in cancer development.
- Review of preclinical and clinical data on cancer vaccines and immune evasion strategies.
Main Results:
- Mismatch repair-deficient cancers, including Lynch syndrome, generate predictable frameshift peptide neoantigens.
- These neoantigens can elicit strong CD8+ T cell responses, crucial for anticancer immunity.
- RNA vaccines demonstrate robust potential for the immunoprevention of Lynch syndrome-associated cancers.
Conclusions:
- Frameshift peptide neoantigen-based vaccines represent a viable strategy for preventing cancers in Lynch syndrome carriers.
- RNA vaccine technology offers a promising platform for delivering these preventive vaccines.
- Targeting predictable neoantigens in high-risk populations like Lynch syndrome is a key advancement in cancer immunoprevention.
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