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Neoantigens and genome instability: impact on immunogenomic phenotypes and immunotherapy response
1Institute for Genomic Medicine at Nationwide Children's Hospital, The Ohio State University College of Medicine, Children's Drive, Colombus, OH, 43205, USA. Elaine.Mardis@nationwidechildrens.org.
Abstract:
The resurgence of immune therapies in cancer medicine has elicited a corresponding interest in understanding the basis of patient response or resistance to these treatments. One aspect of patient response clearly lies in the genomic alterations that are associated with cancer onset and progression, including those that contribute to genomic instability and the resulting creation of novel peptide sequences that may present as neoantigens. The immune reaction to these unique 'non-self' peptides is frequently suppressed by the tumor itself, but the use of checkpoint blockade therapies, personalized vaccines, or a combination of these treatments may elicit a tumor-specific immune response that results in cell death. Massively parallel sequencing, coupled with different computational analyses, provides unbiased identification of the germline and somatic alterations that drive cancer development, and of those alterations that lead to neoantigens. These range from simple point mutations that change single amino acids to complex alterations, such as frameshift insertion or deletion mutations, splice-site alterations that lead to exon skipping, structural alterations that lead to the formation of fusion proteins, and other forms of collateral damage caused by genome instability that result in new protein sequences unique to the cancer. The various genome instability phenotypes can be identified as alterations that impact DNA replication or mismatch repair pathways or by their genomic signatures. This review provides an overview of current knowledge regarding the fundamentals of genome replication and of both germline and somatic alterations that disrupt normal replication, leading to various forms of genomic instability in cancers, to the resulting generation of neoantigens and, ultimately, to immune-responsive and resistant phenotypes.
Insights
Genomic alterations drive cancer progression and neoantigen generation, influencing patient response to immune therapies. Understanding genome instability is key to developing effective cancer treatments.
Area of Science:
- Oncology
- Immunology
- Genetics
Background:
- Cancer immune therapies are gaining prominence, necessitating a deeper understanding of patient response and resistance mechanisms.
- Genomic alterations, including those causing genomic instability, are central to cancer development and the creation of neoantigens.
Purpose of the Study:
- To review the fundamentals of genome replication and its disruption in cancer.
- To explore how germline and somatic alterations lead to genomic instability and neoantigen generation.
- To connect these molecular events to immune-responsive and resistant phenotypes in cancer patients.
Main Methods:
- Review of current knowledge on genome replication and alterations.
- Analysis of computational methods for identifying germline and somatic alterations.
- Examination of genomic signatures associated with genome instability phenotypes.
Main Results:
- Genomic alterations range from point mutations to complex structural changes, all contributing to neoantigen formation.
- Genome instability phenotypes can be identified through their impact on DNA replication and mismatch repair pathways.
- Tumor-specific immune responses can be elicited by therapies targeting neoantigens, overcoming immune suppression.
Conclusions:
- Understanding the interplay between genomic instability, neoantigen generation, and immune response is critical for advancing cancer immunotherapy.
- Identifying specific genomic alterations and instability signatures can predict patient response to immune-based treatments.
- Targeting neoantigens through therapies like checkpoint blockade or vaccines holds promise for overcoming cancer's immune resistance.
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