Aug 2026· Frontiers in Immunology· Vol 17· 0 citations· 129 references
Medicine
TL;DR
This review integrates current understanding of the biological origins, immunological barriers, target classes of splicing neoantigens, and the technologies that enable their advancement in cancer immunotherapy to produce two major classes of immunotherapeutic targets.
Abstract
Aberrant pre-mRNA splicing in cancer generates protein sequences that are rare or absent in normal tissues, creating a rich source of tumor-specific neoantigens for immunotherapy. These splicing-derived neoantigens arise through diverse mechanisms, including recurrent somatic mutations in core spliceosome components (SF3B1, SRSF2, U2AF1, and ZRSR2), epigenetic derepression of transposable elements that give rise to chimeric exon-TE junctions, and coordinated dysregulation of splicing regulatory networks in cancers lacking spliceosome coding mutations. These processes produce two major classes of immunotherapeutic targets: 1) MHC class I-restricted neopeptides that can be recognized by T-cell-based therapies, and 2) extracellular neoepitopes (ExNeoEpitopes) within transmembrane proteins that are accessible to HLA-independent antibody-based modalities, including monoclonal antibodies (mAbs), bispecific engagers (BiTEs), antibody-drug conjugates (ADCs), and chimeric antigen receptor (CAR)-T or CAR-NK cells. Despite their strong immunogenic potential, effective therapeutic exploitation requires overcoming key immunological barriers, including T-cell exhaustion, impaired antigen presentation through MHC-I downregulation, and suppression within the tumor microenvironment. Recent advances in computational neoantigen prediction, immunopeptidomics, surface proteomics, long-read and single-cell isoform sequencing, and AI-guided therapeutic design are enabling more systematic discovery and validation of splicing-derived targets. This review integrates current understanding of the biological origins, immunological barriers, target classes of splicing neoantigens, and the technologies that enable their advancement in cancer immunotherapy.
Cancer immunotherapy has improved outcomes across many tumor types, but primary and acquired resistance, tumor heterogeneity and a shortage of safe targets remain unresolved. Part of this gap arises because tumor cells evade immune recognition not only through genomic mutation but also through post-transcriptional mRNA...
Y. Yukselten, Haseeb Ahmad, Mohammed Shoultout et al.· Frontiers in Immunology· 0 citations
This review outlines the molecular mechanisms driving neoantigen generation in CRC, including frameshift mutations, single-nucleotide variants, alternative RNA splicing, and circular RNA-derived epitopes, and evaluates neoantigen-directed therapeutic platforms, encompassing personalized neoantigen vaccines and adoptive...
Na Wang, Yi-Meng Xia, Ping Wang et al.· Medical Oncology· 0 citations
Effective T cell–based immunotherapies require functional receptors that can be engineered and redeployed to recognize tumor-restricted antigens. Noncanonical peptides arising from transcription outside annotated protein-coding regions expand the antigenic landscape of cancer; however, systematic strategies to biologic...
T. Hulen, M. D. Crowther, Luke Alexander Schuster et al.· Signal Transduction and Targ...· 0 citations
Progress will require more selective splicing-directed modalities, pharmacodynamic biomarkers that measure splicing perturbation in the relevant tumor or blood compartment, longitudinal mapping of genetic and tumor cell-state plasticity-driven resistance, and biomarker-defined combination trials to support expansion fr...
Xinbate Jingele, Qinxinru Sun, Xiao-Yang Li et al.· Japanese Journal of Clinical...· 0 citations
A new role for PRMT5 is defined in regulating and coordinating the interplay between the innate and adaptive immune response and it is found that RIs have a propensity to form double-stranded RNAs that contribute to the innate response.
Wiktoria Blaszczak, Wojciech Barczak, Chu-Yue Zhang et al.· EMBO Molecular Medicine· 1 citation
Alternative splicing and alternative promoters generate splicing variants to expand proteomic and transcriptional diversity to orchestrate physiological activities and dictate tumorigenesis. Splicing variants are attractive tumor-associated antigens (TAAs) for the clinical development of cancer therapies. Here, recent...
Masuko Katoh, Masaru Katoh· Frontiers in Molecular Medic...· 0 citations
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