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Splicing-derived neoantigens provide diverse target classes for T-cell and antibody-based cancer immunotherapiesSplicing-Derived Neoantigens Offer New Targets for Cancer Immunotherapy

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Key Takeaway
Recognize splicing-derived neoantigens as potential targets for T-cell and antibody-based cancer immunotherapies.

This systematic review explores the role of splicing-derived neoantigens as potential targets for cancer immunotherapy. The review synthesizes information regarding the origins of these antigens, which arise from somatic mutations in core spliceosome components, epigenetic derepression of transposable elements, and the dysregulation of splicing regulatory networks.

The authors identify two major target classes for clinical application: MHC class I-restricted neopeptides for T-cell-based therapies and extracellular neoepitopes (ExNeoEpitopes) for antibody-based modalities, including monoclonal antibodies, bispecific engagers, antibody-drug conjugates, CAR-T cells, and CAR-NK cells.

Despite the potential of these targets, the review notes significant immunological barriers that may limit efficacy, including T-cell exhaustion, impaired antigen presentation through MHC-I downregulation, and suppression within the tumor microenvironment. The review focuses on emerging technologies and potential targets rather than established clinical trial outcomes. Clinical application of these targets is currently limited by these biological barriers and the early stage of the technology.

How this fits prior evidence

This review addresses a gap in the identification of specific tumor-specific targets for immunotherapy. While prior coverage has discussed the use of multimodal AI to improve risk prediction in cancer management and the potential of sulforaphane to modulate tumor suppressor genes, this review focuses on the biological identification of splicing-derived neoantigens as targets for T-cell and antibody-based therapies.

Researchers have identified a specific group of markers called splicing-derived neoantigens. These markers are created by mutations in the cell's splicing machinery, as well as other genetic and environmental factors. Because these markers are specific to cancer cells, they may serve as useful targets for the immune system.

These targets can be used in several types of modern treatments. They can be used for T-cell based therapies or for antibody-based treatments like CAR-T cells and antibody-drug conjugates. These different methods aim to help the body's immune system recognize and attack cancer cells more effectively.

It is important to note that this research is a review of emerging technologies rather than results from clinical trials on patients. While these targets show promise for future treatments, there are still hurdles like T-cell exhaustion and other barriers within the tumor environment. These findings are currently used to guide future research and development.

What this means for you:
Splicing-derived neoantigens are a promising new source of targets for developing cancer immunotherapies.

Common questions

What are splicing-derived neoantigens?

These are markers that arise from mutations in the cell's splicing components, such as SF3B1, SRSF2, U2AF1, and ZRSR2. They can also come from the activation of transposable elements and the disruption of splicing networks. Because they are specific to cancer, they are being studied as potential targets for immunotherapy.

How can these neoantigens be used to treat cancer?

They can be used in two main ways. One is for T-cell-based therapies that target MHC class I-restricted neopeptides. The other is for antibody-based treatments, including monoclonal antibodies, BiTEs, ADCs, CAR-T, and CAR-NK cells. These methods aim to help the immune system target cancer cells.

Are these treatments available for patients now?

This research is a review of emerging technologies and potential targets, not a report on current clinical trial results. While these neoantigens are a promising source for future treatments, they are still in the research and development phase. You should speak with your doctor about current treatment options.

Study Details

Study typeSystematic review
EvidenceLevel 1
PublishedAug 2026
View Original 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.
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