Related Experiment Video
Updated: Jan 26, 2026

Culture of Bladder Cancer Organoids as Precision Medicine Tools
Published on: December 28, 2021
Splicing-driven post-translational dysregulation: a new frontier for precision cancer medicine and immunotherapy
Sael Alatawi1,2
1Department of Medical Laboratory Technology, Faculty of Applied Medical Sciences, University of Tabuk, 47512, Tabuk, Saudi Arabia. s.alatwi@ut.edu.sa.
Abstract:
Cancer is a disease marked by widespread molecular dysregulation, including alterations in gene expression, signaling pathways, and protein function. Among the critical regulators of protein function are post-translational modifications (PTMs), which fine-tune protein stability, activity, localization, and interactions. At the same time, more and more data has shown that mutations in parts of the splicing machinery, such as SF3B1, SRSF2, U2AF1, and ZRSR2, are common causes of different types of hematologic and solid tumors. Although the transcriptome implications of these mutations have been thoroughly delineated, their subsequent impacts on PTM regulation are still predominantly unexamined. This review seeks to address this deficiency by emphasizing the nascent connections between spliceosome mutations and the alteration of PTM landscapes in cancer. We suggest that modified splicing of PTM-related enzymes and substrates could significantly transform the cancer proteome, providing novel mechanistic insights and therapeutic prospects. We also look into how splicing-driven PTM changes, especially those that affect ubiquitination pathways and other important modification systems, affect the immune landscape of tumors. This gives us new information about how tumors with splicing mutations become more fit by changing the pathways that control the immune system and tumor surveillance.
Insights
Spliceosome mutations in cancer alter protein function by changing post-translational modifications (PTMs). This review highlights how these splicing-driven PTM changes impact tumor immunity and offer new therapeutic strategies.
Area of Science:
- Molecular Biology
- Cancer Research
- Genomics
Background:
- Cancer involves molecular dysregulation, including altered gene expression and protein function.
- Post-translational modifications (PTMs) critically regulate protein stability, activity, localization, and interactions.
- Mutations in splicing machinery (e.g., SF3B1, SRSF2) are frequent in hematologic and solid tumors.
Purpose of the Study:
- To review the under-examined impact of spliceosome mutations on PTM regulation in cancer.
- To explore the connection between altered splicing and PTM landscapes.
- To investigate how splicing-driven PTM changes influence tumor immunity.
Main Methods:
- Literature review focusing on spliceosome mutations and PTMs in cancer.
- Analysis of existing data on transcriptome alterations.
- Synthesis of findings on PTM regulation and immune evasion.
Main Results:
- Spliceosome mutations can significantly alter PTM regulation in cancer.
- Modified splicing of PTM-related enzymes and substrates impacts the cancer proteome.
- Splicing-driven PTM changes, particularly in ubiquitination, affect tumor immune evasion and surveillance.
Conclusions:
- Altered PTM landscapes due to spliceosome mutations offer novel mechanistic insights into cancer development.
- Targeting splicing-driven PTM alterations presents potential therapeutic avenues.
- Understanding these changes is crucial for developing new cancer immunotherapies.
More Related Videos
09:10A Fast and Quantitative Method for Post-translational Modification and Variant Enabled Mapping of Peptides to Genomes
Published on: May 22, 2018
10:12Author Spotlight: Quantitative Detection of DNA Protein Crosslinks and Their Post-Translational Modifications
Published on: April 21, 2023
Related Concept Videos
Alternative RNA Splicing
There are five types of alternative RNA splicing that vary in the ways the pre-mRNA segments are removed or retained in the mature mRNA. The first...
Alternative RNA Splicing
RNA Splicing
Post-translational Translocation of Proteins to the RER
Targeting proteins to the ER
Hsp40 and Hsp70 chaperone molecules bind the translated proteins in the cytosol to prevent their folding. The chaperone binding helps to keep the signal...
Tumor Immunotherapy
Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of...