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  3. Intron retention in health and amyotrophic lateral sclerosis.

Intron retention in health and amyotrophic lateral sclerosis.

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DOI
10.48620/99972
Publisher DOI
10.1093/brain/awag142
PubMed ID
42543164
Abstract
Intron retention (IR) is the molecular phenomenon by which introns, historically thought to represent non-coding 'junk', remain unspliced within pre-mRNA transcripts, resulting in their incorporation into the mature mRNA molecule. While the role of IR is well established in species of plant, fungi, insects and viruses, it remains relatively understudied in mammalian biology. It was previously assumed that IR only played a limited role in downregulating a transcript's translation potential through downstream initiation of nuclear detention or nonsense mediated decay (NMD). However, recent studies highlight IR's significantly more complex and dynamic contribution to cellular physiology and disease. In particular, a role for IR is emerging in both health and neurodegenerative diseases, including amyotrophic lateral sclerosis (ALS), a rapidly progressive and invariably fatal disease that renders patients paralysed and unable to eat, speak or breathe. Significant technological advances now permit a comprehensive interrogation of previously unrecognized aspects of RNA metabolism in clinically relevant human cell types. In this review, we focus on the differential role(s) of nuclear and cytoplasmic intron retaining transcripts (nIRTs and cIRTs, respectively), as well as how IRTs may influence subcellular localization of ribonucleoprotein (RNP) complexes, loss of function of bound RNA binding proteins (RBPs) and liquid-liquid phase separation (LLPS) in physiology and disease. Additionally, we discuss the potential of IRTs as independent regulatory elements beyond their protein-coding functions and highlight how artificial intelligence is poised to accelerate discoveries in this area. In the context of IR's increasing appreciation, we also highlight its potential as a therapeutic target and explore current and future challenges in this burgeoning field.
Date Issued
2026-08-03
Publication Type
Article
Subjects
RNA binding protein
•
amyotrophic lateral sclerosis
•
gene expression regulation
•
intron retention
•
phase separation
•
splicing
Language(s)
en
Author(s)
Wang, Chloe Y
Taylor, Stephanie
Pandya, Virenkumar A
Clarke, Benjamin E
Pal, Koustav
Shelkovnikova, Tatyana A
Wang, Yiran
Luisier, Raphaelle  
Department for BioMedical Research (DBMR)  
Patani, Rickie
Additional Credits
Department for BioMedical Research (DBMR)  
Journal
Brain
Publisher
Oxford University Press
ISSN
1460-2156
0006-8950
Access(Rights)
open.access
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