This gene-agnostic framework establishes a systematic strategy for identifying intronic mutational hotspots and matching patients to scalable, mutation-agnostic ASO-based precision therapies.
Abstract
Deep intronic variants remain an understudied class of pathogenic variation, primarily due to their absence from standard exome and gene panel datasets and the complexity of non-coding genome interpretation. We hypothesized that pathogenic deep intronic variants are not randomly distributed but instead cluster within intronic "hotspots" inherently prone to pseudoexon activation, and that mapping such regions could improve molecular diagnosis. Importantly, such intronic hotspots nominate targets for antisense oligonucleotide (ASO) therapy. Using X-linked Alport syndrome as a proof-of-concept model and based on our previous work, we screened unsolved patients across multiple European diagnostic centers for variants within a defined region of COL4A5 intron 6. We identified eight independent variants in more than 35 affected individuals from ten unrelated families, which led to two pseudoexon inclusion events, both using the same strong cryptic splice donor site. In all, RNA sequencing and/or minigene assays confirmed aberrant splicing, even when prediction tools were discordant or fell below clinical thresholds. A single ASO targeting the shared donor site restored normal COL4A5 mRNA and 5(IV) collagen protein expression in patient-derived cells regardless of the causative variant. Extending this analysis gene-wide using the AlphaGenome sequence-to-function model, we confirmed intron 6 as one of the most critical COL4A5 splicing hotspot and identified additional potential hotspots harboring novel predicted spliceogenic variants. This gene-agnostic framework establishes a systematic strategy for identifying intronic mutational hotspots and matching patients to scalable, mutation-agnostic ASO-based precision therapies.
BACKGROUND
Disruption of MYBPC3 precursor mRNA splicing is a frequent genetic cause of hypertrophic cardiomyopathy (HCM). Most often, it reflects changes at canonical sites or the creation of novel splice sites. Prediction tools usually prioritize splice variants with lower efficiency when they are distant from canonic...
M. Gallego-Delgado, S. L. Lorenzo Hernández, Soledad García Hernández et al.· Circulation· 0 citations
A streamlined minigene-based workflow for rapid functional evaluation of splicing variants and a robust and scalable framework for functional interpretation of splicing variants is developed, improving diagnostic resolution and supporting more informed clinical decision-making in hereditary cancer genetics.
Noemi Calandra, Elisabetta Mereu, P. Ogliara et al.· Journal of Medical Genetics· 0 citations
AIM
Deep intronic variants can disrupt splicing and cause monogenic disease but are missed by routine genetic testing. This study assessed the contribution of deep intronic variants to Wolcott-Rallison syndrome (WRS), a recessive disorder characterized by early-onset diabetes and progressive multisystem disease caused...
Alaa Al Assi, G. Bonfield, J. Russ-Silsby et al.· Diabetic Medicine· 0 citations