Phenotypic and transcriptomic characterization of biallelic RNU2‐2 developmental and epileptic encephalopathy

OBJECTIVE: A significant proportion of individuals with suspected genetic developmental and epileptic encephalopathies (DEEs) remain unsolved following whole genome sequencing (WGS). Here we describe biallelic RNU2-2 variants causing a recently reported, severe, recessive DEE. METHODS: We screened individuals who have received WGS analyses at the Genomic Medicine Centre Karolinska for Rare Diseases for biallelic RNU2-2 variants. Deep phenotyping was performed through reviewing entire medical histories and phenotypic traits were transcribed to their corresponding Human Phenotype Ontology (HPO) term. HPO terms were used to generate pairwise phenotypic similarity scores and assess for significantly shared phenotype enrichment in the RNU2-2 sub-cohort. RNA sequencing analyses were performed in fibroblast and blood tissues to compare splicing events between RNU2-2 individuals and two independent control groups. RESULTS: We identified 14 individuals from nine families with 12 ultra-rare biallelic RNU2-2 variants clustering in the conserved 5' domains. Genotype data from 13 of 14 individuals has been reported previously as part of a larger cohort. All individuals presented with a highly concordant, severe DEE, characterized by severe to profound intellectual disability, inability to walk or communicate, hyperkinesia, and refractory seizures. Infantile spasms and tonic seizures were the predominant seizure types and a Lennox-Gastaut syndrome-like phenotype was common. These individuals had a significantly similar phenotypic signature when compared with 703 individuals with complex pediatric epilepsies (two-sided Monte Carlo permutation test, p = .005). RNA sequencing analyses showed aberrant splicing, with the most pronounced effects in fibroblast tissues in mutually exclusive exon and alternate 3' splice-site events, which were not detectable in blood. SIGNIFICANCE: We present deep phenotyping data and transcriptomic analyses that provide support for rare, 5' clustering biallelic RNU2-2 variants causing this novel, severe DEE. We propose an RNA sequencing methodology on fibroblast tissue for future validation of RNU2-2 variants.

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Publication Details

Journal
Epilepsia
Published
2026-09-01
DOI
https://doi.org/10.1002/epi.70473
Primary Topic
Genomics and Rare Diseases
Type
article
Field-Weighted Citation Impact
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article

Phenotypic and transcriptomic characterization of biallelic RNU2‐2 developmental and epileptic encephalopathy

Mia Olsson Engman, Samuel Agyei Wiafe, Nicole Lesko, Tord Jonson et al.
Epilepsia
Genomics and Rare Diseases
article

Phenotypic and transcriptomic characterization of biallelic RNU2‐2 developmental and epileptic encephalopathy

Mia Olsson Engman, Samuel Agyei Wiafe, Nicole Lesko, Tord Jonson, Nadja Pekkola Pacheco, Malin Ueberschär, Irene Duba, S. A. Ivarsson, Kristina Karrman, Anna Lindstrand, Olivia J. Henry, Anna Wedell, D. Nilsson, Erik Stenund, Lucía Peña‐Pérez, Asa Lindfors, Daniel Carlberg, Tommy Stodberg, Sofia Ygberg, Magnus Burstedt, Angelica M. Delgado-Vega, Fulya Taylan, Anna Hammarsjö, Ann Nordgren
article en

Abstract

OBJECTIVE: A significant proportion of individuals with suspected genetic developmental and epileptic encephalopathies (DEEs) remain unsolved following whole genome sequencing (WGS). Here we describe biallelic RNU2-2 variants causing a recently reported, severe, recessive DEE. METHODS: We screened individuals who have received WGS analyses at the Genomic Medicine Centre Karolinska for Rare Diseases for biallelic RNU2-2 variants. Deep phenotyping was performed through reviewing entire medical histories and phenotypic traits were transcribed to their corresponding Human Phenotype Ontology (HPO) term. HPO terms were used to generate pairwise phenotypic similarity scores and assess for significantly shared phenotype enrichment in the RNU2-2 sub-cohort. RNA sequencing analyses were performed in fibroblast and blood tissues to compare splicing events between RNU2-2 individuals and two independent control groups. RESULTS: We identified 14 individuals from nine families with 12 ultra-rare biallelic RNU2-2 variants clustering in the conserved 5' domains. Genotype data from 13 of 14 individuals has been reported previously as part of a larger cohort. All individuals presented with a highly concordant, severe DEE, characterized by severe to profound intellectual disability, inability to walk or communicate, hyperkinesia, and refractory seizures. Infantile spasms and tonic seizures were the predominant seizure types and a Lennox-Gastaut syndrome-like phenotype was common. These individuals had a significantly similar phenotypic signature when compared with 703 individuals with complex pediatric epilepsies (two-sided Monte Carlo permutation test, p = .005). RNA sequencing analyses showed aberrant splicing, with the most pronounced effects in fibroblast tissues in mutually exclusive exon and alternate 3' splice-site events, which were not detectable in blood. SIGNIFICANCE: We present deep phenotyping data and transcriptomic analyses that provide support for rare, 5' clustering biallelic RNU2-2 variants causing this novel, severe DEE. We propose an RNA sequencing methodology on fibroblast tissue for future validation of RNU2-2 variants.

Epilepsia
Karolinska University Hospital (SE), Lund University (SE), University of Health and Allied Sciences (GH), Science for Life Laboratory (SE), Sahlgrenska University Hospital (SE), Karolinska Institutet (SE), Sunderby sjukhus (SE), Region Blekinge (SE), Skåne University Hospital (SE), Ghana Health Service (GH), University of Gothenburg (SE), Umeå University (SE)
Hjärnfonden, Knut och Alice Wallenbergs Stiftelse, Vetenskapsrådet, Stiftelsen Frimurare Barnhuset i Stockholm, Science for Life Laboratory
Quality Education
Openalex Percentile: Top 11%
Genomics and Rare Diseases
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