A patient-derived missense mouse model of Kabuki syndrome 1

Kabuki syndrome type 1 (KS1) is a rare cause of intellectual disability resulting from heterozygous pathogenic variants in the gene encoding the histone methyltransferase KMT2D. A previously established loss-of-function mouse model of KS1 exhibits key phenotypic features, and therapeutic trials in this mouse model suggest postnatal malleability of neurological symptoms. However, 15-30% of individuals with KS1 carry missense variants. To investigate whether missense variants lead to similar phenotypic presentation in mice, we used CRISPR-Cas9 to introduce the KS1- patient variant R5179, corresponding to R5230H in mice into C57BL/6NTac. Computational and in vitro testing suggests that the R5230H variant does not impair protein stability or loss of enzyme function of KMT2D. Despite a distinct mechanistic basis, our new mouse model (Kmt2d+/R5230H) recapitulates most phenotypes of our prior loss-of-function model, including growth deficiency, craniofacial anomalies, and IgA deficiency, but not altered neurological function. Kmt2d+/R5230H mice show perinatal lethality and a high frequency of unilateral kidney agenesis, a novel phenotype in KS1 mouse models. Kmt2d+/R5230H mice provide a unique opportunity to understand the impact of missense variants on KMT2D function and uncover developmental and perinatal abnormalities in KS1.

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Publication Details

Journal
Disease Models & Mechanisms
Published
2026-09-09
DOI
https://doi.org/10.1242/dmm.052775
Primary Topic
Genomics and Rare Diseases
Type
article
Field-Weighted Citation Impact
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article

A patient-derived missense mouse model of Kabuki syndrome 1

Jill A. Fahrner, Teresa Romeo Luperchio, Meghna Vinod, Romain Lasseur et al.
Disease Models & Mechanisms
Genomics and Rare Diseases
article

A patient-derived missense mouse model of Kabuki syndrome 1

Jill A. Fahrner, Teresa Romeo Luperchio, Meghna Vinod, Romain Lasseur, Hans T. Björnsson, Sara Tholl Halldorsdottir, Hilmar Orn Gunnlaugsson, Agnes Ulfig, Ellen Dagmar Bjornsdottir
article en

Abstract

Kabuki syndrome type 1 (KS1) is a rare cause of intellectual disability resulting from heterozygous pathogenic variants in the gene encoding the histone methyltransferase KMT2D. A previously established loss-of-function mouse model of KS1 exhibits key phenotypic features, and therapeutic trials in this mouse model suggest postnatal malleability of neurological symptoms. However, 15-30% of individuals with KS1 carry missense variants. To investigate whether missense variants lead to similar phenotypic presentation in mice, we used CRISPR-Cas9 to introduce the KS1- patient variant R5179, corresponding to R5230H in mice into C57BL/6NTac. Computational and in vitro testing suggests that the R5230H variant does not impair protein stability or loss of enzyme function of KMT2D. Despite a distinct mechanistic basis, our new mouse model (Kmt2d+/R5230H) recapitulates most phenotypes of our prior loss-of-function model, including growth deficiency, craniofacial anomalies, and IgA deficiency, but not altered neurological function. Kmt2d+/R5230H mice show perinatal lethality and a high frequency of unilateral kidney agenesis, a novel phenotype in KS1 mouse models. Kmt2d+/R5230H mice provide a unique opportunity to understand the impact of missense variants on KMT2D function and uncover developmental and perinatal abnormalities in KS1.

Disease Models & Mechanisms
Reykjavík University (IS), Johns Hopkins University (US), University of Iceland (IS), Aarhus University (DK), Johns Hopkins Medicine (US), National University Hospital of Iceland (IS)
Rannís
Openalex Percentile: Top 99%
Genomics and Rare Diseases
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