ArticleOrphanet journal of rare diseases2021
Molecular mechanics and dynamic simulations of well-known Kabuki syndrome-associated KDM6A variants reveal putative mechanisms of dysfunction.
Article in Orphanet journal of rare diseases, 2021. The graph could read no effect estimate from its abstract, so it casts no vote on the map. An erratum has been issued. Cited by 15 papers.
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15 citing papers in PubMed, 14 citations in OpenAlex.
- Interpreting human genetic variation at atomic resolution.Nature genetics · 2026Review
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- Structural Genomics Defines PBRM1 Bromodomain Variant Function in ccRCC.Human mutation · 2026Article
- Mutational landscapes of HNF MODY gene products display a wide distribution with functional implications.Endocrine connections · 2025Review
- Structural mechanism of H3K27 demethylation and crosstalk with heterochromatin markers.Molecular cell · 2025Article
- The triple code model for advancing research in rare and undiagnosed diseases beyond the base pairs.Epigenomics · 2025Article
- Article
- X-chromosome inactivation patterns depend on age and tissue but not conception method in humans.Chromosome research : an international journal on the molecular, supramolecular and evolutionary aspects of chromosome biology · 2023Article
- Deep computational phenotyping of genomic variants impacting the SET domain of KMT2C reveal molecular mechanisms for their dysfunction.Frontiers in genetics · 2023Article
- Case report: A study on theFrontiers in pediatrics · 2022Article
- KDM6A missense variants hamper H3 histone demethylation in lung squamous cell carcinoma.Computational and structural biotechnology journal · 2022Article
- Structural bioinformatics enhances the interpretation of somatic mutations in KDM6A found in human cancers.Computational and structural biotechnology journal · 2022Article
- NovelWorld journal of clinical cases · 2021Article
- Pitt-Hopkins syndrome: phenotypic and genotypic description of four unrelated patients and structural analysis of corresponding missense mutations.Neurogenetics · 2021Article
- Correction to: Molecular mechanics and dynamic simulations of well-known Kabuki syndrome-associated KDM6A variants reveal putative mechanisms of dysfunction.Orphanet journal of rare diseases · 2021Article
Corrections and comments
- Erratum issued
Authors and funding
13 authors at 1 institution in 1 country.
Funding
Abstract
backgroundKabuki syndrome is a genetic disorder that affects several body systems and presents with variations in symptoms and severity. The syndrome is named for a common phenotype of faces resembling stage makeup used in a Japanese traditional theatrical art named kabuki. The most frequent cause of this syndrome is mutations in the H3K4 family of histone methyltransferases while a smaller percentage results from genetic alterations affecting the histone demethylase, KDM6A. Because of the rare presentation of the latter form of the disease, little is known about how missense changes in the KDM6A protein sequence impact protein function.
resultsIn this study, we use molecular mechanic and molecular dynamic simulations to enhance the annotation and mechanistic interpretation of the potential impact of eleven KDM6A missense variants found in Kabuki syndrome patients. These variants (N910S, D980V, S1025G, C1153R, C1153Y, P1195L, L1200F, Q1212R, Q1248R, R1255W, and R1351Q) are predicted to be pathogenic, likely pathogenic or of uncertain significance by sequence-based analysis. Here, we demonstrate, for the first time, that although Kabuki syndrome missense variants are found outside the functionally critical regions, they could affect overall function by significantly disrupting global and local conformation (C1153R, C1153Y, P1195L, L1200F, Q1212R, Q1248R, R1255W and R1351Q), chemical environment (C1153R, C1153Y, P1195L, L1200F, Q1212R, Q1248R, R1255W and R1351Q), and/or molecular dynamics of the catalytic domain (all variants). In addition, our approaches predict that many mutations, in particular C1153R, could allosterically disrupt the key enzymatic interactions of KDM6A.
conclusionsOur study demonstrates that the KDM6A Kabuki syndrome variants may impair histone demethylase function through various mechanisms that include altered protein integrity, local environment, molecular interactions and protein dynamics. Molecular dynamics simulations of the wild type and the variants are critical to gain a better understanding of molecular dysfunction. This type of comprehensive structure- and MD-based analyses should help develop improved impact scoring systems to interpret the damaging effects of variants in this protein and other related proteins as well as provide detailed mechanistic insight that is not currently predictable from sequence alone.
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