Kabuki syndrome stem cell models reveal locus specificity of histone methyltransferase 2D (KMT2D/MLL4)

Author:

Jefri Malvin12,Zhang Xin12,Stumpf Patrick S3,Zhang Li4,Peng Huashan12,Hettige Nuwan12,Theroux Jean-Francois12,Aouabed Zahia12,Wilson Khadija5,Deshmukh Shriya6,Antonyan Lilit12,Ni Anjie12,Alsuwaidi Shaima12,Zhang Ying12,Jabado Nada678,Garcia Benjamin A5,Schuppert Andreas3,Bjornsson Hans T4910,Ernst Carl127ORCID

Affiliation:

1. Psychiatric Genetics Group , McGill University, 6875 LaSalle Boulevard, Frank Common Building, Room 2101.2, Verdun, Montreal, QC H4H 1R3 , Canada

2. Department of Psychiatry , McGill University and Douglas Hospital Research Institute, Montreal, QC H4H 1R3 , Canada

3. Institute for Computational Biomedicine , RWTH Aachen University, Aachen 52056 , Germany

4. McKusick-Nathans Institute of Genetic Medicine , Johns Hopkins University School of Medicine, Baltimore, MD 21205 , USA

5. Department of Biochemistry and Molecular , Washington University School of Medicine in St. Louis, St. Louis, MO 63110 , USA

6. Division of Experimental Medicine , Department of Medicine, McGill University, Montreal, QC H4A 3J1 , Canada

7. Department of Human Genetics , McGill University, Montreal, QC H3A 0C7 , Canada

8. Department of Pediatrics , McGill University and The Research Institute of the McGill University Health Centre, Montreal, QC H4A 3J1 , Canada

9. Faculty of Medicine , University of Iceland, Reykjavik, Iceland

10. Department of Genetics and Molecular Medicine , Landspitali University Hospital, 101 Reykjavik , Iceland

Abstract

Abstract Kabuki syndrome is frequently caused by loss-of-function mutations in one allele of histone 3 lysine 4 (H3K4) methyltransferase KMT2D and is associated with problems in neurological, immunological and skeletal system development. We generated heterozygous KMT2D knockout and Kabuki patient-derived cell models to investigate the role of reduced dosage of KMT2D in stem cells. We discovered chromosomal locus-specific alterations in gene expression, specifically a 110 Kb region containing Synaptotagmin 3 (SYT3), C-Type Lectin Domain Containing 11A (CLEC11A), Chromosome 19 Open Reading Frame 81 (C19ORF81) and SH3 And Multiple Ankyrin Repeat Domains 1 (SHANK1), suggesting locus-specific targeting of KMT2D. Using whole genome histone methylation mapping, we confirmed locus-specific changes in H3K4 methylation patterning coincident with regional decreases in gene expression in Kabuki cell models. Significantly reduced H3K4 peaks aligned with regions of stem cell maps of H3K27 and H3K4 methylation suggesting KMT2D haploinsufficiency impact bivalent enhancers in stem cells. Preparing the genome for subsequent differentiation cues may be of significant importance for Kabuki-related genes. This work provides a new insight into the mechanism of action of an important gene in bone and brain development and may increase our understanding of a specific function of a human disease-relevant H3K4 methyltransferase family member.

Funder

CIHR

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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