A de novo substitution in BCL11B leads to loss of interaction with transcriptional complexes and craniosynostosis

Author:

Goos Jacqueline A C12,Vogel Walter K3,Mlcochova Hana4,Millard Christopher J5,Esfandiari Elahe3,Selman Wisam H36,Calpena Eduardo4,Koelling Nils4,Carpenter Evan L3,Swagemakers Sigrid M A27,van der Spek Peter J2,Filtz Theresa M3,Schwabe John W R5,Iwaniec Urszula T8,Mathijssen Irene M J1,Leid Mark39,Twigg Stephen R F4ORCID

Affiliation:

1. Departments of Plastic and Reconstructive Surgery and Hand Surgery

2. Bioinformatics, Erasmus MC, University Medical Center Rotterdam, CA Rotterdam, The Netherlands

3. Department of Pharmaceutical Sciences, College of Pharmacy, Oregon State University, Corvallis, OR, USA

4. Clinical Genetics Group, MRC Weatherall Institute of Molecular Medicine, University of Oxford, John Radcliffe Hospital, Oxford, UK

5. Leicester Institute for Structural and Chemical Biology, Department of Molecular and Cell Biology, University of Leicester, Leicester, UK

6. College of Veterinary Medicine, University of Al-Qadisiyah, Al Diwaniyah, Iraq

7. Department of Pathology, Erasmus MC, University Medical Center Rotterdam, CA Rotterdam, The Netherlands

8. Skeletal Biology Laboratory, School of Biological and Population Health Sciences, Oregon State University, Corvallis, OR, USA

9. Department of Integrative Biosciences, Oregon Health & Science University, Portland, OR, USA

Abstract

Abstract Craniosynostosis, the premature ossification of cranial sutures, is a developmental disorder of the skull vault, occurring in approximately 1 in 2250 births. The causes are heterogeneous, with a monogenic basis identified in ~25% of patients. Using whole-genome sequencing, we identified a novel, de novo variant in BCL11B, c.7C>A, encoding an R3S substitution (p.R3S), in a male patient with coronal suture synostosis. BCL11B is a transcription factor that interacts directly with the nucleosome remodelling and deacetylation complex (NuRD) and polycomb-related complex 2 (PRC2) through the invariant proteins RBBP4 and RBBP7. The p.R3S substitution occurs within a conserved amino-terminal motif (RRKQxxP) of BCL11B and reduces interaction with both transcriptional complexes. Equilibrium binding studies and molecular dynamics simulations show that the p.R3S substitution disrupts ionic coordination between BCL11B and the RBBP4–MTA1 complex, a subassembly of the NuRD complex, and increases the conformational flexibility of Arg-4, Lys-5 and Gln-6 of BCL11B. These alterations collectively reduce the affinity of BCL11B p.R3S for the RBBP4–MTA1 complex by nearly an order of magnitude. We generated a mouse model of the BCL11B p.R3S substitution using a CRISPR-Cas9-based approach, and we report herein that these mice exhibit craniosynostosis of the coronal suture, as well as other cranial sutures. This finding provides strong evidence that the BCL11B p.R3S substitution is causally associated with craniosynostosis and confirms an important role for BCL11B in the maintenance of cranial suture patency.

Funder

National Institutes of Health

Higher Committee for Education Development in Iraq

Senior Investigator Award

Wellcome Trust

Medical Research Council

Weatherall Institute of Molecular Medicine Strategic Alliance

National Institute for Health Research

Oxford Biomedical Research Centre Programme

Publisher

Oxford University Press (OUP)

Subject

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

Reference71 articles.

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