Loss of the E3 ubiquitin ligases UBR-5 or HECD-1 restores Caenorhabditis elegans development in the absence of SWI/SNF function

Author:

Lampersberger Lisa12,Conte Francesca3,Ghosh Subhanita4,Xiao Yutong5ORCID,Price Jonathan12,Jordan David12,Matus David Q.5ORCID,Sarkies Peter46,Beli Petra3,Miska Eric A.1278ORCID,Burton Nicholas O.9

Affiliation:

1. Wellcome Trust/Cancer Research UK Gurdon Institute, University of Cambridge, Cambridge CB2 1QN, UK

2. Department of Genetics, University of Cambridge, Cambridge CB2 3EH, UK

3. Institute of Molecular Biology, Mainz 55128, Germany

4. Medical Research Council London Institute of Medical Sciences, London W12 0NN, UK

5. Department of Biochemistry and Cell Biology, Stony Brook University, NY 11790

6. Department of Biochemistry, University of Oxford, Oxford OX1 3QU, UK

7. Department of Biochemistry, University of Cambridge, Cambridge CB2 1QW, UK

8. Wellcome Sanger Institute, Wellcome Trust Genome Campus, Cambridge CB10 1SA, UK

9. Department of Epigenetics, Van Andel Research Institute, Grand Rapids, MI 49503

Abstract

SWItch/sucrose non-fermenting (SWI/SNF) complexes are a family of chromatin remodelers that are conserved across eukaryotes. Mutations in subunits of SWI/SNF cause a multitude of different developmental disorders in humans, most of which have no current treatment options. Here, we identify an alanine-to-valine–causing mutation in the SWI/SNF subunit snfc-5 ( SMARCB1 in humans) that prevents embryonic lethality in Caenorhabditis elegans nematodes harboring a loss-of-function mutation in the SWI/SNF subunit swsn-1 ( SMARCC1/2 in humans). Furthermore, we found that the combination of this specific mutation in snfc-5 and a loss-of-function mutation in either of the E3 ubiquitin ligases ubr-5 ( UBR5 in humans) or hecd-1 ( HECTD1 in humans) can restore development to adulthood in swsn-1 loss-of-function mutants that otherwise die as embryos. Using these mutant models, we established a set of 335 genes that are dysregulated in SWI/SNF mutants that arrest their development embryonically but exhibit near wild-type levels of expression in the presence of suppressor mutations that prevent embryonic lethality, suggesting that SWI/SNF promotes development by regulating some subset of these 335 genes. In addition, we show that SWI/SNF protein levels are reduced in swsn-1; snfc-5 double mutants and partly restored to wild-type levels in swsn-1; snfc-5; ubr-5 triple mutants, consistent with a model in which UBR-5 regulates SWI/SNF levels by tagging the complex for proteasomal degradation. Our findings establish a link between two E3 ubiquitin ligases and SWI/SNF function and suggest that UBR5 and HECTD1 could be potential therapeutic targets for the many developmental disorders caused by missense mutations in SWI/SNF subunits.

Funder

Cancer Research UK

Wellcome Trust

UKRI | Medical Research Council

HHS | NIH | National Institute of General Medical Sciences

Deutsche Forschungsgemeinschaft

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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