DUX4 induces a transcriptome more characteristic of a less-differentiated cell state and inhibits myogenesis

Author:

Knopp Paul1ORCID,Krom Yvonne D.2,Banerji Christopher R. S.13,Panamarova Maryna1,Moyle Louise A.1,den Hamer Bianca2,van der Maarel Silvère M.2,Zammit Peter S.1ORCID

Affiliation:

1. Randall Division of Cell and Molecular Biophysics, Faculty of Life Sciences and Medicine, New Hunt's House, King's College London, Guy's Campus, London SE1 1UL, UK

2. Department of Human Genetics, Leiden University Medical Center, Leiden, Postbus 9600, 2300 RC, The Netherlands

3. Centre of Mathematics and Physics in the Life Sciences and Experimental Biology, University College London, London WC1E 6BT, UK

Abstract

ABSTRACT Skeletal muscle wasting in facioscapulohumeral muscular dystrophy (FSHD) results in substantial morbidity. On a disease-permissive chromosome 4qA haplotype, genomic and/or epigenetic changes at the D4Z4 macrosatellite repeat allows transcription of the DUX4 retrogene. Analysing transgenic mice carrying a human D4Z4 genomic locus from an FSHD-affected individual showed that DUX4 was transiently induced in myoblasts during skeletal muscle regeneration. Centromeric to the D4Z4 repeats is an inverted D4Z4 unit encoding DUX4c. Expression of DUX4, DUX4c and DUX4 constructs, including constitutively active, dominant-negative and truncated versions, revealed that DUX4 activates target genes to inhibit proliferation and differentiation of satellite cells, but that it also downregulates target genes to suppress myogenic differentiation. These transcriptional changes elicited by DUX4 in mouse have significant overlap with genes regulated by DUX4 in man. Comparison of DUX4 and DUX4c transcriptional perturbations revealed that DUX4 regulates genes involved in cell proliferation, whereas DUX4c regulates genes engaged in angiogenesis and muscle development, with both DUX4 and DUX4c modifing genes involved in urogenital development. Transcriptomic analysis showed that DUX4 operates through both target gene activation and repression to orchestrate a transcriptome characteristic of a less-differentiated cell state.

Funder

Medical Research Council

British Heart Foundation

Muscular Dystrophy UK

Association Française contre les Myopathies

FSH Society

Seventh Framework Programme

National Institute of Neurological Disorders and Stroke

National Institute of Arthritis and Musculoskeletal and Skin Diseases

Prinses Beatrix Spierfonds

Spieren voor Spieren

FSHD Global Research Foundation

Friends of FSH Research

Publisher

The Company of Biologists

Subject

Cell Biology

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