The H3.3 chaperone Hira complex orchestrates oocyte developmental competence

Author:

Smith Rowena1,Susor Andrej2,Ming Hao3,Tait Janet1,Conti Marco4,Jiang Zongliang3ORCID,Lin Chih-Jen1ORCID

Affiliation:

1. MRC Centre for Reproductive Health, University of Edinburgh, Queen's Medical Research Institute, 47 Little France Crescent, Edinburgh EH16 4TJ, UK

2. Laboratory of Biochemistry and Molecular Biology of Germ Cells, Institute of Animal Physiology and Genetics, CAS, Rumburska 89, 277 21 Libechov, Czech Republic

3. School of Animal Sciences, AgCenter, Louisiana State University, Baton Rouge, LA 70803, USA

4. Center for Reproductive Sciences, University of California, San Francisco, CA 94143, USA

Abstract

ABSTRACT Successful reproduction requires an oocyte competent to sustain early embryo development. By the end of oogenesis, the oocyte has entered a transcriptionally silenced state, the mechanisms and significance of which remain poorly understood. Histone H3.3, a histone H3 variant, has unique cell cycle-independent functions in chromatin structure and gene expression. Here, we have characterised the H3.3 chaperone Hira/Cabin1/Ubn1 complex, showing that loss of function of any of these subunits causes early embryogenesis failure in mouse. Transcriptome and nascent RNA analyses revealed that transcription is aberrantly silenced in mutant oocytes. Histone marks, including H3K4me3 and H3K9me3, are reduced and chromatin accessibility is impaired in Hira/Cabin1 mutants. Misregulated genes in mutant oocytes include Zscan4d, a two-cell specific gene involved in zygote genome activation. Overexpression of Zscan4 in the oocyte partially recapitulates the phenotypes of Hira mutants and Zscan4 knockdown in Cabin1 mutant oocytes partially restored their developmental potential, illustrating that temporal and spatial expression of Zscan4 is fine-tuned at the oocyte-to-embryo transition. Thus, the H3.3 chaperone Hira complex has a maternal effect function in oocyte developmental competence and embryogenesis, through modulating chromatin condensation and transcriptional quiescence.

Funder

Medical Research Council

Wellcome Trust

University of Edinburgh

Royal Society of Edinburgh

Scottish Government

National Institutes of Health

Audubon Center for Research of Endangered Species

The University of Edinburgh

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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