Quality control in oocytes by p63 is based on a spring-loaded activation mechanism on the molecular and cellular level

Author:

Coutandin Daniel123,Osterburg Christian123,Srivastav Ratnesh Kumar123,Sumyk Manuela123,Kehrloesser Sebastian123,Gebel Jakob123,Tuppi Marcel123,Hannewald Jens4,Schäfer Birgit123,Salah Eidarus5,Mathea Sebastian5,Müller-Kuller Uta6,Doutch James7,Grez Manuel6,Knapp Stefan589,Dötsch Volker123ORCID

Affiliation:

1. Institute of Biophysical Chemistry, Goethe University, Frankfurt, Germany

2. Center for Biomolecular Magnetic Resonance, Goethe University, Frankfurt, Germany

3. Cluster of Excellence Macromolecular Complexes, Goethe University, Frankfurt, Germany

4. MS-DTB-C Protein Purification, Merck KGaA, Darmstadt, Germany

5. Nuffield Department of Medicine, Structural Genomics Consortium, University of Oxford, Oxford, United Kingdom

6. Georg-Speyer Haus, Frankfurt, Germany

7. ISIS Neutron and Muon Source, Rutherford Appleton Laboratory, Didcot, United Kingdom

8. Institute for Pharmaceutical Chemistry, Goethe University, Frankfurt, Germany

9. Buchmann Institute for Molecular Life Science, Goethe University, Frankfurt, Germany

Abstract

Mammalian oocytes are arrested in the dictyate stage of meiotic prophase I for long periods of time, during which the high concentration of the p53 family member TAp63α sensitizes them to DNA damage-induced apoptosis. TAp63α is kept in an inactive and exclusively dimeric state but undergoes rapid phosphorylation-induced tetramerization and concomitant activation upon detection of DNA damage. Here we show that the TAp63α dimer is a kinetically trapped state. Activation follows a spring-loaded mechanism not requiring further translation of other cellular factors in oocytes and is associated with unfolding of the inhibitory structure that blocks the tetramerization interface. Using a combination of biophysical methods as well as cell and ovary culture experiments we explain how TAp63α is kept inactive in the absence of DNA damage but causes rapid oocyte elimination in response to a few DNA double strand breaks thereby acting as the key quality control factor in maternal reproduction.

Funder

Deutsche Forschungsgemeinschaft

Wellcome Trust

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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