A nonfunctional copy of the salmonid sex-determining gene (sdY) is responsible for the “apparent” XY females in Chinook salmon, Oncorhynchus tshawytscha

Author:

Bertho Sylvain12ORCID,Herpin Amaury1ORCID,Jouanno Elodie1,Yano Ayaka1ORCID,Bobe Julien1ORCID,Parrinello Hugues3,Journot Laurent3ORCID,Guyomard René4ORCID,Muller Thomas5ORCID,Swanson Penny6ORCID,McKinney Garrett7ORCID,Williamson Kevin8ORCID,Meek Mariah9ORCID,Schartl Manfred1011ORCID,Guiguen Yann1ORCID

Affiliation:

1. INRAE, LPGP, Rennes 35000, France

2. Physiological Chemistry, Biocenter, University of Wuerzburg, Wuerzburg 97074, Germany

3. Institut de Génomique Fonctionnelle, IGF, CNRS, INSERM, Univ. Montpellier, Montpellier 34094, France

4. GABI, INRAE, AgroParisTech, Université Paris-Saclay, Paris 75005, France

5. Julius-von-Sachs-Institute, Department of Molecular Plant Physiology and Biophysics, University of Wuerzburg, Wuerzburg 97082, Germany

6. Environmental and Fisheries Sciences Division, Northwest Fisheries Science Center, National Marine Fisheries Service, National Oceanic and Atmospheric Administration, Seattle, WA 98112, USA

7. Molecular Genetics Laboratory, Washington Department of Fish & Wildlife, Olympia, WA 98501, USA

8. Atreca, Inc., San Carlos, CA 94070, USA

9. Dept. of Integrative Biology, AgBio Research, and Ecology, Evolution, and Behavior Program, Michigan State University, East Lansing, MI 48824, USA

10. The Xiphophorus Genetic Stock Center, Department of Chemistry and Biochemistry, Texas State University, San Marcos, TX 78666, USA

11. Department of Developmental Biochemistry, Biocenter, University of Wüerzburg, Wuerzburg 97074, Germany

Abstract

Abstract Many salmonids have a male heterogametic (XX/XY) sex determination system, and they are supposed to have a conserved master sex-determining gene (sdY) that interacts at the protein level with Foxl2 leading to the blockage of the synergistic induction of Foxl2 and Nr5a1 of the cyp19a1a promoter. However, this hypothesis of a conserved master sex-determining role of sdY in salmonids is challenged by a few exceptions, one of them being the presence of naturally occurring “apparent” XY Chinook salmon, Oncorhynchus tshawytscha, females. Here, we show that some XY Chinook salmon females have a sdY gene (sdY-N183), with 1 missense mutation leading to a substitution of a conserved isoleucine to an asparagine (I183N). In contrast, Chinook salmon males have both a nonmutated sdY-I183 gene and the missense mutation sdY-N183 gene. The 3-dimensional model of SdY-I183N predicts that the I183N hydrophobic to hydrophilic amino acid change leads to a modification in the SdY β-sandwich structure. Using in vitro cell transfection assays, we found that SdY-I183N, like the wild-type SdY, is preferentially localized in the cytoplasm. However, compared to wild-type SdY, SdY-I183N is more prone to degradation, its nuclear translocation by Foxl2 is reduced, and SdY-I183N is unable to significantly repress the synergistic Foxl2/Nr5a1 induction of the cyp19a1a promoter. Altogether, our results suggest that the sdY-N183 gene of XY Chinook females is nonfunctional and that SdY-I183N is no longer able to promote testicular differentiation by impairing the synthesis of estrogens in the early differentiating gonads of wild Chinook salmon XY females.

Funder

Agence Nationale de la Recherche

Deutsche Forschungsgemeinschaft

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology

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