In sharp contrast with mammals and birds, many cold-blooded vertebrates present homomorphic sex chromosomes. Empirical evidence supports a role for frequent turnovers, which replace non-recombining sex chromosomes before they have time to decay. Three main mechanisms have been proposed for such turnovers, relying either on neutral processes, sex-ratio selection, or intrinsic benefits of the new sex-determining genes (due e.g. to linkage with sexually antagonistic mutations). Here we suggest an additional mechanism, arising from the load of deleterious mutations that accumulate on non-recombining sex chromosomes. In the absence of dosage compensation, this load should progressively lower survival rate in the heterogametic sex. Turnovers shou...
The canonical model of sex-chromosome evolution predicts that sex-antagonistic (SA) genes play an in...
The canonical model of sex-chromosome evolution predicts that sex-antagonistic (SA) genes play an in...
Recombination arrest between X and Y chromosomes, driven by sexually antagonistic genes, is expected...
In sharp contrast with mammals and birds, many cold-blooded vertebrates present homomorphic sex chro...
In sharp contrast with mammals and birds, many cold-blooded vertebrates present homomorphic sex chro...
The recent advances of new genomic technologies has enabled to identify and characterize sex chromos...
Recombination arrest between X and Y chromosomes, driven by sexually antagonistic genes, is expected...
Recombination arrest between X and Y chromosomes, driven by sexually antagonistic genes, is expected...
The recent advances of new genomic technologies has enabled to identify and characterize sex chromos...
Recombination arrest between X and Y chromosomes, driven by sexually antagonistic genes, is expected...
Deleterious mutations accumulating on non-recombining Y chromosomes can drive XY to XY turnovers, as...
Deleterious mutations accumulating on non-recombining Y chromosomes can drive XY to XY turnovers, as...
Deleterious mutations accumulating on non-recombining Y chromosomes can drive XY to XY turnovers, as...
Deleterious mutations accumulating on non-recombining Y chromosomes can drive XY to XY turnovers, as...
The canonical model of sex-chromosome evolution predicts that sex-antagonistic (SA) genes play an in...
The canonical model of sex-chromosome evolution predicts that sex-antagonistic (SA) genes play an in...
The canonical model of sex-chromosome evolution predicts that sex-antagonistic (SA) genes play an in...
Recombination arrest between X and Y chromosomes, driven by sexually antagonistic genes, is expected...
In sharp contrast with mammals and birds, many cold-blooded vertebrates present homomorphic sex chro...
In sharp contrast with mammals and birds, many cold-blooded vertebrates present homomorphic sex chro...
The recent advances of new genomic technologies has enabled to identify and characterize sex chromos...
Recombination arrest between X and Y chromosomes, driven by sexually antagonistic genes, is expected...
Recombination arrest between X and Y chromosomes, driven by sexually antagonistic genes, is expected...
The recent advances of new genomic technologies has enabled to identify and characterize sex chromos...
Recombination arrest between X and Y chromosomes, driven by sexually antagonistic genes, is expected...
Deleterious mutations accumulating on non-recombining Y chromosomes can drive XY to XY turnovers, as...
Deleterious mutations accumulating on non-recombining Y chromosomes can drive XY to XY turnovers, as...
Deleterious mutations accumulating on non-recombining Y chromosomes can drive XY to XY turnovers, as...
Deleterious mutations accumulating on non-recombining Y chromosomes can drive XY to XY turnovers, as...
The canonical model of sex-chromosome evolution predicts that sex-antagonistic (SA) genes play an in...
The canonical model of sex-chromosome evolution predicts that sex-antagonistic (SA) genes play an in...
The canonical model of sex-chromosome evolution predicts that sex-antagonistic (SA) genes play an in...
Recombination arrest between X and Y chromosomes, driven by sexually antagonistic genes, is expected...