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Transition in Sexual System and Sex Chromosome Evolution in the Tadpole Shrimp Triops Cancriformis

Overview
Specialty Genetics
Date 2015 Mar 12
PMID 25757406
Citations 3
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Abstract

Transitions in sexual system and reproductive mode may affect the course of sex chromosome evolution, for instance by altering the strength of sexually antagonistic selection. However, there have been few studies of sex chromosomes in systems where such transitions have been documented. The European tadpole shrimp, Triops cancriformis, has undergone a transition from dioecy to androdioecy (a sexual system where hermaphrodites and males coexist), offering an excellent opportunity to test the impact of this transition on the evolution of sex chromosomes. To identify sex-linked markers, to understand mechanisms of sex determination and to investigate differences between sexual systems, we carried out a genome-wide association study using restriction site-associated DNA sequencing (RAD-seq) of 47 males, females and hermaphrodites from one dioecious and one androdioecious population. We analysed 22.9 Gb of paired-end sequences and identified and scored >3000 high coverage novel genomic RAD markers. Presence-absence of markers, single-nucleotide polymorphism association and read depth identified 52 candidate sex-linked markers. We show that sex is genetically determined in T. cancriformis, with a ZW system conserved across dioecious and androdioecious populations and that hermaphrodites have likely evolved from females. We also show that the structure of the sex chromosomes differs strikingly, with a larger sex-linked region in the dioecious population compared with the androdioecious population.

Citing Articles

Using a Handful of Transcriptomes to Detect Sex-Linked Markers and Develop Molecular Sexing Assays in a Species with Homomorphic Sex Chromosomes.

Saunders P, Ferre-Ortega C, Hill P, Simakov O, Ezaz T, Burridge C Genome Biol Evol. 2024; 16(4).

PMID: 38526014 PMC: 11003529. DOI: 10.1093/gbe/evae060.


RADSex: A computational workflow to study sex determination using restriction site-associated DNA sequencing data.

Feron R, Pan Q, Wen M, Imarazene B, Jouanno E, Anderson J Mol Ecol Resour. 2021; 21(5):1715-1731.

PMID: 33590960 PMC: 8589568. DOI: 10.1111/1755-0998.13360.


Meiosis reveals the early steps in the evolution of a neo-XY sex chromosome pair in the African pygmy mouse Mus minutoides.

Gil-Fernandez A, Saunders P, Martin-Ruiz M, Ribagorda M, Lopez-Jimenez P, Jeffries D PLoS Genet. 2020; 16(11):e1008959.

PMID: 33180767 PMC: 7685469. DOI: 10.1371/journal.pgen.1008959.

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