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Evolution and Dosage Compensation of Nucleolar Organizing Regions (NORs) Mediated by Mobile Elements in Turtles with Female (ZZ/ZW) but Not with Male (XX/XY) Heterogamety

Overview
Journal J Evol Biol
Specialty Biology
Date 2022 Jul 25
PMID 35877473
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Abstract

Understanding the evolution and regulation of nucleolar organizing regions (NORs) is important to elucidate genome structure and function. This is because ribosomal gene (rDNA) copy number and activity mediate protein biosynthesis, stress response, ageing, disease, dosage compensation and genome stability. Here, we found contrasting dosage compensation of sex-linked NORs in turtles with male and female heterogamety. Most taxa examined exhibit homomorphic rRNA gene clusters in a single autosome pair (determined by 28S rDNA fluorescence in situ hybridization), whereas NORs are sex-linked in Apalone spinifera, Pelodiscus sinensis and Staurotypus triporcatus. Full-dosage compensation upregulates the male X-NOR (determined via silver staining-AgNOR) in Staurotypus (who lacks Y-NOR) compared with female X-AgNORs. In softshell Apalone and Pelodiscus, who share homologous ZZ/ZW micro-chromosomes, their enlarged W-NOR is partially active (due to 28S rDNA invasion by R2 retroelements), whereas their smaller Z-NOR is silent in females but active in both male-Zs (presumably because the W-NOR meets cellular demands and excessive NOR activity is costly). We hypothesize that R2 disruption favoured W enlargement to add intact 28S-units, perhaps facilitated by reduced recombination during sex chromosome evolution. The molecular basis of the potentially adaptive female Z-silencing is likely intricate and perhaps epigenetic, as non-ribosomal Z genes are active in Apalone females. Yet, Emydura maquarii exhibit identical heteromorphism in their autosomal NOR (R2 invaded 28S-units and the small-autosome NOR is silent), suggesting that the softshell turtle pattern can evolve independent of sex chromosome evolution. Our study illuminates the complex sex chromosome evolution and dosage compensation of non-model systems that challenges classic paradigms.

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References
1.
Schmid M, Steinlein C . Chromosome Banding in Amphibia. XXXII. The Genus Xenopus (Anura, Pipidae). Cytogenet Genome Res. 2015; 145(3-4):201-17. DOI: 10.1159/000433481. View

2.
Born G, Bertollo L . An XX/XY sex chromosome system in a fish species, Hoplias malabaricus, with a polymorphic NOR-bearing X chromosome. Chromosome Res. 2000; 8(2):111-8. DOI: 10.1023/a:1009238402051. View

3.
Hsu T, Spirito S, Pardue M . Distribution of 18+28S ribosomal genes in mammalian genomes. Chromosoma. 1975; 53(1):25-36. DOI: 10.1007/BF00329388. View

4.
Gornung E . Twenty years of physical mapping of major ribosomal RNA genes across the teleosts: A review of research. Cytogenet Genome Res. 2013; 141(2-3):90-102. DOI: 10.1159/000354832. View

5.
Kurata S, Koga K, Sakaguchi B . Nucleolar size in parallel with ribosomal RNA synthesis at diapause termination in the eggs of Bombyx mori. Chromosoma. 1978; 68(4):313-7. DOI: 10.1007/BF00327166. View