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Hanrahan, B. J.

Publications and source records attributed to Hanrahan, B. J..

5 recordsLinked to original sources

DNA methylation regulates a key sex differentiation gene in Pogona vitticeps, a dragon lizard with sex reversal

During embryonic development bipotential gonads differentiate into either testes or ovaries under the direction of mutually exclusive gene networks. DNA methylation has been shown to regulate gene expression and to play a role in many developmental processes. This includes sex differentiation in which DNA methylation is linked to control of key sex genes. Whether DNA methylation regulates sexual differentiation in species where environmental influences such as temperature are involved is less clear. We conducted a genome-wide study in embryonic gonads of the central bearded dragon (Pogona vitticeps), a lizard with temperature induced sex reversal, and compared DNA methylation patterns to gene expression profiles at a stage of early sex differentiation. Overall, sex reversed ZZf females were found to have lower global methylation than both canonical sexes, ZZm males and ZWf females. We found that the expression of a key gene in sex differentiation, Amh, is regulated via DNA methylation. Amh is a driver of testis differentiation and is repressed in genetically determined females, as well as in temperature sex-reversed females, by hypermethylation around its transcription start site. Although the trigger of ovary determination is different in both groups of females, one by genetic complement and one by a temperature signal, downstream regulation of gene expression converges and seems to follow similar mechanisms.

genomics↗

Characterising differential gene expression and alternative splicing in a sex reversing skink, Bassiana duperreyi

In some reptiles, genetic and environmental sex determination interact whereby extreme incubation temperatures override genetic sex determination (GSD) to produce sex-reversed individuals. In one lizard with temperature-influenced GSD, the central bearded dragon, intron retention in the histone-modifier genes Kdm6b and Jarid2 has been implicated as a candidate signal linking temperature to sex. Equivalent intron retention is also present in two species with temperature-dependent sex determination, the red-eared slider turtle and the American alligator. The eastern three-lined skink, Bassiana duperreyi, represents another lizard with temperature induced sex reversal. It has an XY sex determination system in which low temperature incubation causes sex reversal of XX embryos to produce phenotypic males. In this study, we performed splice-aware analysis of RNA sequencing from hatchling brains of the three-lined skink. We investigated differences in alternative splicing and gene expression between the three sex conditions: XY males (XYm), XX females (XXf), and sex-reversed XX males (XXm). Sex reversal specific intron retention was observed in the gene, Ttll7, which only occurred in XXm and not in XYm or XXf. Intron retention in Ttll7 could alter the function of the encoded protein, a tubulin polyglutamylase, but its effect on sex reversal here is unknown. In addition, intron retention in the histone-modifier genes Jarid2 and Kdm6b occurred in all conditions. The presence of Kdm6b and Jarid2 intron retention in all sex conditions suggests that the pattern of intron retention in sex reversal in the eastern three-lined skink is distinct compared to the bearded dragon. We conclude that a different molecular pathway for sex reversal is induced in the three-lined skink, the details of which remain elusive.

genomics↗

A genome assembly and annotation for the Australian alpine skink Bassiana duperreyi using long-read technologies

The eastern three-lined skink (Bassiana duperreyi) inhabits the Australian high country in the southwest of the continent including Tasmania. It is an oviparous species that is distinctive because it undergoes sex reversal (from XX genotypic females to phenotypic males) at low incubation temperatures. We present a chromosome-scale genome assembly of a Bassiana duperreyi XY male individual, constructed using a combination of PacBio HiFi and ONT long reads scaffolded using Illumina HiC data. The genome assembly length is 1.57 Gb with a scaffold N50 of 222 Mbp, N90 of 26 Mbp, 200 gaps and 43.10% GC content. Most (95%) of the assembly is scaffolded into 6 macrochromosomes, 8 microchromosomes and the X chromosome, corresponding to the karyotype. Fragmented Y chromosome scaffolds (n=11 > 1 Mbp) were identified using Y-specific contigs generated by genome subtraction. We identified two novel alpha-satellite repeats of 187 bp and 199 bp in the putative centromeres that did not form higher order repeats. The genome assembly exceeds the standard recommended by the Earth Biogenome Project; 0.02% false expansions, 99.63% kmer completeness, 94.66% complete single copy BUSCO genes and an average 98.42% of transcriptome data mappable to the genome assembly. The mitochondrial genome (17,506 bp) and the model rDNA repeat unit (15,154 bp) were assembled. The B. duperreyi genome assembly has one of the highest completeness levels for a skink and will provide a resource for research focused on sex determination and thermolabile sex reversal, as an oviparous foundation species for studies of the evolution of viviparity, and for other comparative genomics studies of the Scincidae. Species TaxonomyEukaryota; Animalia; Chordata; Reptilia; Squamata; Scincidae; Lygosominae; Eugongylini; Bassiana (=Acritoscincus); Bassiana duperreyi (Gray, 1838) (NCBI: txid316450).

genomics↗

Both phenotypic and genotypic sex influence sex chromosome dosage compensation in a sex reversing lizard

BackgroundLizards have sex determination systems that can differ between even closely related species. These include XY and ZW systems, and thermolabile systems where genes and temperature interact to determine sex. The eastern three-lined skink (Bassiana duperreyi) has a differentiated XY sex determination system, in which low temperature incubation during development can cause female to male sex reversal, producing XX males. This provides a unique opportunity to investigate how genotype and sexual phenotype affect dosage compensation. ResultsHere, we present a draft genome assembly of the Eastern three-lined skink generated from nanopore sequencing. We also generated transcriptomes from brain and heart tissue of normal adult males and females, along with brain tissue of sex-reversed XX males. We observed partial dosage compensation between XX females and XY males in both brain and heart, with median gene expression from the X in normal males being 0.7 times that of normal females. In brain of sex reversed XX males the median X chromosome output matched that of the normal XX female level, and not that of normal XY males. ConclusionsPartial dosage compensation in the Eastern three-lined skink is similar to several other species of lizard. However, here for the first time we describe dosage compensation in a lizard with natural sex reversal, and show that in sex reversed individuals dosage compensation of the X chromosome follows genotypic sex and not phenotypic sex.

genomics↗

Incomplete transcriptional dosage compensation of vertebrate sex chromosomes is balanced by post-transcriptional compensation.

Heteromorphic sex chromosomes (XY or ZW) present problems of gene dosage imbalance between the sexes, and with the autosomes. Mammalian X chromosome inactivation was long thought to imply a critical need for dosage compensation in vertebrates. However, the universal importance of sex chromosome dosage compensation was questioned by mRNA abundance measurements that demonstrated sex chromosome transcripts are neither balanced between the sexes or with autosomes in monotreme mammals or birds. Here, we demonstrate unbalanced mRNA levels of X genes in platypus males and females that correlate with differential loading of histone modifications, and confirm that transcripts of Z genes are unbalanced between males and females also in chicken. However, we found that in both species, median male to female protein abundance ratios were 1:1, implying an additional level of post-transcriptional control. We conclude that parity of sex chromosome output is achieved in birds, as well as all mammal groups, by a combination of transcriptional and post-transcriptional control, consistent with an essential role for sex chromosome dosage compensation in vertebrates.

evolutionary biology↗