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van der Ploeg, R.

Publications and source records attributed to van der Ploeg, R..

2 recordsLinked to original sources

Monotremes provide novel insights into evolution of the DMRT gene family in vertebrates

Doublesex and mab-3 related (DMRT) genes encode a family of transcription factors central to sexual development across metazoa. DMRT genes are characterised by a highly conserved DNA binding domain (DM) while flanking regions may vary between species. Gene duplication and loss has shaped the diversity of the DMRT genes with several unresolved questions about their evolution. The most well characterised and conserved DMRT gene, DMRT1, functions as a sexual regulator universally in metazoans. In chicken, DMRT1 is located on the Z chromosome and acts as a dosage dependent primary sex determination gene. In therian mammals DMRT1 is autosomal, however, two copies are required for male development. Interestingly in the basal lineage of egg-laying mammals (monotremes), DMRT1 is localised on the X specific part of one of the X chromosomes. This provided the first evidence of a sex chromosome system with homology to the avian Z chromosome and raises questions about the function and evolution of DMRT1 in egg-laying mammals. To gain insight into the evolution of mammalian DMRT genes we performed sequence and expression analysis of monotreme DMRT genes and comparative analysis with other vertebrates. In monotremes, we identified DMRT genes 1-7, and show that DMRT8 is absent, suggesting that DMRT8 evolved in therian mammals after the divergence of monotremes. Sequence and expression analysis revealed multiple monotreme specific DMRT1 isoforms with additional protein-coding exons. The independent evolution of monotreme specific changes in DMRT1 may be the first indication of functional or regulatory differences in monotreme DMRT1. Article SummaryGenes in the Doublesex and mab-3 related (DMRT) family play important roles in sexual development across animals, but a comprehensive analysis of these transcription factors is lacking in the most basal mammalian lineage of monotremes. This comparative analysis of DMRT genes in monotremes and other vertebrates shows the conservation of DMRT genes 1- 7 but found no evidence of DMRT8 in monotremes or marsupial species, suggesting that this gene evolved in eutherians after the divergence of marsupials. The discovery of several monotreme specific isoforms and novel exons of the X linked DMRT1 reveals unique evolutionary changes in monotreme DMRT1.

genetics↗

Pseudogenisation of NK3 Homeobox 2 (Nkx3.2) in Monotremes Provides Insight into Unique Gastric Anatomy and Physiology

Development of the vertebrate antral stomach and pyloric sphincter (antropyloric region) - involved in enzymatic breakdown and thoroughfare of food - is underpinned by a highly conserved developmental pathway involving the hedgehog, bone morphogenetic protein (BMP) and Wingless/Int-1 (Wnt) protein families. Monotremes are a unique lineage where acid-based digestion has been lost, and this correlates with a lack of genes for gastric acid and enzymes in the genomes of the platypus (Ornithorhynchus anatinus) and short-beaked echidna (Tachyglossus aculeatus). Furthermore, these species feature unique gastric phenotypes, both with truncated and aglandular antral stomachs and the platypus with no pylorus. Here, we explore the genetic underpinning of monotreme gastric phenotypes, investigating genes important in antropyloric development using the newest monotreme genome sequences (mOrnAna1.pri.v4 and mTacAcu1) together with RNA-seq data. We found that the pathway is generally conserved but, NK3 homeobox 2 (Nkx3.2) was pseudogenised in both platypus and echidna. We speculate that pyloric-like restriction in the echidna may correlate with independent evolution of Grem1 and Bmp4 sequences, and that the convergent loss of gastric acid and stomach size genotypes and phenotypes in teleost and monotreme lineages may be a result of eco-evolutionary dynamics. These findings reflect the effects of gene loss on phenotypic evolution and further elucidate the genetic control of monotreme stomach anatomy and physiology.

evolutionary biology↗