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Mandak, B.

Publications and source records attributed to Mandak, B..

2 recordsLinked to original sources

Tracing Sticky Trails: The Historical Biogeography of Australia's Glandular Goose-foots (Dysphania, Chenopodioideae, Amaranthaceae)

AimThe overarching aim of this study is to reconstruct the spatiotemporal evolutionary history of Australian Dysphania, including testing the littoral connection hypothesis, assessing the role of reticulation, and identifying the major drivers of diversification within the lineage. LocationAustralia and New Zealand TaxonDysphania, Chenopodioideae, Amaranthaceae, Caryophyllales, Angiosperms MethodsUsing a DNA sequence dataset based on a target enrichment approach with custom baits designed for Chenopodioideae, we compared alternative biogeographic and ancestral habitat models to infer the spatiotemporal evolutionary history of Australian Dysphania. In addition, we applied several complementary analyses to assess concordance and conflict within our phylogenomic datasets, estimate ploidy levels, and compare ecological niches among closely related species. Results and Main conclusionsOur results reveal a close evolutionary relationship between Sub-Saharan African and Australian desert ephemerals and indicate that Australian Dysphania originated through an ancestral reticulation event. The last common ancestor reached northwestern Australia during the Miocene, occupied riverine desert habitats, and migrated eastward with their expansion, potentially undergoing ecological speciation. Four major Australian clades subsequently diversified across Miocene to Pleistocene landscapes, from riverine deserts to salt lake mosaics, with divergence likely driven by salinity gradients, flood regimes, and microhabitat partitioning rather than polyploidisation or geographic isolation.

plant biology↗

Centromeric variation is shared across ploidy barriers in Alnus glutinosa agg.

Polyploidy is often thought to cause immediate reproductive isolation due to sterility and inviability of inter-ploidy offspring. However, recent research demonstrated genome-wide introgression in natural populations of diploids and tetraploids. Yet, it still remains unknown whether introgression varies in strength along the genome and what are the forces underlying such variation. Here we analyzed whole-genome resequencing data from natural populations of the Alder tree, Alnus glutinosa agg., which includes a widespread diploid lineage found across large parts of Europe and two autotetraploid lineages with more limited ranges on the Balkan and Iberian Peninsulas. Our sampling involved mixed-ploidy populations, where diploids, triploids and tetraploids co-occur as well as ploidy pure populations. We identified genomic regions of increased admixture, which coincide with putative locations of centromeres. We hypothesize that this pattern of shared variation at pericentromeric regions involves centromere drive, which happens when centromeres increase the likelihood of being included in the oocyte during female meiosis and which has been studied in only a few plant species. While it was previously suggested that centromere drive could cause reproductive isolation and speciation, here we propose that driving centromeres could be able to lift reproductive barriers caused by ploidy differences.

evolutionary biology↗