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Kongsted, T. E.

Publications and source records attributed to Kongsted, T. E..

2 recordsLinked to original sources

Genome dynamics across the radiation of a mega-diverse genus

Understanding the drivers of species diversity and rapid radiations is a major goal in evolutionary biology. Begonia is one of the most species-rich angiosperm genera with 2,164 species currently identified. This genus exhibits considerable variation in chromosome number and a wide range of genome sizes, allowing us to associate genome dynamics with divergence and speciation at a range of temporal scales. We investigate all main radiations within the Begoniaceae family using five previously published Begonia genomes and seven new genome assemblies. We show that Begonia species show more complex, repetitive and dynamic genomes overall than their close relative, the monotypic Hillebrandia sandwicensis. We identify families of repetitive elements that have recently expanded in species from two different highly speciose Southeast Asian sections and two large Neotropical radiations. Detailed characterisation of genomes from species belonging to two parallel radiations, one in Southeast Asia (Begonia section Coelocentrum) and the other in the Neotropics (Begonia section Gireoudia), revealed recent expansion in LTR retrotransposons (LTR-RTs) and satellite DNA, in contrast to more species-poor closely related clades. We further investigate variation in repetitive elements within species, finding that accessions from a population of the widespread Begonia heracleifolia with unusually large genomes show a markedly higher satellite repeat and Ty3/Gypsy LTR-RT content associated with the expansion of a few abundant repeat lineages. We find that accessions derived from this population show lower seed viability in crosses with other conspecific populations, and thus identify a direct link between expansions of repetitive DNA and the process of genetic isolation. These results show how genome dynamics may promote speciation in one of the most diverse flowering plant genera.

genomics↗

Replicated repurposing of an ancestral transcriptional complex in land plants

Transcriptional complexes with a common composition regulate the production of flavonoid pigments, trichomes, root hairs and other epidermal traits in seed plants. These complexes are composed of transcription factors from the MYB and basic helix-loop-helix (bHLH) families along with a tryptophan-aspartate repeat (WDR) scaffold protein (MBW complexes). The MYB member has been found to be the most pathway-specific component of the complex and modifications to these MYB genes are overrepresented in studies investigating the genetic basis of changes in pigmentation phenotypes across flowering plants. Here we investigated the orthologues of the MBW complex in a divergent lineage to understand its origin and evolution. We found evidence that these transcriptional complexes also form in the liverwort Marchantia polymorpha, indicating, together with an analysis of published gene family phylogenies, that they are ancestral to land plants. The functions of each of the two orthologous MYB genes, MpMYB14 and MpMYB02, both depend on the single orthologous bHLH gene, MpbHLH12. We could not assess the functional role of the WDR genes in M. polymorpha, due to low mutant recovery suspected to be caused by pleiotropic effects on viability. We propose that the two transcriptional complexes with alternative MYB paralogues in M. polymorpha represent an ancestral function, regulation of the flavonoid pathway, and a derived function, maturation of liverwort-specific oil bodies. Our findings imply a replicated pattern by which new complexes have evolved in independent land plant lineages, through duplication of the evolutionarily labile MYB member and co-option of its interaction partners.

plant biology↗