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Barke, B. H.

Publications and source records attributed to Barke, B. H..

2 recordsLinked to original sources

Efficient hybrid strategies for assembling the plastome, mitochondriome, and large nuclear genome of diploid Ranunculus cassubicifolius (Ranunculaceae)

Currently, it is still a challenge - in terms of laboratory effort and cost, as well as assembly quality - to unravel the sequence of large and complex genomes from non-model plants. This often hampers the study of evolutionarily intricate species groups. The species-rich genus Ranunculus (Ranunculaceae) is an angiosperm model system for the study of polyploidy, apomixis, reticulate evolution, and biogeography. However, neither mitochondrial, nor high-quality nuclear genome sequences are available. This limits phylogenomic, functional, and taxonomic analyses thus far. Here, we tested Illumina short-read, Oxford Nanopore Technology (ONT) or PacBio/HiFi long-read, and hybrid-read assembly strategies. We used the diploid progenitor species R. cassubicifolius (R. auricomus complex), and selected the best assemblies in terms of completeness, contiguity, and quality scores. We first assembled the plastome (156 kbp, 85 genes) and mitogenome (1.18 Mbp, 40 genes) sequences using Illumina and Illumina-PacBio-hybrid strategies, respectively. We also present an updated plastome and the first mitogenome phylogeny of Ranunculaceae, including studies of gene loss (e.g., infA, ycf15, or rps) with evolutionary implications. For the nuclear genome, we favored a PacBio-based assembly three-times polished with filtered reads and subsequently scaffolded into 8 pseudochromosomes by chromatin conformation data (Hi-C) as the representative sequence. We obtained a haploid genome sequence with 2.69 Gbp, 94.5% complete BUSCO embryophyta_odb10 genes found, and 31,322 annotated genes. The genomic information presented here will improve phylogenomic analyses in this species complex, and will enable advanced functional, evolutionary, and biogeographic analyses for the genus and beyond Ranunculaceae in the future. Significance StatementThe genus Ranunculus is a model system in flowering plants for polyploidy, apomixis, evolution, and biogeography research. We present the first nuclear and mitochondrial genome sequence, and the plastid evolution of Ranunculaceae. Using Illumina, ONT, and PacBio data, we developed an efficient assembly strategy that can be applied to other non-model plants. Results presented here are useful for improving population genomic and phylogenomic analyses, and enable better functional analyses at species, genus and family level.

genomics↗

Unraveling phylogenetic relationships, reticulate evolution, and genome composition of polyploid plant complexes by RAD-Seq and Hyb-Seq

Complex genome evolution of young polyploid complexes is poorly understood. Besides challenges caused by hybridization, polyploidization, and incomplete lineage sorting, bioinformatic analyses are often exacerbated by missing information on progenitors, ploidy, and reproduction modes. By using a comprehensive, self-developed bioinformatic pipeline integrating phylogenetic, structure, network, and SNP-origin analyses, we for the first time unraveled polyploid phylogenetic relationships and genome evolution within the large Eurasian Ranunculus auricomus species complex comprising more than 840 taxa. Our results rely on 97,312 genomic RAD-Seq loci, target enrichment of 576 nuclear genes (48 phased), and 71 plastid regions (Hyb-Seq; OMICS-data) derived from the 75 most widespread polyploid apomictic taxa and four di- and one tetraploid potential sexual progenitor species. Phylogenetic tree and structure analyses consistently showed 3-5 supported polyploid groups, each containing sexual progenitor species. In total, analyses revealed four diploid sexual progenitors and a one unknown, probably extinct progenitor, contributing to the genome composition of R. auricomus polyploids. Phylogenetic network, structure, and SNP-origin analyses based on RAD-Seq loci and phased nuclear genes completed by plastid data demonstrated predominantly allopolyploid origins, each involving 2-3 different diploid sexual subgenomes. Allotetraploid genomes were characterized by subgenome dominance and large proportions of interspecific, non-hybrid SNPs, indicating an enormous degree of post-origin evolution (i.e., Mendelian segregation of the diploid hybrid generations, back-crossings, and gene flow due to facultative sexuality of apomicts), but only low proportions of lineage-specific SNPs. The R. auricomus model system is the first large European polyploid species complex studied with reduced representation OMICS data. Our bioinformatic pipeline underlines the importance of combining different approaches and datasets to successfully unveil how reticulate evolution and post-origin processes shape the diversity of polyploid plant complexes.

evolutionary biology↗