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Takagawa, M.

Publications and source records attributed to Takagawa, M..

2 recordsLinked to original sources

Parasitism-mediated horizontal transfer of a functional cytochrome P450 gene entails transposon colonization in newly gained introns

Plants produce a wide variety of specialized metabolites that are typically present only in specific lineages. However, some specialized metabolites are found sporadically across distantly related plant species. While the latter cases have been explained as outcomes of convergent evolution, the molecular mechanism behind such metabolic evolution has remained largely elusive. Here, we report that parasitic dodders belonging to the genus Cuscuta accumulate sesamin, and that this accumulation may be attributed to the acquisition of enzymatically active homologs of Sesamum indicum CYP81Q1, which encodes piperitol/sesamin synthase (PSS). Phylogenetic analysis of CYP81Q homologs in Cuscuta and Grammica subgenera supports a trajectory in which ancestral Cuscuta species acquired CYP81Q from an ancestral host plant of Lamiales through horizontal gene transfer (HGT), and that the gene has been maintained during the speciation of Cuscuta. The evolution of the CYP81Q genes was accompanied by sequential intron gains, which likely involved the colonization of transposons. Experiments involving C. campestris and S. indicum suggested that expression of the host CYP81Q gene could be induced by parasitism, and physical connection to the host plant allowed the transfer of genetic elements to Cuscuta. These data suggest that parasitism-mediated HGT contributed to the transfer of a gene encoding a key enzyme in specialized lignan metabolism to Cuscuta, and that the acquired metabolic gene underwent structural modification while retaining its enzymatic function in dodders.

plant biology↗

Chromosome-scale Genome Assemblies of Two Allopolyploid Cuscuta Species Uncover Genomic Signatures of Parasitic Lifestyle and Polyploid Evolution

Dodders (Cuscuta spp.) is an obligated parasitic plant, which lost a large part of photosynthetic genes but gained host genes through parasitism-mediated horizontal gene transfer (HGT). Their migratory ecology across the world would contribute to complexity of the speciation via geographic isolation. Here we report the de novo genome assemblies of the two phylogenetically distinct dodders; C. chinensis (2n=4x=60) and C. campestris (2n=4x=60) that are classified into Clade B and Clade H of subgenus Grammica, respectively. Relatively low completeness of BUSCO genes ca.87% indicated progressive gene loss after evolution of parasitic lifestyle due to release from functional constraints as photosynthesis and organ development. Comparative genomics uncovered that both species are the genome size is completely different regardless of the same cytotypes and allopolyploid through the independent ancient hybridization between different parents. Various genomic rearrangements including 1) gene gain and loss events, 2) homoeologous recombination between two subgenomes and 3) the lineage-specific proliferation of transposable elements likely contribute to their genomic diversity and sexual isolation of the two lineages partly sharing their habitats. Our findings not only provide genomic basis to survey parental species for allopolyploidization but also help to understand unique speciation of parasitic dodders through these chromosomal natures.

genomics↗