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Tulle, W. D.

Publications and source records attributed to Tulle, W. D..

2 recordsLinked to original sources

Extensive mitogenome divergence across the Rafflesiaceae in size and impact of horizontal gene transfer

Horizontal gene transfer (HGT) drives organellar evolution, particularly in parasitic plants where host connections facilitate extensive DNA exchange. However, how these processes intersect with cellular machinery to reshape mitogenomic architecture remains poorly understood. Here, we investigate the mechanisms governing structural plasticity and asymmetric host-DNA integration in the extreme holoparasitic family Rafflesiaceae. By performing a comprehensive comparative analysis across all three extant genera (Sapria, Rhizanthes, and Rafflesia) and their Tetrastigma host lineage, we discovered extraordinary mitogenome size divergence, ranging from the expanded 824-kb genome of Sapria (40 circular chromosomes) to the streamlined 282-kb genome of Rhizanthes (35 circular chromosomes). Strikingly, these closely related genera display a total lack of chromosomal synteny, which we link to the ancestral loss of key recombination surveillance genes (RECX, ODB1). Furthermore, while all three genera strictly conserve an identical core of 30 protein-coding genes, host-derived HGT is highly asymmetric, ranging from minimal in Rhizanthes to 60% in Sapria. In Sapria, foreign tracts are sequestered into 15 predominantly non-coding circular chromosomes, a structural arrangement that aligns with the circle-mediated HGT model validated in other holoparasites. Collectively, these parallel patterns across phylogenetically distant lineages demonstrate that sorting and maintaining foreign DNA in autonomous circular blocks is a convergent architectural outcome of massive host-to-parasite genetic transfers. SIGNIFICANCE STATEMENTHorizontal gene transfer is widespread in the nuclear genome of the parasitic plant family Rafflesiaceae, but its contribution to mitochondrial genome evolution has been assessed through the analyses of a limited number of genes. By comparing complete mitochondrial genomes of the parasites and their hosts, we found that closely related species evolved dramatically different genome architectures through distinct mechanisms: one lineage accumulated large amounts of host-derived DNA, whereas another expanded through the proliferation of repetitive sequences with limited contribution from foreign DNA. These findings show that different evolutionary processes can generate profoundly divergent mitochondrial genomes even among closely related parasitic plants.

plant biology↗

A structural solution to functional HGT: Gene chimerism bypasses mitochondrial expression barriers in parasitic plants

Horizontal Gene Transfer (HGT) in plant mitochondria is frequent, yet acquired genes are rarely functional due to expression barriers. The holoparasitic plant Lophophytum mirabile (Balanophoraceae) is an exceptional case, having functionally replaced numerous native mitochondrial genes with host-derived xenologs. This system provides a unique opportunity to investigate the mechanisms of functional HGT assimilation. Here, we assembled mitochondrial genomes of the sister species L. pyramidale and their mimosoid hosts and analyzed expression data from both holoparasites. We show that this extensive functional integration occurred without the co-transfer of nuclear regulatory factors; Lophophytum relies entirely on its pre-existing, native machinery. Our results demonstrate that the primary mechanism enabling Lophophytum to overcome the transcription barrier is structural: most functional xenologs are chimeric and retain native 5' regions that likely place foreign coding sequences under the control of a recognizable native promoter. This structural solution is complemented by post-transcriptional flexibility, as the RNA editing machinery efficiently processes novel host-specific sites. However, functional replacement appears biased towards genes with inherently low editing requirements and no introns, highlighting a strong selective filter. Taken together, our results show that functional integration is driven by a combination of structural integration and the flexibility of the native regulatory system.

genomics↗