ArticlePlant physiology2023
Pangenome-based trajectories of intracellular gene transfers in Poaceae unveil high cumulation in Triticeae.
Article in Plant physiology, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 12 papers.
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Who cites it
12 citing papers in PubMed.
- Characterization of mitochondrial genomes from three medicinal species of rutaceae and comparative analysis within the family: insights into evolution.BMC genomics · 2026Article
- Organelle Genomes ofBiology · 2025Article
- Comparative analysis of the mitogenomes of multiple species of Fagaceae, with special focus on Quercus gilva.BMC plant biology · 2025Article
- Article
- Continuous infiltration and evolutionary trajectory of nuclear organelle DNA inGenome research · 2025Article
- Comparative Genomics ofBiomolecules · 2025Article
- The developments and prospects of plant super-pangenomes: Demands, approaches, and applications.Plant communications · 2025Review
- Mitochondrial Genome Insights into Evolution and Gene Regulation inInternational journal of molecular sciences · 2025Article
- Evolutionary dynamics of mitochondrial genomes and intracellular transfers among diploid and allopolyploid cotton species.BMC biology · 2025Article
- Factors contributing to organelle genomes size variation and the intracellular DNA transfer in Polygonaceae.BMC genomics · 2024Article
- The effects of Pseudomonas strains isolated from Achnatherum inebrians on plant growth: A genomic perspective.Environmental microbiology reports · 2024Article
- Review
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Authors and funding
16 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Intracellular gene transfers (IGTs) between the nucleus and organelles, including plastids and mitochondria, constantly reshape the nuclear genome during evolution. Despite the substantial contribution of IGTs to genome variation, the dynamic trajectories of IGTs at the pangenomic level remain elusive. Here, we developed an approach, IGTminer, that maps the evolutionary trajectories of IGTs using collinearity and gene reannotation across multiple genome assemblies. We applied IGTminer to create a nuclear organellar gene (NOG) map across 67 genomes covering 15 Poaceae species, including important crops. The resulting NOGs were verified by experiments and sequencing data sets. Our analysis revealed that most NOGs were recently transferred and lineage specific and that Triticeae species tended to have more NOGs than other Poaceae species. Wheat (Triticum aestivum) had a higher retention rate of NOGs than maize (Zea mays) and rice (Oryza sativa), and the retained NOGs were likely involved in photosynthesis and translation pathways. Large numbers of NOG clusters were aggregated in hexaploid wheat during 2 rounds of polyploidization, contributing to the genetic diversity among modern wheat accessions. We implemented an interactive web server to facilitate the exploration of NOGs in Poaceae. In summary, this study provides resources and insights into the roles of IGTs in shaping interspecies and intraspecies genome variation and driving plant genome evolution.
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