One Thousand Plant Transcriptomes and The phylogenomics of Green Plants
Affiliations
Green plants (Viridiplantae) include around 450,000-500,000 species of great diversity and have important roles in terrestrial and aquatic ecosystems. Here, as part of the One Thousand Plant Transcriptomes Initiative, we sequenced the vegetative transcriptomes of 1,124 species that span the diversity of plants in a broad sense (Archaeplastida), including green plants (Viridiplantae), glaucophytes (Glaucophyta) and red algae (Rhodophyta). Our analysis provides a robust phylogenomic framework for examining the evolution of green plants. Most inferred species relationships are well supported across multiple species tree and supermatrix analyses, but discordance among plastid and nuclear gene trees at a few important nodes highlights the complexity of plant genome evolution, including polyploidy, periods of rapid speciation, and extinction. Incomplete sorting of ancestral variation, polyploidization and massive expansions of gene families punctuate the evolutionary history of green plants. Notably, we find that large expansions of gene families preceded the origins of green plants, land plants and vascular plants, whereas whole-genome duplications are inferred to have occurred repeatedly throughout the evolution of flowering plants and ferns. The increasing availability of high-quality plant genome sequences and advances in functional genomics are enabling research on genome evolution across the green tree of life.
Shi T, He J Front Plant Sci. 2025; 16:1511582.
PMID: 40065784 PMC: 11891173. DOI: 10.3389/fpls.2025.1511582.
Ma X, Zhang C, Yang L, Hedges S, Zhong B Nat Commun. 2025; 16(1):2265.
PMID: 40055323 PMC: 11889176. DOI: 10.1038/s41467-025-57687-9.
Modeling compositional heterogeneity resolves deep phylogeny of flowering plants.
Wang Y, Li Y, Wang S, Tihelka E, Engel M, Cai C Plant Divers. 2025; 47(1):13-20.
PMID: 40041556 PMC: 11873573. DOI: 10.1016/j.pld.2024.07.007.
Genome assembly of Stewartia sinensis reveals origin and evolution of orphan genes in Theaceae.
Cheng L, Han Q, Hao Y, Qiao Z, Li M, Liu D Commun Biol. 2025; 8(1):354.
PMID: 40032980 PMC: 11876429. DOI: 10.1038/s42003-025-07525-x.
Phenolic metabolism in Sarcandra glabra is mediated by distinct BAHD hydroxycinnamoyltransferases.
Bomeke P, Petersen M Plant J. 2025; 121(5):e70035.
PMID: 40029908 PMC: 11875395. DOI: 10.1111/tpj.70035.