Phylogenomics reveals the evolutionary origins of lichenization in chlorophyte algae
570
convergent evolution. Trebouxia sp OTU1
Lichens
Gene Transfer, Horizontal
Glycoside Hydrolases
[SDV]Life Sciences [q-bio]
Science
Q
0206 medical engineering
Genomics
02 engineering and technology
15. Life on land
Biological Evolution
Article
[SDV] Life Sciences [q-bio]
Evolution, Molecular
Chlorophyta
environment/Symbiosis
[SDV.EE.IEO]Life Sciences [q-bio]/Ecology
Symbiosis
Transcriptome
Phylogeny
[SDV.EE.IEO]Life Sciences [q-bio]/Ecology, environment/Symbiosis
DOI:
10.1038/s41467-024-48787-z
Publication Date:
2024-05-24T19:01:35Z
AUTHORS (11)
ABSTRACT
AbstractMutualistic symbioses have contributed to major transitions in the evolution of life. Here, we investigate the evolutionary history and the molecular innovations at the origin of lichens, which are a symbiosis established between fungi and green algae or cyanobacteria. We de novo sequence the genomes or transcriptomes of 12 lichen algal symbiont (LAS) and closely related non-symbiotic algae (NSA) to improve the genomic coverage of Chlorophyte algae. We then perform ancestral state reconstruction and comparative phylogenomics. We identify at least three independent gains of the ability to engage in the lichen symbiosis, one in Trebouxiophyceae and two in Ulvophyceae, confirming the convergent evolution of the lichen symbioses. A carbohydrate-active enzyme from the glycoside hydrolase 8 (GH8) family was identified as a top candidate for the molecular-mechanism underlying lichen symbiosis in Trebouxiophyceae. This GH8 was acquired in lichenizing Trebouxiophyceae by horizontal gene transfer, concomitantly with the ability to associate with lichens fungal symbionts (LFS) and is able to degrade polysaccharides found in the cell wall of LFS. These findings indicate that a combination of gene family expansion and horizontal gene transfer provided the basis for lichenization to evolve in chlorophyte algae.
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