ArticleThe Plant journal : for cell and molecular biology2022
Evolution of mitochondrial RNA editing in extant gymnosperms.
Article in The Plant journal : for cell and molecular biology, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 17 papers.
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17 citing papers in PubMed, 28 citations in OpenAlex.
- Comparative regulomics of wood formation across dicot and conifer trees.Nature communications · 2026Article
- Structure and multipartite genome architecture of the mitochondrial genome in the endangered medicinal plantFrontiers in systems biology · 2026Article
- Characterization and evolutionary insights into complete mitochondrial genome ofFrontiers in plant science · 2026Article
- Assembly and comparative analysis of chromosomal mitochondrial genomes in multiple Medicago species.BMC plant biology · 2025Article
- Article
- High Conservation of Translation-Enabling RNA Editing Sites in Hyper-editing Ferns Implies They Are Not Selectively Neutral.Molecular biology and evolution · 2025Article
- Characterization and comparative analysis of the complete mitochondrial genome of Phlomoides rotata, a traditional Tibetan medicinal plant.BMC genomics · 2025Article
- Phylogenomic Inference Suggests Differential Deep Time Phylogenetic Signals from Nuclear and Organellar Genomes in Gymnosperms.Plants (Basel, Switzerland) · 2025Article
- Repeat-mediated recombination results in Complex DNA structure of the mitochondrial genome of Trachelospermum jasminoides.BMC plant biology · 2024Article
- Seeing the unseen in characterizing RNA editome during rice endosperm development.Communications biology · 2024Article
- The first complete mitochondrial genome of Grossulariaceae: Molecular features, structure recombination, and genetic evolution.BMC genomics · 2024Article
- Integration of large and diverse angiosperm DNA fragments into Asian Gnetum mitogenomes.BMC biology · 2024Article
- Complete organelle genomes of Korean fir, Abies koreana and phylogenomics of the gymnosperm genus Abies using nuclear and cytoplasmic DNA sequence data.Scientific reports · 2024Article
- TheFrontiers in plant science · 2024Article
- Organellar-genome analyses from the lycophyte genusFrontiers in plant science · 2024Article
- Plant organellar RNA maturation.The Plant cell · 2023Review
- A Comprehensive Evolutionary Study of Chloroplast RNA Editing in Gymnosperms: A Novel Type of G-to-A RNA Editing Is Common in Gymnosperms.International journal of molecular sciences · 2022Article
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2 authors at 1 institution in 1 country.
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No grant is acknowledged in the PubMed record.
Abstract
To unveil the evolution of mitochondrial RNA editing in gymnosperms, we characterized mitochondrial genomes (mitogenomes), plastid genomes, RNA editing sites, and pentatricopeptide repeat (PPR) proteins from 10 key taxa representing four of the five extant gymnosperm clades. The assembled mitogenomes vary in gene content due to massive gene losses in Gnetum and Conifer II clades. Mitochondrial gene expression levels also vary according to protein function, with the most highly expressed genes involved in the respiratory complex. We identified 9132 mitochondrial C-to-U editing sites, as well as 2846 P-class and 8530 PLS-class PPR proteins. Regains of editing sites were demonstrated in Conifer II rps3 transcripts whose corresponding mitogenomic sequences lack introns due to retroprocessing. Our analyses reveal that non-synonymous editing is efficient and results in more codons encoding hydrophobic amino acids. In contrast, synonymous editing, although performed with variable efficiency, can increase the number of U-ending codons that are preferentially utilized in gymnosperm mitochondria. The inferred loss-to-gain ratio of mitochondrial editing sites in gymnosperms is 2.1:1, of which losses of non-synonymous editing are mainly due to genomic C-to-T substitutions. However, such substitutions only explain a small fraction of synonymous editing site losses, indicating distinct evolutionary mechanisms. We show that gymnosperms have experienced multiple lineage-specific duplications in PLS-class PPR proteins. These duplications likely contribute to accumulated RNA editing sites, as a mechanistic correlation between RNA editing and PLS-class PPR proteins is statistically supported.
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