ArticleBMC genomics2012
A complete mitochondrial genome sequence of Ogura-type male-sterile cytoplasm and its comparative analysis with that of normal cytoplasm in radish (Raphanus sativus L.).
Article in BMC genomics, 2012. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 54 papers.
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Who cites it
54 citing papers in PubMed, 128 citations in OpenAlex.
- 3-Hydroxypropanoic acid contributing to pollen abortion in ogura cytoplasmic male sterility of Brassica napus.BMC plant biology · 2026Article
- Mitochondrial genome of Iodes seguinii reveals repeat-mediated recombination and phylogenetic insights in Icacinaceae.BMC genomics · 2026Article
- Advancements in hybrid rice production: improvements in male sterility and synthetic apomixis for sustainable agriculture.Plant biotechnology journal · 2025Review
- Past and future of cytoplasmic male sterility and heterosis breeding in crop plants.Plant cell reports · 2025Review
- Assembly and comparative analysis of the complete mitochondrial genome of Fritillaria ussuriensis Maxim. (Liliales: Liliaceae), an endangered medicinal plant.BMC genomics · 2024Article
- Cytological and Molecular Characterization of a New Ogura Cytoplasmic Male Sterility Restorer ofPlants (Basel, Switzerland) · 2024Article
- Assembly and comparative analysis of the complete mitochondrial genome of Brassica rapa var. Purpuraria.BMC genomics · 2024Article
- Editing of ORF138 restores fertility of Ogura cytoplasmic male sterile broccoli via mitoTALENs.Plant biotechnology journal · 2024Article
- The first two whole mitochondrial genomes for the genus Dactylis species: assembly and comparative genomics analysis.BMC genomics · 2024Article
- Comparative mitochondrial genome analysis reveals a candidate ORF for cytoplasmic male sterility in tropical onion.3 Biotech · 2024Article
- Features and evolutionary adaptations of the mitochondrial genome ofFrontiers in plant science · 2024Article
- A breeding method for Ogura CMS restorer line independent of restorer source inFrontiers in genetics · 2024Article
- Genetic Mechanisms for Hybrid Breeding in Vegetable Crops.Plants (Basel, Switzerland) · 2023Review
- Comparative Transcriptome Analysis Reveals a Potential Regulatory Network for Ogura Cytoplasmic Male Sterility in Cabbage (International journal of molecular sciences · 2023Article
- Comparative analyses of three complete Primula mitogenomes with insights into mitogenome size variation in Ericales.BMC genomics · 2022Article
- Mechanism and Utilization of Ogura Cytoplasmic Male Sterility in Cruciferae Crops.International journal of molecular sciences · 2022Review
- Complete mitochondrial genome sequencing and identification of candidate genes responsible for C5-type cytoplasmic male sterility in cabbage (Frontiers in plant science · 2022Article
- Organelle Comparative Genome Analysis Reveals Novel Alloplasmic Male Sterility withInternational journal of molecular sciences · 2021Article
- Article
- Analysis of mitochondrial recombination in the male sterile Brassica juncea cybrid Og1 and identification of the molecular basis of fertility reversion.Plant molecular biology · 2021Article
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Authors and funding
5 authors at 1 institution in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
backgroundPlant mitochondrial genome has unique features such as large size, frequent recombination and incorporation of foreign DNA. Cytoplasmic male sterility (CMS) is caused by rearrangement of the mitochondrial genome, and a novel chimeric open reading frame (ORF) created by shuffling of endogenous sequences is often responsible for CMS. The Ogura-type male-sterile cytoplasm is one of the most extensively studied cytoplasms in Brassicaceae. Although the gene orf138 has been isolated as a determinant of Ogura-type CMS, no homologous sequence to orf138 has been found in public databases. Therefore, how orf138 sequence was created is a mystery. In this study, we determined the complete nucleotide sequence of two radish mitochondrial genomes, namely, Ogura- and normal-type genomes, and analyzed them to reveal the origin of the gene orf138.
resultsOgura- and normal-type mitochondrial genomes were assembled to 258,426-bp and 244,036-bp circular sequences, respectively. Normal-type mitochondrial genome contained 33 protein-coding and three rRNA genes, which are well conserved with the reported mitochondrial genome of rapeseed. Ogura-type genomes contained same genes and additional atp9. As for tRNA, normal-type contained 17 tRNAs, while Ogura-type contained 17 tRNAs and one additional trnfM. The gene orf138 was specific to Ogura-type mitochondrial genome, and no sequence homologous to it was found in normal-type genome. Comparative analysis of the two genomes revealed that radish mitochondrial genome consists of 11 syntenic regions (length >3 kb, similarity >99.9%). It was shown that short repeats and overlapped repeats present in the edge of syntenic regions were involved in recombination events during evolution to interconvert two types of mitochondrial genome. Ogura-type mitochondrial genome has four unique regions (2,803 bp, 1,601 bp, 451 bp and 15,255 bp in size) that are non-syntenic to normal-type genome, and the gene orf138 was found to be located at the edge of the largest unique region. Blast analysis performed to assign the unique regions showed that about 80% of the region was covered by short homologous sequences to the mitochondrial sequences of normal-type radish or other reported Brassicaceae species, although no homology was found for the remaining 20% of sequences.
conclusionsOgura-type mitochondrial genome was highly rearranged compared with the normal-type genome by recombination through one large repeat and multiple short repeats. The rearrangement has produced four unique regions in Ogura-type mitochondrial genome, and most of the unique regions are composed of known Brassicaceae mitochondrial sequences. This suggests that the regions unique to the Ogura-type genome were generated by integration and shuffling of pre-existing mitochondrial sequences during the evolution of Brassicaceae, and novel genes such as orf138 could have been created by the shuffling process of mitochondrial genome.
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