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Background: Unlike Transposable Elements (TEs) and gene/genome duplication, the role of the so-called nuclear plastid DNA sequences (NUPTs) in shaping the evolution of genome architecture and function remains poorly studied. We investigate here the functional and evolutionary fate of NUPTs in the orphan crop Moringa oleifera (moringa), featured by the highest fraction of plastid DNA found so far in any plant genome, focusing on (i) any potential biases in their distribution in relation to specific nuclear genomic features, (ii) their contribution to the emergence of new genes and gene regions, and (iii) their impact on the expression of target nuclear genes.
Results: In agreement with their potential mutagenic effect, NUPTs are underrepresented among structural genes, although their overall transcription levels and broadness were only lower when involved exonic regions; the occurrence of plastid DNA generally did not result in a broader expression, except among those affected in introns by older NUPTs. In contrast, we found a strong enrichment of NUPTs among specific superfamilies of retrotransposons and several classes of RNA genes, including those participating in the protein biosynthetic machinery (i.e., rRNA and tRNA genes) and a specific class of regulatory RNAs. A significant fraction of NUPT RNA genes was found to be functionally expressed, thus potentially contributing to the nuclear pool.
Conclusions: Our results complete our view of the molecular factors driving the evolution of nuclear genome architecture and function, and support plastid DNA in moringa as a major source of (i) genome complexity and (ii) the nuclear pool of RNA genes.
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http://dx.doi.org/10.1186/s12870-024-05158-6 | DOI Listing |
Mitochondrial DNA B Resour
September 2025
Department of Forestry and Nature Resources, National Chiayi University, Chiayi, Taiwan.
Hayata 1916 is a unique bamboo species endemic to Taiwan, typically found at elevations ranging from 500 to 1,500 meters. This study provides a detailed analysis of the complete chloroplast genome of for the first time. The genome spans 139,664 base pairs (bp) and consists of a large single-copy (LSC) region of 83,192 bp, a small single-copy (SSC) region of 12,869 bp, and two inverted repeat (IR) regions, each 21,798 bp in length.
View Article and Find Full Text PDFBackground And Aims: Olive (Olea europaea L. subsp. europaea) is one of the most widespread woody crops in the Mediterranean Basin (MB) existing in two forms, namely the wild (or oleaster) and the cultivated olive (varieties).
View Article and Find Full Text PDFMitochondrial DNA B Resour
September 2025
Jiangsu Key Laboratory for Conservation and Utilization of Plant Resources, Institute of Botany, Jiangsu Province and Chinese Academy of Sciences, Nanjing, China.
Here, we present the first complete chloroplast genome of (154,018 bp), which exhibits a typical quadripartite structure, including an LSC (83,966 bp), SSC (18,910 bp), and two IRs (25,571 bp each). A total of 133 genes were annotated, with 114 unique genes and 19 duplicated in the IRs. .
View Article and Find Full Text PDFProtist
August 2025
Department of Natural History Sciences, Graduate School of Science, Hokkaido University, Kita-10 Nishi-8, Kita-Ku, Sapporo 0600810, Japan.
Kryptoperidinium belongs to a group of dinophytes hosting a diatom as an endosymbiont and is currently considered to comprise a single, putatively bloom-forming and harmful species only. Molecular phylogenetics indicate the existence of a second distinct lineage and therefore species new to science, which we here formally describe as Kryptoperidinium secundum sp. nov.
View Article and Find Full Text PDFAnn Bot
September 2025
Department of Ecology, Environment and Plant Sciences, Stockholm University, SE-106 91 Stockholm, Sweden.
Background: Advances in DNA sequencing technology have led to a rapid increase in the number of species with organelle genomes and even complete nuclear genomes being sequenced. Thousands of plastid genomes from across all major clades of land plants are now available, and one of the surprising findings is the recurring event of complete or functional loss of genes involved in cyclic electron transport during photosynthesis - the ndh genes that encode subunits of the chloroplast NADH dehydrogenase-like (NDH) complex. Gene loss in non-photosynthetic, heterotrophic plants may be expected, but the increasing number of losses being discovered in autotrophic plants questions the role and potential dispensability of the ndh genes and the entire NDH complex.
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