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Tzetlin, A. B.

Publications and source records attributed to Tzetlin, A. B..

2 recordsLinked to original sources

Rapid divergence of male and female mitochondrial genomes in a basal protobranch bivalve Yoldia hyperborea

Doubly uniparental inheritance (DUI) of mitochondrial DNA (mtDNA) is a mode of mtDNA transmission whereby the male mitogenome is inherited predominately by males and the female mitogenome is inherited by females. DUI is unique to bivalve mollusks and has been identified in all major bivalve clades, including Protobranchia, the most basal bivalve subclade. Meanwhile, the mechanisms underlying the emergence and evolution of DUI remain poorly understood. Here, we focus on the early stages of divergence of male and female mitochondrial genomes by sequencing them in a basal Protobranchia species Yoldia hyperborea where they are characterized by low level of divergence, suggesting a recent origin of this system. Despite the relatively high relatedness of female and male genomes, we find that they have undergone rapid divergence both on the sequence and the structural level, including an origin of a novel gene, the ORFan, in the male genome. This novel gene is functional, as evidenced by the fact that it is transcribed and is subject to purifying selection. We show that this gene is a result of duplication and rapid evolution of another mitochondrial gene, NAD2. Additionally, the female mitogenome carries a duplicated cassette containing the cytochrome b gene, resulting in two different transcripts in female gonads both of which are subject to purifying selection, although their transcription levels differ by two orders of magnitude. These results showcase the rapid evolution of mitochondrial genes following their duplication, which occurred near the time of divergence of M- and F- mitochondrial genomes within a doubly uniparental inheritance system.

evolutionary biology↗

ORFanes in mitochondrial genomes of marine polychaete Polydora

Most characterised metazoan mitochondrial genomes are compact and encode a small set of proteins that are essential for oxidative phosphorylation. However, in rare cases, invertebrate taxa have additional open reading frames (ORFs) in their mtDNA sequences. Here, we sequenced and analysed the mitochondrial genome of a polychaete worm, Polydora cf. ciliata, part of whose life cycle takes place in low-oxygen conditions. In the mitogenome, we found three "ORFane" regions (1063, 427, and 519 bp) that have no resemblance to any standard metazoan mtDNA gene but lack stop codons in one of the reading frames. Similar regions are found in the mitochondrial genomes of three other Polydora species and Bocardiella hamata. All five species share the same gene order in their mitogenomes, which differ from that of other known spionidae mitogenomes. By analysing the ORFane sequences, we found that they are under negative selection pressure, contain conservative regions, and harbour predicted transmembrane domains.The codon adaptation indices (CAIs) of the ORFan genes were in the same range of values as the CAI of conventional protein-coding genes in corresponding mitochondrial genomes. Together, this suggests that ORFanes encode functional proteins. We speculate that the ORFanes originated from the conventional mitochondrial protein-coding genes which were duplicated when the Polydora/Bocardiella species complex separated from the rest of the Spionidae. Significance statementMetazoan mitochondrial genomes usually contain a conservative set of genes and features. However, mitogenomes of some species contain ORFanes - putative protein-coding genes without clear homology with other known sequences. In this study, we analysed three ORFanes in mitochondria of species of the genera Polydora and Bocardiella, which were absent in all other representatives of Spionidae. To the best of our knowledge, ORFanes havent been described in Annelida before. Sequence analysis of the ORFanes suggests they contain conservative regions and are likely translated into functional proteins. Our study features an uncommon case where new protein-coding genes emerged in the mitochondrial genomes of metazoa.

evolutionary biology↗