Abstract
RNA transcripts are generally identical to the underlying DNA sequences. Nevertheless, RNA-DNA differences (RDDs) were found in the nuclear human genome and in plants and animals but not in human mitochondria. Here, by deep sequencing of human mitochondrial DNA (mtDNA) and RNA, we identified three RDD sites at mtDNA positions 295 (C-to-U), 13710 (A-to-U, A-to-G), and 2617 (A-to-U, A-to-G). Position 2617, within the 16S rRNA, harbored the most prevalent RDDs (>30% A-to-U and ∼15% A-to-G of the reads in all tested samples). The 2617 RDDs appeared already at the precursor polycistrone mitochondrial transcript. By using traditional Sanger sequencing, we identified the A-to-U RDD in six different cell lines and representative primates (Gorilla gorilla, Pongo pigmaeus, and Macaca mulatta), suggesting conservation of the mechanism generating such RDD. Phylogenetic analysis of more than 1700 vertebrate mtDNA sequences supported a thymine as the primate ancestral allele at position 2617, suggesting that the 2617 RDD recapitulates the ancestral 16S rRNA. Modeling U or G (the RDDs) at position 2617 stabilized the large ribosomal subunit structure in contrast to destabilization by an A (the pre-RDDs). Hence, these mitochondrial RDDs are likely functional.
MeSH Terms
Alleles
Cell Line
DNA, Mitochondrial/genetics
Evolution, Molecular
Female
Genome, Human
High-Throughput Nucleotide Sequencing
Humans
Mitochondria/genetics
Models, Molecular
Phylogeny
RNA/genetics
RNA, Ribosomal, 16S/genetics
Sequence Alignment
Thymine/metabolism
Chemicals
DNA, Mitochondrial
RNA, Ribosomal, 16S
RNA
Thymine
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Bar-Yaacov Dan
Department of Life Sciences, Ben-Gurion University of the Negev, Beer Sheva 84105, Israel;
Avital Gal
Levin Liron
Richards Allison L
Hachen Naomi
Rebolledo Jaramillo Boris
Nekrutenko Anton
Zarivach Raz
Mishmar Dan
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