The complete nucleotide sequence of mouse 28S rRNA gene. Implications for the process of size increase of the large subunit rRNA In higher eukaryotes
- 1 January 1984
- journal article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 12 (8) , 3563-3583
- https://doi.org/10.1093/nar/12.8.3563
Abstract
We have determined the complete nucleotide sequence (4712 nucleotides) of the mouse 28S rRNA gene. Comparison with all other homologs indicates that the potential for major variations in size during the evolution has been restricted to a unique set of a few sites within a largely conserved secondary structure core. The D (divergent) domains, responsible for the large increase in size of the molecule from procaryotes to higher eukaryotes, represent half the mouse 28S rRNA length. They show a clear potential to form self-contained secondary structures. Their high GC content in vertebrates is correlated with the folding of very long stable stems. Their comparison with the two other vertebrates, xenopus and rat, reveals an history of repeated insertions and deletions. During the evolution of vertebrates, insertion or deletion of new sequence tracts preferentially takes place in the subareas of D domains where the more recently fixed insertions/deletions were located in the ancestor sequence. These D domains appear closely related to the transcribed spacers of rRNA precursor but a sizable fraction displays a much slower rate of sequence variation.Keywords
This publication has 27 references indexed in Scilit:
- [57] Sequencing end-labeled DNA with base-specific chemical cleavagesPublished by Elsevier ,2004
- The complete nucleotide sequence of a 23S rRNA gene from a blue-green alga, Anacystis nidulansGene, 1983
- Complete nucleotide sequence of the 26S rRNA gene of Physarum polycephalum: its significance in gene evolution.Proceedings of the National Academy of Sciences, 1983
- Comparison of fungal mitochondrial introns reveals extensive homologies in RNA secondary structureBiochimie, 1982
- Cloning and determination of the transcription termination site of ribosomal RNA gene of the mouseNucleic Acids Research, 1982
- Specific binding of a prokaryotic ribosomal protein to a eukaryotic ribosomal RNA: implications for evolution and autoregulation.Proceedings of the National Academy of Sciences, 1981
- Secondary structure model for 23S ribosomal RNANucleic Acids Research, 1981
- Duplicated rDNA sequences of variable lengths flanking the short type I insertions in the rDNA of Drosophila melanogasterNucleic Acids Research, 1981
- Complete nucleotide sequence of a 23S ribosomal RNA gene from Escherichia coli.Proceedings of the National Academy of Sciences, 1980
- Changes in size and secondary structure of the ribosomal transcription unit during vertebrate evolutionJournal of Molecular Biology, 1975