Xenopus laevis28S ribosomal RNA: a secondary structure model and its evolutionary and functional implications
- 1 January 1984
- journal article
- research article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 12 (15) , 6197-6220
- https://doi.org/10.1093/nar/12.15.6197
Abstract
Based upon the three experimentally derived models of E. coli 23S rRNA (1-3) and the partial model for yeast 26S rRNA (4), which was deduced by homology to E. coli, we derived a secondary structure model for Xenopus laevis 28S rRNA. This is the first complete model presented for eukaryotic 28S rRNA. Compensatory base changes support the general validity of our model and offer help to resolve which of the three E. coli models is correct in regions where they are different from one another. Eukaryotic rDNA is longer than prokaryotic rDNA by virtue of introns, expansion segments and transcribed spacers, all of which are discussed relative to our secondary structure model. Comments are made on the evolutionary origins of these three categories and the processing fates of their transcripts. Functionally important sites on our 28S rRNA secondary structure model are suggested by analogy for ribosomal protein binding, the GTPase center, the peptidyl transferase center, and for rRNA interaction with tRNA and 5S RNA. We discuss how RNA-RNA interactions may play a vital role in translocation.Keywords
This publication has 75 references indexed in Scilit:
- Protection of ribosomal RNA from kethoxal in polyribosomesJournal of Molecular Biology, 1983
- Ribosomal RNA evolution by fragmentation of the 23S progenitor: Maturation pathway parallels evolutionary emergenceJournal of Molecular Evolution, 1982
- A 5.8 S rRNA‐like sequence in prokaryotic 23 S rRNAFEBS Letters, 1980
- Role of the 5′-terminal sequence in the RNA binding site of yeast 5.8 S rRNAFEBS Letters, 1980
- Sequence of the intron and flanking exons of the mitochondrial 21S rRNA gene of yeast strains having different alleles at the ω and rib-1 lociCell, 1980
- Structure analysis at the ends of the intervening DNA sequences in the chloroplast 23S ribosomal genes of C. reinhardiiCell, 1979
- Effects of some proteins that inactivate the eukaryotic ribosomeFEBS Letters, 1977
- The 5′→3′ polarity of the xenopus ribosomal RNA precursor moleculeCell, 1976
- Changes in size and secondary structure of the ribosomal transcription unit during vertebrate evolutionJournal of Molecular Biology, 1975
- Secondary structure maps of ribosomal RNA: II. Processing of mouse L-cell ribosomal RNA and variations in the processing pathwayJournal of Molecular Biology, 1974