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PMID: 16120833 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, U.S. Gov't, P.H.S.

Effects of nucleotide substitution and modification on the stability and structure of helix 69 from 28S rRNA.

RNA (New York, N.Y.) ·Vol. 11 ·No. 9 ·2005-09-00 ·Pages 1420-9

Sumita M, Desaulniers JP, Chang YC, Chui HM, Clos L, Chow CS

Abstract

The helix 69 (H69) region of the large subunit (28S) rRNA of Homo sapiens contains five pseudouridine (Psi) residues out of 19 total nucleotides (26%), three of which are universally or highly conserved. In this study, the effects of this abundant modified nucleotide on the structure and stability of H69 were compared with those of uridine. The role of a loop nucleotide substitution from A in bacteria (position 1918 in Escherichia coli 23S rRNA) to G in eukaryotes (position in 3734 in H. sapiens) was also examined. The thermodynamic parameters were obtained through UV melting studies, and differences in the modified and unmodified RNA structures were examined by 1H NMR and circular dichroism spectroscopy. In addition, a [1,3-15N]Psi phosphoramidite was used to generate H69 analogs with site-specific 15N labels. By using this approach, different Psi residues can be clearly distinguished from one another in 1H NMR experiments. The effects of pseudouridine on H. sapiens H69 are consistent with previous studies on tRNA, rRNA, and snRNA models in which the nucleotide offers stabilization of duplex regions through PsiN1H-mediated hydrogen bonds. The overall secondary structure and base-pairing patterns of human H69 are similar to the bacterial RNA, consistent with the idea that ribosome structure and function are highly conserved. Nonetheless, pseudouridine-containing RNAs have subtle differences in their structures and stabilities compared to the corresponding uridine-containing analogs, suggesting possible roles for Psi such as maintaining translation fidelity.

MeSH Terms
Circular Dichroism Humans Magnetic Resonance Spectroscopy Nucleic Acid Conformation Point Mutation Pseudouridine/analogs & derivatives,chemistry,genetics,metabolism RNA, Ribosomal, 28S/chemistry,genetics,metabolism Temperature Thermodynamics
Chemicals
RNA, Ribosomal, 28S Pseudouridine
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Sumita Minako
Department of Chemistry, Wayne State University, Detroit, MI 48202, USA.
Desaulniers Jean-Paul
Chang Yu-Cheng
Chui Helen M-P
Clos Lawrence
Chow Christine S
References (53)
53 references, click to expand
  1. Solution structure of the E. coli 70S ribosome at 11.5 A resolution.
    Cell. 2000 Mar 3;100(5):537-49 PMID: 10721991
  2. Structural basis of the enhanced stability of a mutant ribozyme domain and a detailed view of RNA--solvent interactions.
    Structure. 2001 Mar 7;9(3):221-31 PMID: 11286889
  3. Pseudouridine in RNA: what, where, how, and why.
    IUBMB Life. 2000 May;49(5):341-51 PMID: 10902565
  4. A ratchet-like inter-subunit reorganization of the ribosome during translocation.
    Nature. 2000 Jul 20;406(6793):318-22 PMID: 10917535
  5. The complete atomic structure of the large ribosomal subunit at 2.4 A resolution.
    Science. 2000 Aug 11;289(5481):905-20 PMID: 10937989
  6. The structural basis of ribosome activity in peptide bond synthesis.
    Science. 2000 Aug 11;289(5481):920-30 PMID: 10937990
  7. Structural basis for the interaction of antibiotics with the peptidyl transferase centre in eubacteria.
    Nature. 2001 Oct 25;413(6858):814-21 PMID: 11677599
  8. Structure of the 80S ribosome from Saccharomyces cerevisiae--tRNA-ribosome and subunit-subunit interactions.
    Cell. 2001 Nov 2;107(3):373-86 PMID: 11701127
  9. High resolution structure of the large ribosomal subunit from a mesophilic eubacterium.
    Cell. 2001 Nov 30;107(5):679-88 PMID: 11733066
  10. Investigation of Overhauser effects between pseudouridine and water protons in RNA helices.
    Proc Natl Acad Sci U S A. 2002 Oct 1;99(20):12697-702 PMID: 12242344
  11. Synthesis of helix 69 of Escherichia coli 23S rRNA containing its natural modified nucleosides, m(3)Psi and Psi.
    J Org Chem. 2002 Dec 13;67(25):8847-54 PMID: 12467398
  12. Structural basis of the ribosomal machinery for peptide bond formation, translocation, and nascent chain progression.
    Mol Cell. 2003 Jan;11(1):91-102 PMID: 12535524
  13. Study of the structural dynamics of the E coli 70S ribosome using real-space refinement.
    Cell. 2003 Jun 13;113(6):789-801 PMID: 12809609
  14. A snoRNA that guides the two most conserved pseudouridine modifications within rRNA confers a growth advantage in yeast.
    RNA. 2003 Jul;9(7):771-9 PMID: 12810910
  15. Stabilization of the anticodon stem-loop of tRNALys,3 by an A+-C base-pair and by pseudouridine.
    J Mol Biol. 1999 Jan 8;285(1):115-31 PMID: 9878393
  16. Structural and functional roles of the N1- and N3-protons of psi at tRNA's position 39.
    Nucleic Acids Res. 1999 Sep 1;27(17):3543-9 PMID: 10446245
  17. X-ray crystal structures of 70S ribosome functional complexes.
    Science. 1999 Sep 24;285(5436):2095-104 PMID: 10497122
  18. Pseudouridine, a carbon-carbon linked ribonucleoside in ribonucleic acids: isolation, structure, and chemical characteristics.
    J Biol Chem. 1960 May;235:1488-98 PMID: 13811056
  19. Uniform binding of aminoacylated transfer RNAs to the ribosomal A and P sites.
    Mol Cell. 2004 Dec 3;16(5):799-805 PMID: 15574334
  20. The comparative RNA web (CRW) site: an online database of comparative sequence and structure information for ribosomal, intron, and other RNAs.
    BMC Bioinformatics. 2002;3:2 PMID: 11869452
  21. Definition of bases in 23S rRNA essential for ribosomal subunit association.
    RNA. 2004 Apr;10(4):600-4 PMID: 15037769
  22. Visualization of ribosome-recycling factor on the Escherichia coli 70S ribosome: functional implications.
    Proc Natl Acad Sci U S A. 2004 Jun 15;101(24):8900-5 PMID: 15178758
  23. Some optical properties of diadenosine-5'-phosphates.
    Proc Natl Acad Sci U S A. 1969 Dec;64(4):1308-14 PMID: 5271753
  24. Synthesis and conformational properties of diribonucleoside monophosphates containing modified nucleosides as found in transfer RNA.
    Biochim Biophys Acta. 1971 Mar 11;232(2):217-26 PMID: 5553678
  25. Chemical probes for higher-order structure in RNA.
    Proc Natl Acad Sci U S A. 1980 Aug;77(8):4679-82 PMID: 6159633
  26. Pseudouridine distribution in mammalian 18 S ribosomal RNA. A major cluster in the central region of the molecule.
    Biochem J. 1988 Jan 15;249(2):459-64 PMID: 3342024
  27. Changing the identity of a tRNA by introducing a G-U wobble pair near the 3' acceptor end.
    Science. 1988 May 6;240(4853):793-6 PMID: 2452483
  28. A simple structural feature is a major determinant of the identity of a transfer RNA.
    Nature. 1988 May 12;333(6169):140-5 PMID: 3285220
  29. Properties of a U1/mRNA 5' splice site duplex containing pseudouridine as measured by thermodynamic and NMR methods.
    Biochemistry. 1991 Feb 19;30(7):1795-801 PMID: 1993194
  30. Identification of intermolecular RNA cross-links at the subunit interface of the Escherichia coli ribosome.
    Biochemistry. 1992 Mar 24;31(11):3004-11 PMID: 1372517
  31. Properties of pseudouridine N1 imino protons located in the major groove of an A-form RNA duplex.
    Nucleic Acids Res. 1992 Apr 25;20(8):1883-9 PMID: 1579489
  32. Crystal structure of unmodified tRNA(Gln) complexed with glutaminyl-tRNA synthetase and ATP suggests a possible role for pseudo-uridines in stabilization of RNA structure.
    Biochemistry. 1994 Jun 21;33(24):7560-7 PMID: 8011621
  33. Summary: the modified nucleosides of RNA.
    Nucleic Acids Res. 1994 Jun 25;22(12):2183-96 PMID: 7518580
  34. Determinants of RNA hairpin loop-loop complex stability.
    J Mol Biol. 1995 May 19;248(5):968-84 PMID: 7539081
  35. G.U base pairing motifs in ribosomal RNA.
    RNA. 1995 Oct;1(8):807-14 PMID: 7493326
  36. The involvement of two distinct regions of 23 S ribosomal RNA in tRNA selection.
    J Mol Biol. 1995 Dec 15;254(5):838-47 PMID: 7500354
  37. Synthesis and NMR of RNA with selective isotopic enrichment in the bases.
    Nucleic Acids Res. 1995 Dec 11;23(23):4913-21 PMID: 8532537
  38. Stabilization of RNA stacking by pseudouridine.
    Nucleic Acids Res. 1995 Dec 25;23(24):5020-6 PMID: 8559660
  39. Structural characterization of U*-1915 in domain IV from Escherichia coli 23S ribosomal RNA as 3-methylpseudouridine.
    Nucleic Acids Res. 1996 Feb 15;24(4):688-93 PMID: 8604311
  40. The pseudouridine residues of ribosomal RNA.
    Biochem Cell Biol. 1995 Nov-Dec;73(11-12):915-24 PMID: 8722007
  41. Investigation of the structural basis for thermodynamic stabilities of tandem GU mismatches: solution structure of (rGAGGUCUC)2 by two-dimensional NMR and simulated annealing.
    Biochemistry. 1996 Nov 12;35(45):14077-89 PMID: 8916893
  42. Mapping to nucleotide resolution of pseudouridine residues in large subunit ribosomal RNAs from representative eukaryotes, prokaryotes, archaebacteria, mitochondria and chloroplasts.
    J Mol Biol. 1997 Feb 21;266(2):246-68 PMID: 9047361
  43. Mapping the inside of the ribosome with an RNA helical ruler.
    Science. 1997 Nov 7;278(5340):1093-8 PMID: 9353184
  44. The RNA modification database--1998.
    Nucleic Acids Res. 1998 Jan 1;26(1):196-7 PMID: 9399834
  45. Human U19 intron-encoded snoRNA is processed from a long primary transcript that possesses little potential for protein coding.
    RNA. 1998 Apr;4(4):445-54 PMID: 9630250
  46. A pseudouridine synthase required for the formation of two universally conserved pseudouridines in ribosomal RNA is essential for normal growth of Escherichia coli.
    RNA. 1998 Nov;4(11):1407-17 PMID: 9814761
  47. Nucleotides in 23S rRNA protected by the association of 30S and 50S ribosomal subunits.
    J Mol Biol. 1999 Jan 8;285(1):107-13 PMID: 9878392
  48. Structure of the 30S ribosomal subunit.
    Nature. 2000 Sep 21;407(6802):327-39 PMID: 11014182
  49. Functional insights from the structure of the 30S ribosomal subunit and its interactions with antibiotics.
    Nature. 2000 Sep 21;407(6802):340-8 PMID: 11014183
  50. Isolation and properties of Escherichia coli 23S-RNA pseudouridine 1911, 1915, 1917 synthase (RluD).
    IUBMB Life. 2000 Jul;50(1):33-7 PMID: 11087118
  51. Crystal structure of the ribosome at 5.5 A resolution.
    Science. 2001 May 4;292(5518):883-96 PMID: 11283358
  52. A conserved pseudouridine modification in eukaryotic U2 snRNA induces a change in branch-site architecture.
    RNA. 2001 Jun;7(6):833-45 PMID: 11424937
  53. Unique structural and stabilizing roles for the individual pseudouridine residues in the 1920 region of Escherichia coli 23S rRNA.
    Nucleic Acids Res. 2000 May 15;28(10):2075-83 PMID: 10773075
Article Info
Journal
RNA (New York, N.Y.)
Abbr.
RNA
ISSN
1355-8382
Published
2005-09-00
Pages
1420-9
Language
English
Region
United States
NLM ID
9509184
PMCID
PMC1370825
Subset
IM
Grants
NIGMS NIH HHS · R01 GM054632 · United States
NIGMS NIH HHS · R29 GM054632 · United States
NIGMS NIH HHS · GM54632 · United States
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