Literature DB >> 15317974

The contribution of metal ions to the structural stability of the large ribosomal subunit.

Daniel J Klein1, Peter B Moore, Thomas A Steitz.   

Abstract

Both monovalent cations and magnesium ions are well known to be essential for the folding and stability of large RNA molecules that form complex and compact structures. In the atomic structure of the large ribosomal subunit from Haloarcula marismortui, we have identified 116 magnesium ions and 88 monovalent cations bound principally to rRNA. Although the rRNA structures to which these metal ions bind are highly idiosyncratic, a few common principles have emerged from the identities of the specific functional groups that coordinate them. The nonbridging oxygen of a phosphate group is the most common inner shell ligand of Mg++, and Mg++ ions having one or two such inner shell ligands are very common. Nonbridging phosphate oxygens and the heteroatoms of nucleotide bases are common outer shell ligands for Mg++ ions. Monovalent cations usually interact with nucleotide bases and protein groups, although some interactions with nonbridging phosphate oxygens are found. The most common monovalent cation binding site is the major groove side of G-U wobble pairs. Both divalent and monovalent cations stabilize the tertiary structure of 23S rRNA by mediating interactions between its structural domains. Bound metal ions are particularly abundant in the region surrounding the peptidyl transferase center, where stabilizing cationic tails of ribosomal proteins are notably absent. This may point to the importance of metal ions for the stabilization of specific RNA structures in the evolutionary period prior to the appearance of proteins, and hence many of these metal ion binding sites may be conserved across all phylogenetic kingdoms.

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Year:  2004        PMID: 15317974      PMCID: PMC1370624          DOI: 10.1261/rna.7390804

Source DB:  PubMed          Journal:  RNA        ISSN: 1355-8382            Impact factor:   4.942


  30 in total

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3.  The complete atomic structure of the large ribosomal subunit at 2.4 A resolution.

Authors:  N Ban; P Nissen; J Hansen; P B Moore; T A Steitz
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Journal:  Nat Struct Biol       Date:  2002-03

5.  A compact RNA tertiary structure contains a buried backbone-K+ complex.

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6.  Structural and energetic analysis of metal ions essential to SRP signal recognition domain assembly.

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Journal:  Biochemistry       Date:  2002-10-01       Impact factor: 3.162

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Authors:  R S Zitomer; J G Flaks
Journal:  J Mol Biol       Date:  1972-11-14       Impact factor: 5.469

9.  Stabilization of RNA tertiary structure by monovalent cations.

Authors:  R Shiman; D E Draper
Journal:  J Mol Biol       Date:  2000-09-08       Impact factor: 5.469

Review 10.  Metal ions in the structure and function of RNA.

Authors:  Anna Marie Pyle
Journal:  J Biol Inorg Chem       Date:  2002-07-18       Impact factor: 3.358

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3.  Structural aspects of messenger RNA reading frame maintenance by the ribosome.

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4.  Studies of Mg2+/Ca2+ complexes of naturally occurring dinucleotides: potentiometric titrations, NMR, and molecular dynamics.

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5.  Structural basis for discriminative regulation of gene expression by adenine- and guanine-sensing mRNAs.

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7.  Crystal structure of a bacterial ribonuclease P RNA.

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8.  Revisiting the structures of several antibiotics bound to the bacterial ribosome.

Authors:  David Bulkley; C Axel Innis; Gregor Blaha; Thomas A Steitz
Journal:  Proc Natl Acad Sci U S A       Date:  2010-09-27       Impact factor: 11.205

9.  The conformational landscape of the ribosomal protein S15 and its influence on the protein interaction with 16S RNA.

Authors:  Thomas Créty; Thérèse E Malliavin
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10.  An SMU Splicing Factor Complex Within Nuclear Speckles Contributes to Magnesium Homeostasis in Arabidopsis.

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