Literature DB >> 18332121

Different mechanisms for pseudouridine formation in yeast 5S and 5.8S rRNAs.

Wayne A Decatur1, Murray N Schnare.   

Abstract

The selection of sites for pseudouridylation in eukaryotic cytoplasmic rRNA occurs by the base pairing of the rRNA with specific guide sequences within the RNA components of box H/ACA small nucleolar ribonucleoproteins (snoRNPs). Forty-four of the 46 pseudouridines (Psis) in the cytoplasmic rRNA of Saccharomyces cerevisiae have been assigned to guide snoRNAs. Here, we examine the mechanism of Psi formation in 5S and 5.8S rRNA in which the unassigned Psis occur. We show that while the formation of the Psi in 5.8S rRNA is associated with snoRNP activity, the pseudouridylation of 5S rRNA is not. The position of the Psi in 5.8S rRNA is guided by snoRNA snR43 by using conserved sequence elements that also function to guide pseudouridylation elsewhere in the large-subunit rRNA; an internal stem-loop that is not part of typical yeast snoRNAs also is conserved in snR43. The multisubstrate synthase Pus7 catalyzes the formation of the Psi in 5S rRNA at a site that conforms to the 7-nucleotide consensus sequence present in other substrates of Pus7. The different mechanisms involved in 5S and 5.8S rRNA pseudouridylation, as well as the multiple specificities of the individual trans factors concerned, suggest possible roles in linking ribosome production to other processes, such as splicing and tRNA synthesis.

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Year:  2008        PMID: 18332121      PMCID: PMC2423156          DOI: 10.1128/MCB.01574-07

Source DB:  PubMed          Journal:  Mol Cell Biol        ISSN: 0270-7306            Impact factor:   4.272


  112 in total

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2.  Crystal structure of a Cbf5-Nop10-Gar1 complex and implications in RNA-guided pseudouridylation and dyskeratosis congenita.

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3.  Nuclear RNA surveillance in Saccharomyces cerevisiae: Trf4p-dependent polyadenylation of nascent hypomethylated tRNA and an aberrant form of 5S rRNA.

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4.  Impaired control of IRES-mediated translation in X-linked dyskeratosis congenita.

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5.  Rapid tRNA decay can result from lack of nonessential modifications.

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6.  Accumulation of unstable promoter-associated transcripts upon loss of the nuclear exosome subunit Rrp6p in Saccharomyces cerevisiae.

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Journal:  Nucleic Acids Res       Date:  2006-01-01       Impact factor: 16.971

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Review 2.  Posttranscriptional RNA Pseudouridylation.

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Journal:  Enzymes       Date:  2017-03-11

Review 3.  Pseudouridine: still mysterious, but never a fake (uridine)!

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4.  The human pseudouridine synthase PUS7 recognizes RNA with an extended multi-domain binding surface.

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5.  Transcriptome-wide mapping reveals widespread dynamic-regulated pseudouridylation of ncRNA and mRNA.

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Review 7.  Tuning the ribosome: The influence of rRNA modification on eukaryotic ribosome biogenesis and function.

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Review 8.  tRNA Processing and Subcellular Trafficking Proteins Multitask in Pathways for Other RNAs.

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9.  Pseudouridine synthase 7 impacts Candida albicans rRNA processing and morphological plasticity.

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10.  Deficiency of the tRNATyr:Psi 35-synthase aPus7 in Archaea of the Sulfolobales order might be rescued by the H/ACA sRNA-guided machinery.

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Journal:  Nucleic Acids Res       Date:  2009-01-12       Impact factor: 16.971

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