Structure-function analysis of yeast RNA debranching enzyme (Dbr1), a manganese-dependent phosphodiesterase Journal Article


Authors: Khalid, M. F.; Damha, M. J.; Shuman, S.; Schwer, B.
Article Title: Structure-function analysis of yeast RNA debranching enzyme (Dbr1), a manganese-dependent phosphodiesterase
Abstract: Saccharomyces cerevisiae Dbr1 is a 405-amino acid RNA debranching enzyme that cleaves the 2′-5′ phosphodiester bonds of the lariat introns formed during pre-mRNA splicing. Debranching appears to be a rate-limiting step for the turnover of intronic RNA, insofar as the steady-state levels of lariat introns are greatly increased in a Δdbr1 strain. To gain insight to the requirements for yeast Dbr1 function, we performed a mutational analysis of 28 amino acids that are conserved in Dbr1 homologs from other organisms. We identified 13 residues (His13, Asp40, Arg45, Asp49, Tyr68, Tyr69, Asn85, His86, Glu87, His179, Asp180, His231 and His233) at which alanine substitutions resulted in lariat intron accumulation in vivo. Conservative replacements at these positions were introduced to illuminate structure-activity relationships. Residues important for Dbr1 function include putative counterparts of the amino acids that comprise the active site of the metallophosphoesterase superfamily, exemplified by the DNA phosphodiesterase Mre11. Using natural lariat RNAs and synthetic branched RNAs as substrates, we found that mutation of Asp40, Asn85, His86, His179, His231 or His233 to alanine abolishes or greatly diminishes debranching activity in vitro. Dbr1 sediments as a monomer and requires manganese as the metal cofactor for debranching. © The Author 2005. Published by Oxford University Press. All rights reserved.
Keywords: protein expression; unclassified drug; gene mutation; nonhuman; amino acid substitution; intron; introns; in vivo study; in vitro study; enzyme activity; structure activity relation; structure-activity relationship; tyrosine; amino acid sequence; molecular sequence data; enzyme analysis; saccharomyces cerevisiae; sequence alignment; amino acid; dna mutational analysis; saccharomyces cerevisiae proteins; alanine; sequence homology; enzyme structure; glutamic acid; aspartic acid; mutagenesis; arginine; asparagine; histidine; northern blotting; rna isolation; manganese; phosphodiesterase; fungal enzyme; phosphoric diester hydrolases; fungal rna; rna nucleotidyltransferases; protein dbr1
Journal Title: Nucleic Acids Research
Volume: 33
Issue: 19
ISSN: 0305-1048
Publisher: Oxford University Press  
Date Published: 2005-11-07
Start Page: 6349
End Page: 6360
Language: English
DOI: 10.1093/nar/gki934
PUBMED: 16275784
PROVIDER: scopus
PMCID: PMC1278944
DOI/URL:
Notes: --- - "Cited By (since 1996): 11" - "Export Date: 24 October 2012" - "CODEN: NARHA" - "Source: Scopus"
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  1. Stewart H Shuman
    546 Shuman