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Structure and mechanism of E. coli RNA 2′,3′-cyclic phosphodiesterase

2H (two-histidine) phosphoesterase enzymes are distributed widely in all domains of life and are implicated in diverse RNA and nucleotide transactions, including the transesterification and hydrolysis of cyclic phosphates. Here we report a biochemical and structural characterization of the Escherich...

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Detalles Bibliográficos
Autores principales: Remus, Barbara S., Jacewicz, Agata, Shuman, Stewart
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4201822/
https://www.ncbi.nlm.nih.gov/pubmed/25239919
http://dx.doi.org/10.1261/rna.046797.114
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author Remus, Barbara S.
Jacewicz, Agata
Shuman, Stewart
author_facet Remus, Barbara S.
Jacewicz, Agata
Shuman, Stewart
author_sort Remus, Barbara S.
collection PubMed
description 2H (two-histidine) phosphoesterase enzymes are distributed widely in all domains of life and are implicated in diverse RNA and nucleotide transactions, including the transesterification and hydrolysis of cyclic phosphates. Here we report a biochemical and structural characterization of the Escherichia coli 2H protein YapD, which was identified originally as a reversible transesterifying “nuclease/ligase” at RNA 2′,5′-phosphodiesters. We find that YapD is an “end healing” cyclic phosphodiesterase (CPDase) enzyme that hydrolyzes an (HO)RNA>p substrate with a 2′,3′-cyclic phosphodiester to a (HO)RNAp product with a 2′-phosphomonoester terminus, without concomitant end joining. Thus we rename this enzyme ThpR (two-histidine 2′,3′-cyclic phosphodiesterase acting on RNA). The 2.0 Å crystal structure of ThpR in a product complex with 2′-AMP highlights the roles of extended histidine-containing motifs (43)HxTxxF(48) and (125)HxTxxR(130) in the CPDase reaction. His43-Nε makes a hydrogen bond with the ribose O3′ leaving group, thereby implicating His43 as a general acid catalyst. His125-Nε coordinates the O1P oxygen of the AMP 2′-phosphate (inferred from geometry to derive from the attacking water nucleophile), pointing to His125 as a general base catalyst. Arg130 makes bidentate contact with the AMP 2′-phosphate, suggesting a role in transition-state stabilization. Consistent with these inferences, changing His43, His125, or Arg130 to alanine effaced the CPDase activity of ThpR. Phe48 makes a π–π stack on the adenine nucleobase. Mutating Phe28 to alanine slowed the CPDase by an order of magnitude. The tertiary structure and extended active site motifs of ThpR are conserved in a subfamily of bacterial and archaeal 2H enzymes.
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spelling pubmed-42018222015-11-01 Structure and mechanism of E. coli RNA 2′,3′-cyclic phosphodiesterase Remus, Barbara S. Jacewicz, Agata Shuman, Stewart RNA Report 2H (two-histidine) phosphoesterase enzymes are distributed widely in all domains of life and are implicated in diverse RNA and nucleotide transactions, including the transesterification and hydrolysis of cyclic phosphates. Here we report a biochemical and structural characterization of the Escherichia coli 2H protein YapD, which was identified originally as a reversible transesterifying “nuclease/ligase” at RNA 2′,5′-phosphodiesters. We find that YapD is an “end healing” cyclic phosphodiesterase (CPDase) enzyme that hydrolyzes an (HO)RNA>p substrate with a 2′,3′-cyclic phosphodiester to a (HO)RNAp product with a 2′-phosphomonoester terminus, without concomitant end joining. Thus we rename this enzyme ThpR (two-histidine 2′,3′-cyclic phosphodiesterase acting on RNA). The 2.0 Å crystal structure of ThpR in a product complex with 2′-AMP highlights the roles of extended histidine-containing motifs (43)HxTxxF(48) and (125)HxTxxR(130) in the CPDase reaction. His43-Nε makes a hydrogen bond with the ribose O3′ leaving group, thereby implicating His43 as a general acid catalyst. His125-Nε coordinates the O1P oxygen of the AMP 2′-phosphate (inferred from geometry to derive from the attacking water nucleophile), pointing to His125 as a general base catalyst. Arg130 makes bidentate contact with the AMP 2′-phosphate, suggesting a role in transition-state stabilization. Consistent with these inferences, changing His43, His125, or Arg130 to alanine effaced the CPDase activity of ThpR. Phe48 makes a π–π stack on the adenine nucleobase. Mutating Phe28 to alanine slowed the CPDase by an order of magnitude. The tertiary structure and extended active site motifs of ThpR are conserved in a subfamily of bacterial and archaeal 2H enzymes. Cold Spring Harbor Laboratory Press 2014-11 /pmc/articles/PMC4201822/ /pubmed/25239919 http://dx.doi.org/10.1261/rna.046797.114 Text en © 2014 Remus et al.; Published by Cold Spring Harbor Laboratory Press for the RNA Society http://creativecommons.org/licenses/by-nc/4.0/ This article is distributed exclusively by the RNA Society for the first 12 months after the full-issue publication date (see http://rnajournal.cshlp.org/site/misc/terms.xhtml). After 12 months, it is available under a Creative Commons License (Attribution-NonCommercial 4.0 International), as described at http://creativecommons.org/licenses/by-nc/4.0/.
spellingShingle Report
Remus, Barbara S.
Jacewicz, Agata
Shuman, Stewart
Structure and mechanism of E. coli RNA 2′,3′-cyclic phosphodiesterase
title Structure and mechanism of E. coli RNA 2′,3′-cyclic phosphodiesterase
title_full Structure and mechanism of E. coli RNA 2′,3′-cyclic phosphodiesterase
title_fullStr Structure and mechanism of E. coli RNA 2′,3′-cyclic phosphodiesterase
title_full_unstemmed Structure and mechanism of E. coli RNA 2′,3′-cyclic phosphodiesterase
title_short Structure and mechanism of E. coli RNA 2′,3′-cyclic phosphodiesterase
title_sort structure and mechanism of e. coli rna 2′,3′-cyclic phosphodiesterase
topic Report
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4201822/
https://www.ncbi.nlm.nih.gov/pubmed/25239919
http://dx.doi.org/10.1261/rna.046797.114
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