RNA 3′-phosphate cyclase (RtcA) catalyzes ligase-like adenylylation of DNA and RNA 5′-monophosphate ends Journal Article


Authors: Chakravarty, A. K.; Shuman, S.
Article Title: RNA 3′-phosphate cyclase (RtcA) catalyzes ligase-like adenylylation of DNA and RNA 5′-monophosphate ends
Abstract: RNA 3′-phosphate cyclase (Rtc) enzymes are a widely distributed family that catalyze the synthesis of RNA 2′,3′-cyclic phosphate ends via an ATP-dependent pathway comprising three nucleotidyl transfer steps: reaction of Rtc with ATP to form a covalent Rtc-(histidinyl-N)-AMP intermediate and release PPi; transfer of AMP from Rtc to an RNA 3′-phosphate to form an RNA(3′)pp(5′)A intermediate; and attack by the terminal nucleoside O2′ on the 3′-phosphate to form an RNA 2′,3′-cyclic phosphate product and release AMP. The chemical transformations of the cyclase pathway resemble those of RNA and DNA ligases, with the key distinction being that ligases covalently adenylylate 5′-phosphate ends en route to phosphodiester synthesis. Here we show that the catalytic repertoire of RNA cyclase overlaps that of ligases. We report that Escherichia coli RtcA catalyzes adenylylation of 5′-phosphate ends of DNA or RNA strands to form AppDNA and AppRNA products. The polynucleotide 5′ modification reaction requires the His309 nucleophile, signifying that it proceeds through a covalent RtcA-AMP intermediate. We established this point directly by demonstrating transfer of [32P]AMP from RtcA to a pDNA strand. RtcA readily adenylylated the 5′-phosphate at a 5′-PO4/3′-OH nick in duplex DNA but was unable to covert the nicked DNA-adenylate to a sealed phosphodiester. Our findings raise the prospect that cyclization of RNA 3′-ends might not be the only biochemical pathway in which Rtc enzymes participate; we discuss scenarios in which the 5′-adenylyltransferase of RtcA might play a role. © 2011 by The American Society for Biochemistry and Molecular Biology, Inc.
Keywords: controlled study; unclassified drug; nonhuman; rna; dna; escherichia coli; nucleic acids; catalysis; single stranded dna; cyclization; regulatory rna sequence; enzymes; polynucleotide 5' hydroxyl kinase; synthesis (chemical); histidine; dna ligases; enzyme active site; adenylate; ligases; adenylyltransferase; adenylation; catalysts; reaction intermediates; single stranded rna; rna 3' phosphate cyclase; covalent bond; duplex dna; en-route; adenylylation; biochemical pathway; chemical transformations; cyclases; cyclic phosphates; modification reactions; monophosphates; phosphodiesters; polynucleotides; dna 5' monophosphate end; rna 5' monophosphate end; rna ligase; nucleophilicity
Journal Title: Journal of Behavioral Medicine
Volume: 286
Issue: 6
ISSN: 0160-7715
Publisher: Springer  
Date Published: 2011-02-11
Start Page: 4117
End Page: 4122
Language: English
DOI: 10.1074/jbc.M110.196766
PUBMED: 21098490
PROVIDER: scopus
PMCID: PMC3039336
DOI/URL:
Notes: --- - "Cited By (since 1996): 1" - "Export Date: 23 June 2011" - "CODEN: JBCHA" - "Source: Scopus"
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  1. Stewart H Shuman
    546 Shuman