Literature DB >> 15913363

Structure of the nitrogen-centered radical formed during inactivation of E. coli ribonucleotide reductase by 2'-azido-2'-deoxyuridine-5'-diphosphate: trapping of the 3'-ketonucleotide.

Jörg Fritscher1, Erin Artin, Stanislaw Wnuk, Galit Bar, John H Robblee, Sylwia Kacprzak, Martin Kaupp, Robert G Griffin, Marina Bennati, JoAnne Stubbe.   

Abstract

Ribonucleotide reductases (RNRs) catalyze the conversion of nucleotides to deoxynucleotides providing the monomeric precursors required for DNA replication and repair. The class I RNRs are composed of two homodimeric subunits: R1 and R2. R1 has the active site where nucleotide reduction occurs, and R2 contains the diiron tyrosyl radical (Y*) cofactor essential for radical initiation on R1. Mechanism-based inhibitors, such as 2'-azido-2'-deoxyuridine-5'-diphosphate (N(3)UDP), have provided much insight into the reduction mechanism. N(3)UDP is a stoichiometric inactivator that, upon interaction with RNR, results in loss of the Y* in R2 and formation of a nitrogen-centered radical (N*) covalently attached to C225 (R-S-N*-X) in the active site of R1. N(2) is lost prior to N* formation, and after its formation, stoichiometric amounts of 2-methylene-3-furanone, pyrophosphate, and uracil are also generated. On the basis of the hyperfine interactions associated with N*, it was proposed that N* is also covalently attached to the nucleotide through either the oxygen of the 3'-OH (R-S-N*-O-R') or the 3'-C (R-S-N*-C-OH). To distinguish between the proposed structures, the inactivation was carried out with 3'-[(17)O]-N(3)UDP and N* was examined by 9 and 140 GHz EPR spectroscopy. Broadening of the N* signal was detected and the spectrum simulated to obtain the [(17)O] hyperfine tensor. DFT calculations were employed to determine which structures are in best agreement with the simulated hyperfine tensor and our previous ESEEM data. The results are most consistent with the R-S-N*-C-OH structure and provide evidence for the trapping of a 3'-ketonucleotide in the reduction process.

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Year:  2005        PMID: 15913363     DOI: 10.1021/ja043111x

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  17 in total

1.  Enhanced subunit interactions with gemcitabine-5'-diphosphate inhibit ribonucleotide reductases.

Authors:  Jun Wang; Gregory J S Lohman; JoAnne Stubbe
Journal:  Proc Natl Acad Sci U S A       Date:  2007-08-28       Impact factor: 11.205

2.  Replacement of Y730 and Y731 in the alpha2 subunit of Escherichia coli ribonucleotide reductase with 3-aminotyrosine using an evolved suppressor tRNA/tRNA-synthetase pair.

Authors:  Mohammad R Seyedsayamdost; JoAnne Stubbe
Journal:  Methods Enzymol       Date:  2009       Impact factor: 1.600

3.  Generation of a stable, aminotyrosyl radical-induced α2β2 complex of Escherichia coli class Ia ribonucleotide reductase.

Authors:  Ellen C Minnihan; Nozomi Ando; Edward J Brignole; Lisa Olshansky; Johnathan Chittuluru; Francisco J Asturias; Catherine L Drennan; Daniel G Nocera; Joanne Stubbe
Journal:  Proc Natl Acad Sci U S A       Date:  2013-02-19       Impact factor: 11.205

4.  Chlamydial ribonucleotide reductase: tyrosyl radical function in catalysis replaced by the FeIII-FeIV cluster.

Authors:  N Voevodskaya; A-J Narvaez; V Domkin; E Torrents; L Thelander; A Gräslund
Journal:  Proc Natl Acad Sci U S A       Date:  2006-06-15       Impact factor: 11.205

Review 5.  Ribonucleotide Reductases: Structure, Chemistry, and Metabolism Suggest New Therapeutic Targets.

Authors:  Brandon L Greene; Gyunghoon Kang; Chang Cui; Marina Bennati; Daniel G Nocera; Catherine L Drennan; JoAnne Stubbe
Journal:  Annu Rev Biochem       Date:  2020-06-20       Impact factor: 23.643

Review 6.  Class I ribonucleotide reductases: metallocofactor assembly and repair in vitro and in vivo.

Authors:  Joseph A Cotruvo; Joanne Stubbe
Journal:  Annu Rev Biochem       Date:  2011       Impact factor: 23.643

7.  Investigation of reactions postulated to occur during inhibition of ribonucleotide reductases by 2'-azido-2'-deoxynucleotides.

Authors:  Thao P Dang; Adam J Sobczak; Alexander M Mebel; Chryssostomos Chatgilialoglu; Stanislaw F Wnuk
Journal:  Tetrahedron       Date:  2012-04-21       Impact factor: 2.457

8.  Radical-translocation intermediates and hurdling of pathway defects in "super-oxidized" (Mn(IV)/Fe(IV)) Chlamydia trachomatis ribonucleotide reductase.

Authors:  Laura M K Dassama; Wei Jiang; Paul T Varano; Maria-Eirini Pandelia; Denise A Conner; Jiajia Xie; J Martin Bollinger; Carsten Krebs
Journal:  J Am Chem Soc       Date:  2012-12-04       Impact factor: 15.419

9.  Function of the diiron cluster of Escherichia coli class Ia ribonucleotide reductase in proton-coupled electron transfer.

Authors:  Bigna Wörsdörfer; Denise A Conner; Kenichi Yokoyama; Jovan Livada; Mohammad Seyedsayamdost; Wei Jiang; Alexey Silakov; JoAnne Stubbe; J Martin Bollinger; Carsten Krebs
Journal:  J Am Chem Soc       Date:  2013-05-31       Impact factor: 15.419

10.  An active dimanganese(III)-tyrosyl radical cofactor in Escherichia coli class Ib ribonucleotide reductase.

Authors:  Joseph A Cotruvo; Joanne Stubbe
Journal:  Biochemistry       Date:  2010-02-16       Impact factor: 3.162

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