A Chemically Competent Thiosulfuranyl Radical on the Escherichia coli Class III Ribonucleotide Reductase

dc.contributor.authorWei, Yifeng
dc.contributor.authorMathies, Guinevere
dc.contributor.authorYokoyama, Kenichi
dc.contributor.authorChen, Jiahao
dc.contributor.authorGriffin, Robert G.
dc.contributor.authorStubbe, JoAnne
dc.date.accessioned2018-10-11T12:20:46Z
dc.date.available2018-10-11T12:20:46Z
dc.date.issued2014-06-25eng
dc.description.abstractThe class III ribonucleotide reductases (RNRs) are glycyl radical (G•) enzymes that provide the balanced pool of deoxynucleotides required for DNA synthesis and repair in many facultative and obligate anaerobic bacteria and archaea. Unlike the class I and II RNRs, where reducing equivalents for the reaction are delivered by a redoxin (thioredoxin, glutaredoxin, or NrdH) via a pair of conserved active site cysteines, the class III RNRs examined to date use formate as the reductant. Here, we report that reaction of the Escherichia coli class III RNR with CTP (substrate) and ATP (allosteric effector) in the absence of formate leads to loss of the G• concomitant with stoichiometric formation of a new radical species and a "trapped" cytidine derivative that can break down to cytosine. Addition of formate to the new species results in recovery of 80% of the G• and reduction of the cytidine derivative, proposed to be 3'-keto-deoxycytidine, to dCTP and a small amount of cytosine. The structure of the new radical has been identified by 9.5 and 140 GHz EPR spectroscopy on isotopically labeled varieties of the protein to be a thiosulfuranyl radical [RSSR2]•, composed of a cysteine thiyl radical stabilized by an interaction with a methionine residue. The presence of a stable radical species on the reaction pathway rationalizes the previously reported [3H]-(kcat/KM) isotope effect of 2.3 with [3H]-formate, requiring formate to exchange between the active site and solution during nucleotide reduction. Analogies with the disulfide anion radical proposed to provide the reducing equivalent to the 3'-keto-deoxycytidine intermediate by the class I and II RNRs provide further evidence for the involvement of thiyl radicals in the reductive half-reaction catalyzed by all RNRs.eng
dc.description.versionpublishedeng
dc.identifier.doi10.1021/ja5030194eng
dc.identifier.pmid24827372eng
dc.identifier.ppn511977565
dc.identifier.urihttps://kops.uni-konstanz.de/handle/123456789/43496
dc.language.isoengeng
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dc.subject.ddc540eng
dc.titleA Chemically Competent Thiosulfuranyl Radical on the Escherichia coli Class III Ribonucleotide Reductaseeng
dc.typeJOURNAL_ARTICLEeng
dspace.entity.typePublication
kops.citation.bibtex
@article{Wei2014-06-25Chemi-43496,
  year={2014},
  doi={10.1021/ja5030194},
  title={A Chemically Competent Thiosulfuranyl Radical on the Escherichia coli Class III Ribonucleotide Reductase},
  number={25},
  volume={136},
  issn={0002-7863},
  journal={Journal of the American Chemical Society},
  pages={9001--9013},
  author={Wei, Yifeng and Mathies, Guinevere and Yokoyama, Kenichi and Chen, Jiahao and Griffin, Robert G. and Stubbe, JoAnne}
}
kops.citation.iso690WEI, Yifeng, Guinevere MATHIES, Kenichi YOKOYAMA, Jiahao CHEN, Robert G. GRIFFIN, JoAnne STUBBE, 2014. A Chemically Competent Thiosulfuranyl Radical on the Escherichia coli Class III Ribonucleotide Reductase. In: Journal of the American Chemical Society. 2014, 136(25), pp. 9001-9013. ISSN 0002-7863. eISSN 1520-5126. Available under: doi: 10.1021/ja5030194deu
kops.citation.iso690WEI, Yifeng, Guinevere MATHIES, Kenichi YOKOYAMA, Jiahao CHEN, Robert G. GRIFFIN, JoAnne STUBBE, 2014. A Chemically Competent Thiosulfuranyl Radical on the Escherichia coli Class III Ribonucleotide Reductase. In: Journal of the American Chemical Society. 2014, 136(25), pp. 9001-9013. ISSN 0002-7863. eISSN 1520-5126. Available under: doi: 10.1021/ja5030194eng
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    <dcterms:abstract xml:lang="eng">The class III ribonucleotide reductases (RNRs) are glycyl radical (G•) enzymes that provide the balanced pool of deoxynucleotides required for DNA synthesis and repair in many facultative and obligate anaerobic bacteria and archaea. Unlike the class I and II RNRs, where reducing equivalents for the reaction are delivered by a redoxin (thioredoxin, glutaredoxin, or NrdH) via a pair of conserved active site cysteines, the class III RNRs examined to date use formate as the reductant. Here, we report that reaction of the Escherichia coli class III RNR with CTP (substrate) and ATP (allosteric effector) in the absence of formate leads to loss of the G• concomitant with stoichiometric formation of a new radical species and a "trapped" cytidine derivative that can break down to cytosine. Addition of formate to the new species results in recovery of 80% of the G• and reduction of the cytidine derivative, proposed to be 3'-keto-deoxycytidine, to dCTP and a small amount of cytosine. The structure of the new radical has been identified by 9.5 and 140 GHz EPR spectroscopy on isotopically labeled varieties of the protein to be a thiosulfuranyl radical [RSSR&lt;sub&gt;2&lt;/sub&gt;]•, composed of a cysteine thiyl radical stabilized by an interaction with a methionine residue. The presence of a stable radical species on the reaction pathway rationalizes the previously reported [&lt;sup&gt;3&lt;/sup&gt;H]-(k&lt;sub&gt;cat&lt;/sub&gt;/K&lt;sub&gt;M&lt;/sub&gt;) isotope effect of 2.3 with [&lt;sup&gt;3&lt;/sup&gt;H]-formate, requiring formate to exchange between the active site and solution during nucleotide reduction. Analogies with the disulfide anion radical proposed to provide the reducing equivalent to the 3'-keto-deoxycytidine intermediate by the class I and II RNRs provide further evidence for the involvement of thiyl radicals in the reductive half-reaction catalyzed by all RNRs.</dcterms:abstract>
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kops.sourcefieldJournal of the American Chemical Society. 2014, <b>136</b>(25), pp. 9001-9013. ISSN 0002-7863. eISSN 1520-5126. Available under: doi: 10.1021/ja5030194deu
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