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Uncovering the Thermodynamics of Monomer Binding for RNA Replication

[Image: see text] The nonenzymatic replication of primordial RNA is thought to have been a critical step in the origin of life. However, despite decades of effort, the poor rate and fidelity of model template copying reactions have thus far prevented an experimental demonstration of nonenzymatic RNA...

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Autores principales: Izgu, Enver Cagri, Fahrenbach, Albert C., Zhang, Na, Li, Li, Zhang, Wen, Larsen, Aaron T., Blain, J. Craig, Szostak, Jack W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2015
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4984997/
https://www.ncbi.nlm.nih.gov/pubmed/25901790
http://dx.doi.org/10.1021/jacs.5b02707
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author Izgu, Enver Cagri
Fahrenbach, Albert C.
Zhang, Na
Li, Li
Zhang, Wen
Larsen, Aaron T.
Blain, J. Craig
Szostak, Jack W.
author_facet Izgu, Enver Cagri
Fahrenbach, Albert C.
Zhang, Na
Li, Li
Zhang, Wen
Larsen, Aaron T.
Blain, J. Craig
Szostak, Jack W.
author_sort Izgu, Enver Cagri
collection PubMed
description [Image: see text] The nonenzymatic replication of primordial RNA is thought to have been a critical step in the origin of life. However, despite decades of effort, the poor rate and fidelity of model template copying reactions have thus far prevented an experimental demonstration of nonenzymatic RNA replication. The overall rate and fidelity of template copying depend, in part, on the affinity of free ribonucleotides to the RNA primer–template complex. We have now used (1)H NMR spectroscopy to directly measure the thermodynamic association constants, K(a)s, of the standard ribonucleotide monophosphates (rNMPs) to native RNA primer–template complexes. The binding affinities of rNMPs to duplexes with a complementary single-nucleotide overhang follow the order C > G > A > U. Notably, these monomers bind more strongly to RNA primer–template complexes than to the analogous DNA complexes. The relative binding affinities of the rNMPs for complementary RNA primer–template complexes are in good quantitative agreement with the predictions of a nearest-neighbor analysis. With respect to G:U wobble base-pairing, we find that the binding of rGMP to a primer–template complex with a 5′-U overhang is approximately 10-fold weaker than to the complementary 5′-C overhang. We also find that the binding of rGMP is only about 2-fold weaker than the binding of rAMP to 5′-U, consistent with the poor fidelity observed in the nonenzymatic copying of U residues in RNA templates. The accurate K(a) measurements for ribonucleotides obtained in this study will be useful for designing higher fidelity, more effective RNA replication systems.
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spelling pubmed-49849972016-08-17 Uncovering the Thermodynamics of Monomer Binding for RNA Replication Izgu, Enver Cagri Fahrenbach, Albert C. Zhang, Na Li, Li Zhang, Wen Larsen, Aaron T. Blain, J. Craig Szostak, Jack W. J Am Chem Soc [Image: see text] The nonenzymatic replication of primordial RNA is thought to have been a critical step in the origin of life. However, despite decades of effort, the poor rate and fidelity of model template copying reactions have thus far prevented an experimental demonstration of nonenzymatic RNA replication. The overall rate and fidelity of template copying depend, in part, on the affinity of free ribonucleotides to the RNA primer–template complex. We have now used (1)H NMR spectroscopy to directly measure the thermodynamic association constants, K(a)s, of the standard ribonucleotide monophosphates (rNMPs) to native RNA primer–template complexes. The binding affinities of rNMPs to duplexes with a complementary single-nucleotide overhang follow the order C > G > A > U. Notably, these monomers bind more strongly to RNA primer–template complexes than to the analogous DNA complexes. The relative binding affinities of the rNMPs for complementary RNA primer–template complexes are in good quantitative agreement with the predictions of a nearest-neighbor analysis. With respect to G:U wobble base-pairing, we find that the binding of rGMP to a primer–template complex with a 5′-U overhang is approximately 10-fold weaker than to the complementary 5′-C overhang. We also find that the binding of rGMP is only about 2-fold weaker than the binding of rAMP to 5′-U, consistent with the poor fidelity observed in the nonenzymatic copying of U residues in RNA templates. The accurate K(a) measurements for ribonucleotides obtained in this study will be useful for designing higher fidelity, more effective RNA replication systems. American Chemical Society 2015-04-22 2015-05-20 /pmc/articles/PMC4984997/ /pubmed/25901790 http://dx.doi.org/10.1021/jacs.5b02707 Text en Copyright © 2015 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Izgu, Enver Cagri
Fahrenbach, Albert C.
Zhang, Na
Li, Li
Zhang, Wen
Larsen, Aaron T.
Blain, J. Craig
Szostak, Jack W.
Uncovering the Thermodynamics of Monomer Binding for RNA Replication
title Uncovering the Thermodynamics of Monomer Binding for RNA Replication
title_full Uncovering the Thermodynamics of Monomer Binding for RNA Replication
title_fullStr Uncovering the Thermodynamics of Monomer Binding for RNA Replication
title_full_unstemmed Uncovering the Thermodynamics of Monomer Binding for RNA Replication
title_short Uncovering the Thermodynamics of Monomer Binding for RNA Replication
title_sort uncovering the thermodynamics of monomer binding for rna replication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4984997/
https://www.ncbi.nlm.nih.gov/pubmed/25901790
http://dx.doi.org/10.1021/jacs.5b02707
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