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Observation of the Unbiased Conformers of Putative DNA-Scaffold Ribosugars

[Image: see text] The constitution, configuration, and flexibility of the core sugars of DNA molecules alter their function in diverse roles. Conformational itineraries of the ribofuranosides (fs) have long been known to finely determine rates of processing, yet we also know that, strikingly, semifu...

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Autores principales: Calabrese, Camilla, Uriarte, Iciar, Insausti, Aran, Vallejo-López, Montserrat, Basterretxea, Francisco J., Cochrane, Stephen A., Davis, Benjamin G., Corzana, Francisco, Cocinero, Emilio J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7047431/
https://www.ncbi.nlm.nih.gov/pubmed/32123748
http://dx.doi.org/10.1021/acscentsci.9b01277
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author Calabrese, Camilla
Uriarte, Iciar
Insausti, Aran
Vallejo-López, Montserrat
Basterretxea, Francisco J.
Cochrane, Stephen A.
Davis, Benjamin G.
Corzana, Francisco
Cocinero, Emilio J.
author_facet Calabrese, Camilla
Uriarte, Iciar
Insausti, Aran
Vallejo-López, Montserrat
Basterretxea, Francisco J.
Cochrane, Stephen A.
Davis, Benjamin G.
Corzana, Francisco
Cocinero, Emilio J.
author_sort Calabrese, Camilla
collection PubMed
description [Image: see text] The constitution, configuration, and flexibility of the core sugars of DNA molecules alter their function in diverse roles. Conformational itineraries of the ribofuranosides (fs) have long been known to finely determine rates of processing, yet we also know that, strikingly, semifunctional DNAs containing pyranosides (ps) or other configurations can be created, suggesting sufficient but incompletely understood plasticity. The multiple conformers involved in such processes are necessarily influenced by context and environment: solvent, hosts, ligands. Notably, however, to date the unbiased, “naked” conformers have not been experimentally determined. Here, the inherent conformational biases of DNA scaffold deoxyribosides in unsolvated and solvated forms have now been defined using gas-phase microwave and solution-phase NMR spectroscopies coupled with computational analyses and exploitation of critical differences between natural-abundance isotopologues. Serial determination of precise, individual spectra for conformers of these 25 isotopologues in alpha (α-d) and beta (β-d); pyrano (p) and furano (f) methyl 2-deoxy-d-ribosides gave not only unprecedented atomic-level resolution structures of associated conformers but also their quantitative populations. Together these experiments revealed that typical (2)E and (3)E conformations of the sugar found in complex DNA structures are not inherently populated. Moreover, while both OH-5′ and OH-3′ are constrained by intramolecular hydrogen bonding in the unnatural αf scaffold, OH-3′ is “born free” in the “naked” lowest lying energy conformer of natural βf. Consequently, upon solvation, unnatural αf is strikingly less perturbable (retaining (2)T(1) conformation in vacuo and water) than natural βf. Unnatural αp and βp ribosides also display low conformational perturbability. These first experimental data on inherent, unbiased conformers therefore suggest that it is the background of conformational flexibility of βf that may have led to its emergence out of multiple possibilities as the sugar scaffold for “life’s code” and suggest a mechanism by which the resulting freedom of OH-3′ (and hence accessibility as a nucleophile) in βf may drive preferential processing and complex structure formation, such as replicative propagation of DNA from 5′-to-3′.
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spelling pubmed-70474312020-03-02 Observation of the Unbiased Conformers of Putative DNA-Scaffold Ribosugars Calabrese, Camilla Uriarte, Iciar Insausti, Aran Vallejo-López, Montserrat Basterretxea, Francisco J. Cochrane, Stephen A. Davis, Benjamin G. Corzana, Francisco Cocinero, Emilio J. ACS Cent Sci [Image: see text] The constitution, configuration, and flexibility of the core sugars of DNA molecules alter their function in diverse roles. Conformational itineraries of the ribofuranosides (fs) have long been known to finely determine rates of processing, yet we also know that, strikingly, semifunctional DNAs containing pyranosides (ps) or other configurations can be created, suggesting sufficient but incompletely understood plasticity. The multiple conformers involved in such processes are necessarily influenced by context and environment: solvent, hosts, ligands. Notably, however, to date the unbiased, “naked” conformers have not been experimentally determined. Here, the inherent conformational biases of DNA scaffold deoxyribosides in unsolvated and solvated forms have now been defined using gas-phase microwave and solution-phase NMR spectroscopies coupled with computational analyses and exploitation of critical differences between natural-abundance isotopologues. Serial determination of precise, individual spectra for conformers of these 25 isotopologues in alpha (α-d) and beta (β-d); pyrano (p) and furano (f) methyl 2-deoxy-d-ribosides gave not only unprecedented atomic-level resolution structures of associated conformers but also their quantitative populations. Together these experiments revealed that typical (2)E and (3)E conformations of the sugar found in complex DNA structures are not inherently populated. Moreover, while both OH-5′ and OH-3′ are constrained by intramolecular hydrogen bonding in the unnatural αf scaffold, OH-3′ is “born free” in the “naked” lowest lying energy conformer of natural βf. Consequently, upon solvation, unnatural αf is strikingly less perturbable (retaining (2)T(1) conformation in vacuo and water) than natural βf. Unnatural αp and βp ribosides also display low conformational perturbability. These first experimental data on inherent, unbiased conformers therefore suggest that it is the background of conformational flexibility of βf that may have led to its emergence out of multiple possibilities as the sugar scaffold for “life’s code” and suggest a mechanism by which the resulting freedom of OH-3′ (and hence accessibility as a nucleophile) in βf may drive preferential processing and complex structure formation, such as replicative propagation of DNA from 5′-to-3′. American Chemical Society 2020-02-18 2020-02-26 /pmc/articles/PMC7047431/ /pubmed/32123748 http://dx.doi.org/10.1021/acscentsci.9b01277 Text en Copyright © 2020 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 Calabrese, Camilla
Uriarte, Iciar
Insausti, Aran
Vallejo-López, Montserrat
Basterretxea, Francisco J.
Cochrane, Stephen A.
Davis, Benjamin G.
Corzana, Francisco
Cocinero, Emilio J.
Observation of the Unbiased Conformers of Putative DNA-Scaffold Ribosugars
title Observation of the Unbiased Conformers of Putative DNA-Scaffold Ribosugars
title_full Observation of the Unbiased Conformers of Putative DNA-Scaffold Ribosugars
title_fullStr Observation of the Unbiased Conformers of Putative DNA-Scaffold Ribosugars
title_full_unstemmed Observation of the Unbiased Conformers of Putative DNA-Scaffold Ribosugars
title_short Observation of the Unbiased Conformers of Putative DNA-Scaffold Ribosugars
title_sort observation of the unbiased conformers of putative dna-scaffold ribosugars
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7047431/
https://www.ncbi.nlm.nih.gov/pubmed/32123748
http://dx.doi.org/10.1021/acscentsci.9b01277
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