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Ultraviolet-Driven Deamination of Cytidine Ribonucleotides Under Planetary Conditions

A previously proposed synthesis of pyrimidine ribonucleotides makes use of ultraviolet (UV) light to convert β-d-ribocytidine-2′,3′-cyclic phosphate to β-d-ribouridine-2′,3′-cyclic phosphate, while simultaneously selectively degrading synthetic byproducts. Past studies of the photochemical reactions...

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Autores principales: Todd, Zoe R., Fahrenbach, Albert C., Ranjan, Sukrit, Magnani, Christopher J., Szostak, Jack W., Sasselov, Dimitar D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Mary Ann Liebert, Inc., publishers 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9634989/
https://www.ncbi.nlm.nih.gov/pubmed/32267736
http://dx.doi.org/10.1089/ast.2019.2182
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author Todd, Zoe R.
Fahrenbach, Albert C.
Ranjan, Sukrit
Magnani, Christopher J.
Szostak, Jack W.
Sasselov, Dimitar D.
author_facet Todd, Zoe R.
Fahrenbach, Albert C.
Ranjan, Sukrit
Magnani, Christopher J.
Szostak, Jack W.
Sasselov, Dimitar D.
author_sort Todd, Zoe R.
collection PubMed
description A previously proposed synthesis of pyrimidine ribonucleotides makes use of ultraviolet (UV) light to convert β-d-ribocytidine-2′,3′-cyclic phosphate to β-d-ribouridine-2′,3′-cyclic phosphate, while simultaneously selectively degrading synthetic byproducts. Past studies of the photochemical reactions of pyrimidines have employed mercury arc lamps, characterized by narrowband emission centered at 254 nm, which is not representative of the UV environment of the early Earth. To further assess this process under more realistic circumstances, we investigated the wavelength dependence of the UV-driven conversion of β-d-ribocytidine-2′,3′-cyclic phosphate to β-d-ribouridine-2′,3′-cyclic phosphate. We used constraints provided by planetary environments to assess the implications for pyrimidine nucleotides on the early Earth. We found that the wavelengths of light (255–285 nm) that most efficiently drive the deamination of β-d-ribocytidine-2′,3′-cyclic phosphate to β-d-ribouridine-2′,3′-cyclic phosphate are accessible on planetary surfaces such as those of the Hadean-Archaean Earth for CO(2)-N(2)-dominated atmospheres. However, continued irradiation could eventually lead to low levels of ribocytidine in a low-temperature, highly irradiated environment, if production rates are slow.
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spelling pubmed-96349892022-11-04 Ultraviolet-Driven Deamination of Cytidine Ribonucleotides Under Planetary Conditions Todd, Zoe R. Fahrenbach, Albert C. Ranjan, Sukrit Magnani, Christopher J. Szostak, Jack W. Sasselov, Dimitar D. Astrobiology Research Articles A previously proposed synthesis of pyrimidine ribonucleotides makes use of ultraviolet (UV) light to convert β-d-ribocytidine-2′,3′-cyclic phosphate to β-d-ribouridine-2′,3′-cyclic phosphate, while simultaneously selectively degrading synthetic byproducts. Past studies of the photochemical reactions of pyrimidines have employed mercury arc lamps, characterized by narrowband emission centered at 254 nm, which is not representative of the UV environment of the early Earth. To further assess this process under more realistic circumstances, we investigated the wavelength dependence of the UV-driven conversion of β-d-ribocytidine-2′,3′-cyclic phosphate to β-d-ribouridine-2′,3′-cyclic phosphate. We used constraints provided by planetary environments to assess the implications for pyrimidine nucleotides on the early Earth. We found that the wavelengths of light (255–285 nm) that most efficiently drive the deamination of β-d-ribocytidine-2′,3′-cyclic phosphate to β-d-ribouridine-2′,3′-cyclic phosphate are accessible on planetary surfaces such as those of the Hadean-Archaean Earth for CO(2)-N(2)-dominated atmospheres. However, continued irradiation could eventually lead to low levels of ribocytidine in a low-temperature, highly irradiated environment, if production rates are slow. Mary Ann Liebert, Inc., publishers 2020-07-01 2020-07-08 /pmc/articles/PMC9634989/ /pubmed/32267736 http://dx.doi.org/10.1089/ast.2019.2182 Text en © Zoe R. Todd et al., 2020; Published by Mary Ann Liebert, Inc. https://creativecommons.org/licenses/by/4.0/This Open Access article is distributed under the terms of the Creative Commons License (http://creativecommons.org/licenses/by/4.0 (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited.
spellingShingle Research Articles
Todd, Zoe R.
Fahrenbach, Albert C.
Ranjan, Sukrit
Magnani, Christopher J.
Szostak, Jack W.
Sasselov, Dimitar D.
Ultraviolet-Driven Deamination of Cytidine Ribonucleotides Under Planetary Conditions
title Ultraviolet-Driven Deamination of Cytidine Ribonucleotides Under Planetary Conditions
title_full Ultraviolet-Driven Deamination of Cytidine Ribonucleotides Under Planetary Conditions
title_fullStr Ultraviolet-Driven Deamination of Cytidine Ribonucleotides Under Planetary Conditions
title_full_unstemmed Ultraviolet-Driven Deamination of Cytidine Ribonucleotides Under Planetary Conditions
title_short Ultraviolet-Driven Deamination of Cytidine Ribonucleotides Under Planetary Conditions
title_sort ultraviolet-driven deamination of cytidine ribonucleotides under planetary conditions
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9634989/
https://www.ncbi.nlm.nih.gov/pubmed/32267736
http://dx.doi.org/10.1089/ast.2019.2182
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