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A thermodynamic atlas of carbon redox chemical space

Redox biochemistry plays a key role in the transduction of chemical energy in living systems. However, the compounds observed in metabolic redox reactions are a minuscule fraction of chemical space. It is not clear whether compounds that ended up being selected as metabolites display specific proper...

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Autores principales: Jinich, Adrian, Sanchez-Lengeling, Benjamin, Ren, Haniu, Goldford, Joshua E., Noor, Elad, Sanders, Jacob N., Segrè, Daniel, Aspuru-Guzik, Alán
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7777073/
https://www.ncbi.nlm.nih.gov/pubmed/33376214
http://dx.doi.org/10.1073/pnas.2005642117
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author Jinich, Adrian
Sanchez-Lengeling, Benjamin
Ren, Haniu
Goldford, Joshua E.
Noor, Elad
Sanders, Jacob N.
Segrè, Daniel
Aspuru-Guzik, Alán
author_facet Jinich, Adrian
Sanchez-Lengeling, Benjamin
Ren, Haniu
Goldford, Joshua E.
Noor, Elad
Sanders, Jacob N.
Segrè, Daniel
Aspuru-Guzik, Alán
author_sort Jinich, Adrian
collection PubMed
description Redox biochemistry plays a key role in the transduction of chemical energy in living systems. However, the compounds observed in metabolic redox reactions are a minuscule fraction of chemical space. It is not clear whether compounds that ended up being selected as metabolites display specific properties that distinguish them from nonbiological compounds. Here, we introduce a systematic approach for comparing the chemical space of all possible redox states of linear-chain carbon molecules to the corresponding metabolites that appear in biology. Using cheminformatics and quantum chemistry, we analyze the physicochemical and thermodynamic properties of the biological and nonbiological compounds. We find that, among all compounds, aldose sugars have the highest possible number of redox connections to other molecules. Metabolites are enriched in carboxylic acid functional groups and depleted of ketones and aldehydes and have higher solubility than nonbiological compounds. Upon constructing the energy landscape for the full chemical space as a function of pH and electron-donor potential, we find that metabolites tend to have lower Gibbs energies than nonbiological molecules. Finally, we generate Pourbaix phase diagrams that serve as a thermodynamic atlas to indicate which compounds are energy minima in redox chemical space across a set of pH values and electron-donor potentials. While escape from thermodynamic equilibrium toward kinetically driven states is a hallmark of life and its origin, we envision that a deeper quantitative understanding of the environment-dependent thermodynamic landscape of putative prebiotic molecules will provide a crucial reference for future origins-of-life models.
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spelling pubmed-77770732021-01-12 A thermodynamic atlas of carbon redox chemical space Jinich, Adrian Sanchez-Lengeling, Benjamin Ren, Haniu Goldford, Joshua E. Noor, Elad Sanders, Jacob N. Segrè, Daniel Aspuru-Guzik, Alán Proc Natl Acad Sci U S A Physical Sciences Redox biochemistry plays a key role in the transduction of chemical energy in living systems. However, the compounds observed in metabolic redox reactions are a minuscule fraction of chemical space. It is not clear whether compounds that ended up being selected as metabolites display specific properties that distinguish them from nonbiological compounds. Here, we introduce a systematic approach for comparing the chemical space of all possible redox states of linear-chain carbon molecules to the corresponding metabolites that appear in biology. Using cheminformatics and quantum chemistry, we analyze the physicochemical and thermodynamic properties of the biological and nonbiological compounds. We find that, among all compounds, aldose sugars have the highest possible number of redox connections to other molecules. Metabolites are enriched in carboxylic acid functional groups and depleted of ketones and aldehydes and have higher solubility than nonbiological compounds. Upon constructing the energy landscape for the full chemical space as a function of pH and electron-donor potential, we find that metabolites tend to have lower Gibbs energies than nonbiological molecules. Finally, we generate Pourbaix phase diagrams that serve as a thermodynamic atlas to indicate which compounds are energy minima in redox chemical space across a set of pH values and electron-donor potentials. While escape from thermodynamic equilibrium toward kinetically driven states is a hallmark of life and its origin, we envision that a deeper quantitative understanding of the environment-dependent thermodynamic landscape of putative prebiotic molecules will provide a crucial reference for future origins-of-life models. National Academy of Sciences 2020-12-29 2020-12-21 /pmc/articles/PMC7777073/ /pubmed/33376214 http://dx.doi.org/10.1073/pnas.2005642117 Text en Copyright © 2020 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Physical Sciences
Jinich, Adrian
Sanchez-Lengeling, Benjamin
Ren, Haniu
Goldford, Joshua E.
Noor, Elad
Sanders, Jacob N.
Segrè, Daniel
Aspuru-Guzik, Alán
A thermodynamic atlas of carbon redox chemical space
title A thermodynamic atlas of carbon redox chemical space
title_full A thermodynamic atlas of carbon redox chemical space
title_fullStr A thermodynamic atlas of carbon redox chemical space
title_full_unstemmed A thermodynamic atlas of carbon redox chemical space
title_short A thermodynamic atlas of carbon redox chemical space
title_sort thermodynamic atlas of carbon redox chemical space
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7777073/
https://www.ncbi.nlm.nih.gov/pubmed/33376214
http://dx.doi.org/10.1073/pnas.2005642117
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