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Oxazolidine Transient Bases as Molecular Platforms for Testing Dynamic CO(2) Capture in Biochemical Systems

[Image: see text] Understanding the dynamic processes of CO(2) capture in biosystems is important because of the great effect CO(2) has on the carbon cycle, human health, the global climate, and living environments. After years of multidisciplinary studies, researchers have gained only basic mechani...

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Autores principales: Sheng, Lan, Chen, Qiaonan, Wang, Chunyu, Chen, Hongwei, Zhang, Ting, Qin, Tianyou, Li, Minjie, Zhang, Jinyan, Ma, Jing, Zhang, Sean Xiao-An
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6641322/
https://www.ncbi.nlm.nih.gov/pubmed/31458560
http://dx.doi.org/10.1021/acsomega.7b02028
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author Sheng, Lan
Chen, Qiaonan
Wang, Chunyu
Chen, Hongwei
Zhang, Ting
Qin, Tianyou
Li, Minjie
Zhang, Jinyan
Ma, Jing
Zhang, Sean Xiao-An
author_facet Sheng, Lan
Chen, Qiaonan
Wang, Chunyu
Chen, Hongwei
Zhang, Ting
Qin, Tianyou
Li, Minjie
Zhang, Jinyan
Ma, Jing
Zhang, Sean Xiao-An
author_sort Sheng, Lan
collection PubMed
description [Image: see text] Understanding the dynamic processes of CO(2) capture in biosystems is important because of the great effect CO(2) has on the carbon cycle, human health, the global climate, and living environments. After years of multidisciplinary studies, researchers have gained only basic mechanistic knowledge about how enzymes or protein-aggregates capture and deliver CO(2), a process involving reversible bonding of CO(2) with basic amino acid residues. However, vital mechanistic details of how the activated basic residues within these enzymes or protein-aggregates are initially formed, a crucial step for CO(2) capture, are still lacking. Herein, we designed specific molecules, i.e., oxazolidines, which are able to reversibly change their alkalinity via ultrafast isomerizations. Serving as so-called transient bases, these oxazolidines mimic the activated/deactivated states of enzymes or protein-aggregates responsible for dynamic CO(2) capture/release. A detailed mechanism for CO(2) capture, which involves dynamic covalent bonding and multimolecular cooperative interactions among functional groups that occur with the help of a polyhydroxyl environment, is demonstrated by UV−vis and multiple NMR spectroscopies as well as theoretical calculations. Using suitable oxazolidine transient bases, applications for visual CO(2) detection under different detection limit requirements were also developed. Insights for further understanding the process of dynamic CO(2) capture in biosystems are also discussed. This oxazolidine-inspired biomimetic CO(2) capture serves as a platform for the future development of additional biomimicking systems, as well as offers unique perspectives for other complicated life processes.
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spelling pubmed-66413222019-08-27 Oxazolidine Transient Bases as Molecular Platforms for Testing Dynamic CO(2) Capture in Biochemical Systems Sheng, Lan Chen, Qiaonan Wang, Chunyu Chen, Hongwei Zhang, Ting Qin, Tianyou Li, Minjie Zhang, Jinyan Ma, Jing Zhang, Sean Xiao-An ACS Omega [Image: see text] Understanding the dynamic processes of CO(2) capture in biosystems is important because of the great effect CO(2) has on the carbon cycle, human health, the global climate, and living environments. After years of multidisciplinary studies, researchers have gained only basic mechanistic knowledge about how enzymes or protein-aggregates capture and deliver CO(2), a process involving reversible bonding of CO(2) with basic amino acid residues. However, vital mechanistic details of how the activated basic residues within these enzymes or protein-aggregates are initially formed, a crucial step for CO(2) capture, are still lacking. Herein, we designed specific molecules, i.e., oxazolidines, which are able to reversibly change their alkalinity via ultrafast isomerizations. Serving as so-called transient bases, these oxazolidines mimic the activated/deactivated states of enzymes or protein-aggregates responsible for dynamic CO(2) capture/release. A detailed mechanism for CO(2) capture, which involves dynamic covalent bonding and multimolecular cooperative interactions among functional groups that occur with the help of a polyhydroxyl environment, is demonstrated by UV−vis and multiple NMR spectroscopies as well as theoretical calculations. Using suitable oxazolidine transient bases, applications for visual CO(2) detection under different detection limit requirements were also developed. Insights for further understanding the process of dynamic CO(2) capture in biosystems are also discussed. This oxazolidine-inspired biomimetic CO(2) capture serves as a platform for the future development of additional biomimicking systems, as well as offers unique perspectives for other complicated life processes. American Chemical Society 2018-03-09 /pmc/articles/PMC6641322/ /pubmed/31458560 http://dx.doi.org/10.1021/acsomega.7b02028 Text en Copyright © 2018 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 Sheng, Lan
Chen, Qiaonan
Wang, Chunyu
Chen, Hongwei
Zhang, Ting
Qin, Tianyou
Li, Minjie
Zhang, Jinyan
Ma, Jing
Zhang, Sean Xiao-An
Oxazolidine Transient Bases as Molecular Platforms for Testing Dynamic CO(2) Capture in Biochemical Systems
title Oxazolidine Transient Bases as Molecular Platforms for Testing Dynamic CO(2) Capture in Biochemical Systems
title_full Oxazolidine Transient Bases as Molecular Platforms for Testing Dynamic CO(2) Capture in Biochemical Systems
title_fullStr Oxazolidine Transient Bases as Molecular Platforms for Testing Dynamic CO(2) Capture in Biochemical Systems
title_full_unstemmed Oxazolidine Transient Bases as Molecular Platforms for Testing Dynamic CO(2) Capture in Biochemical Systems
title_short Oxazolidine Transient Bases as Molecular Platforms for Testing Dynamic CO(2) Capture in Biochemical Systems
title_sort oxazolidine transient bases as molecular platforms for testing dynamic co(2) capture in biochemical systems
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6641322/
https://www.ncbi.nlm.nih.gov/pubmed/31458560
http://dx.doi.org/10.1021/acsomega.7b02028
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