Cargando…
Construction of an autocatalytic reaction cycle in neutral medium for synthesis of life-sustaining sugars
Autocatalytic mechanisms in carbon metabolism, such as the Calvin cycle, are responsible for the biological assimilation of CO(2) to form organic compounds with complex structures, including sugars. Compounds that form C–C bonds with CO(2) are regenerated in these autocatalytic reaction cycles, and...
Autores principales: | , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
The Royal Society of Chemistry
2023
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10685314/ https://www.ncbi.nlm.nih.gov/pubmed/38033894 http://dx.doi.org/10.1039/d3sc03377e |
_version_ | 1785151603979845632 |
---|---|
author | Tabata, Hiro Chikatani, Genta Nishijima, Hiroaki Harada, Takashi Miyake, Rika Kato, Souichiro Igarashi, Kensuke Mukouyama, Yoshiharu Shirai, Soichi Waki, Minoru Hase, Yoko Nakanishi, Shuji |
author_facet | Tabata, Hiro Chikatani, Genta Nishijima, Hiroaki Harada, Takashi Miyake, Rika Kato, Souichiro Igarashi, Kensuke Mukouyama, Yoshiharu Shirai, Soichi Waki, Minoru Hase, Yoko Nakanishi, Shuji |
author_sort | Tabata, Hiro |
collection | PubMed |
description | Autocatalytic mechanisms in carbon metabolism, such as the Calvin cycle, are responsible for the biological assimilation of CO(2) to form organic compounds with complex structures, including sugars. Compounds that form C–C bonds with CO(2) are regenerated in these autocatalytic reaction cycles, and the products are concurrently released. The formose reaction in basic aqueous solution has attracted attention as a nonbiological reaction involving an autocatalytic reaction cycle that non-enzymatically synthesizes sugars from the C1 compound formaldehyde. However, formaldehyde and sugars, which are the substrate and products of the formose reaction, respectively, are consumed in Cannizzaro reactions, particularly under basic aqueous conditions, which makes the formose reaction a fragile sugar-production system. Here, we constructed an autocatalytic reaction cycle for sugar synthesis under neutral conditions. We focused on the weak Brønsted basicity of oxometalate anions such as tungstates and molybdates as catalysts, thereby enabling the aldol reaction, retro-aldol reaction, and aldose–ketose transformation, which collectively constitute the autocatalytic reaction cycle. These bases acted on sugar molecules of substrates together with sodium ions of a Lewis acid to promote deprotonation under neutral conditions, which is the initiation step of the reactions forming an autocatalytic cycle, whereas the Cannizzaro reaction was inhibited. The autocatalytic reaction cycle established using this abiotic approach is a robust sugar production system. Furthermore, we found that the synthesized sugars work as energy storage substances that sustain microbial growth despite their absence in nature. |
format | Online Article Text |
id | pubmed-10685314 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2023 |
publisher | The Royal Society of Chemistry |
record_format | MEDLINE/PubMed |
spelling | pubmed-106853142023-11-30 Construction of an autocatalytic reaction cycle in neutral medium for synthesis of life-sustaining sugars Tabata, Hiro Chikatani, Genta Nishijima, Hiroaki Harada, Takashi Miyake, Rika Kato, Souichiro Igarashi, Kensuke Mukouyama, Yoshiharu Shirai, Soichi Waki, Minoru Hase, Yoko Nakanishi, Shuji Chem Sci Chemistry Autocatalytic mechanisms in carbon metabolism, such as the Calvin cycle, are responsible for the biological assimilation of CO(2) to form organic compounds with complex structures, including sugars. Compounds that form C–C bonds with CO(2) are regenerated in these autocatalytic reaction cycles, and the products are concurrently released. The formose reaction in basic aqueous solution has attracted attention as a nonbiological reaction involving an autocatalytic reaction cycle that non-enzymatically synthesizes sugars from the C1 compound formaldehyde. However, formaldehyde and sugars, which are the substrate and products of the formose reaction, respectively, are consumed in Cannizzaro reactions, particularly under basic aqueous conditions, which makes the formose reaction a fragile sugar-production system. Here, we constructed an autocatalytic reaction cycle for sugar synthesis under neutral conditions. We focused on the weak Brønsted basicity of oxometalate anions such as tungstates and molybdates as catalysts, thereby enabling the aldol reaction, retro-aldol reaction, and aldose–ketose transformation, which collectively constitute the autocatalytic reaction cycle. These bases acted on sugar molecules of substrates together with sodium ions of a Lewis acid to promote deprotonation under neutral conditions, which is the initiation step of the reactions forming an autocatalytic cycle, whereas the Cannizzaro reaction was inhibited. The autocatalytic reaction cycle established using this abiotic approach is a robust sugar production system. Furthermore, we found that the synthesized sugars work as energy storage substances that sustain microbial growth despite their absence in nature. The Royal Society of Chemistry 2023-10-09 /pmc/articles/PMC10685314/ /pubmed/38033894 http://dx.doi.org/10.1039/d3sc03377e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/ |
spellingShingle | Chemistry Tabata, Hiro Chikatani, Genta Nishijima, Hiroaki Harada, Takashi Miyake, Rika Kato, Souichiro Igarashi, Kensuke Mukouyama, Yoshiharu Shirai, Soichi Waki, Minoru Hase, Yoko Nakanishi, Shuji Construction of an autocatalytic reaction cycle in neutral medium for synthesis of life-sustaining sugars |
title | Construction of an autocatalytic reaction cycle in neutral medium for synthesis of life-sustaining sugars |
title_full | Construction of an autocatalytic reaction cycle in neutral medium for synthesis of life-sustaining sugars |
title_fullStr | Construction of an autocatalytic reaction cycle in neutral medium for synthesis of life-sustaining sugars |
title_full_unstemmed | Construction of an autocatalytic reaction cycle in neutral medium for synthesis of life-sustaining sugars |
title_short | Construction of an autocatalytic reaction cycle in neutral medium for synthesis of life-sustaining sugars |
title_sort | construction of an autocatalytic reaction cycle in neutral medium for synthesis of life-sustaining sugars |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10685314/ https://www.ncbi.nlm.nih.gov/pubmed/38033894 http://dx.doi.org/10.1039/d3sc03377e |
work_keys_str_mv | AT tabatahiro constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT chikatanigenta constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT nishijimahiroaki constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT haradatakashi constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT miyakerika constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT katosouichiro constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT igarashikensuke constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT mukouyamayoshiharu constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT shiraisoichi constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT wakiminoru constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT haseyoko constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars AT nakanishishuji constructionofanautocatalyticreactioncycleinneutralmediumforsynthesisoflifesustainingsugars |