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Preferential formation of specific hexose and heptose in the formose reaction under microwave irradiation

To realize sustainable societies, the production of organic compounds not based on fossil resources should be developed. Thus, C1 chemistry, utilizing one-carbon compounds as starting materials, has been of increasing importance. In particular, the formose reaction is promising because the reaction...

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Autores principales: Hashidzume, Akihito, Imai, Toru, Deguchi, Nanako, Tanibayashi, Takashi, Ikeda, Takumi, Michitaka, Tomohiro, Kuwahara, Satoki, Nakahata, Masaki, Kamon, Yuri, Todokoro, Yasuto
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/PMC9890655/
https://www.ncbi.nlm.nih.gov/pubmed/36756559
http://dx.doi.org/10.1039/d2ra07249a
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author Hashidzume, Akihito
Imai, Toru
Deguchi, Nanako
Tanibayashi, Takashi
Ikeda, Takumi
Michitaka, Tomohiro
Kuwahara, Satoki
Nakahata, Masaki
Kamon, Yuri
Todokoro, Yasuto
author_facet Hashidzume, Akihito
Imai, Toru
Deguchi, Nanako
Tanibayashi, Takashi
Ikeda, Takumi
Michitaka, Tomohiro
Kuwahara, Satoki
Nakahata, Masaki
Kamon, Yuri
Todokoro, Yasuto
author_sort Hashidzume, Akihito
collection PubMed
description To realize sustainable societies, the production of organic compounds not based on fossil resources should be developed. Thus, C1 chemistry, utilizing one-carbon compounds as starting materials, has been of increasing importance. In particular, the formose reaction is promising because the reaction produces sugars (monosaccharides) from formaldehyde under basic conditions. On the other hand, since microwave (MW) induces the rotational motion of molecules, MW irradiation often improves the selectivity and efficiency of reactions. In this study, the formose reaction under MW irradiation was thus investigated under various conditions. The formose reaction proceeded very fast using 1.0 mol per kg formaldehyde and 55 mmol per kg calcium hydroxide (Ca(OH)(2)) as a catalyst at a high set temperature (150 °C) for a short time (1 min) to form preferentially specific hexose and heptose. The major products were isolated by thin layer chromatography and characterized by mass spectroscopy and NMR. These characterization data elucidated that the hexose and heptose were 2-hydroxymethyl-1,2,4,5-tetrahydroxy-3-pentanone (C6*) and 2,4-bis(hydroxymethyl)-1,2,4,5-tetrahydroxy-3-pentanone (C7*), respectively. On the basis of these observations, as well as density functional theory calculations, a plausible reaction pathway was also discussed; once 1,3-dihydroxyacetone is formed, consecutive aldol reactions favorably occur to form C6* and C7*.
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spelling pubmed-98906552023-02-07 Preferential formation of specific hexose and heptose in the formose reaction under microwave irradiation Hashidzume, Akihito Imai, Toru Deguchi, Nanako Tanibayashi, Takashi Ikeda, Takumi Michitaka, Tomohiro Kuwahara, Satoki Nakahata, Masaki Kamon, Yuri Todokoro, Yasuto RSC Adv Chemistry To realize sustainable societies, the production of organic compounds not based on fossil resources should be developed. Thus, C1 chemistry, utilizing one-carbon compounds as starting materials, has been of increasing importance. In particular, the formose reaction is promising because the reaction produces sugars (monosaccharides) from formaldehyde under basic conditions. On the other hand, since microwave (MW) induces the rotational motion of molecules, MW irradiation often improves the selectivity and efficiency of reactions. In this study, the formose reaction under MW irradiation was thus investigated under various conditions. The formose reaction proceeded very fast using 1.0 mol per kg formaldehyde and 55 mmol per kg calcium hydroxide (Ca(OH)(2)) as a catalyst at a high set temperature (150 °C) for a short time (1 min) to form preferentially specific hexose and heptose. The major products were isolated by thin layer chromatography and characterized by mass spectroscopy and NMR. These characterization data elucidated that the hexose and heptose were 2-hydroxymethyl-1,2,4,5-tetrahydroxy-3-pentanone (C6*) and 2,4-bis(hydroxymethyl)-1,2,4,5-tetrahydroxy-3-pentanone (C7*), respectively. On the basis of these observations, as well as density functional theory calculations, a plausible reaction pathway was also discussed; once 1,3-dihydroxyacetone is formed, consecutive aldol reactions favorably occur to form C6* and C7*. The Royal Society of Chemistry 2023-01-30 /pmc/articles/PMC9890655/ /pubmed/36756559 http://dx.doi.org/10.1039/d2ra07249a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Hashidzume, Akihito
Imai, Toru
Deguchi, Nanako
Tanibayashi, Takashi
Ikeda, Takumi
Michitaka, Tomohiro
Kuwahara, Satoki
Nakahata, Masaki
Kamon, Yuri
Todokoro, Yasuto
Preferential formation of specific hexose and heptose in the formose reaction under microwave irradiation
title Preferential formation of specific hexose and heptose in the formose reaction under microwave irradiation
title_full Preferential formation of specific hexose and heptose in the formose reaction under microwave irradiation
title_fullStr Preferential formation of specific hexose and heptose in the formose reaction under microwave irradiation
title_full_unstemmed Preferential formation of specific hexose and heptose in the formose reaction under microwave irradiation
title_short Preferential formation of specific hexose and heptose in the formose reaction under microwave irradiation
title_sort preferential formation of specific hexose and heptose in the formose reaction under microwave irradiation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9890655/
https://www.ncbi.nlm.nih.gov/pubmed/36756559
http://dx.doi.org/10.1039/d2ra07249a
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