Andreea Veronica Dediu Botezatu, Gabriela Elena Bahrim, Claudia Veronica Ungureanu, Anna Cazanevscaia Busuioc, Bianca Furdui, Rodica Mihaela Dinica
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Most of these biocatalysts containing enzymes from the oxidoreductase class (peroxidase: 0.56–1.08 mmol purpurogallin‧g −1 fresh weight‧min −1 , polyphenol oxidase (PPO) : 27.19–48.95 PPO units‧mg tissue −1 , CAT: 3.27–21.71 µmol O 2 ‧g −1 fresh weight‧min −1 ), were used as green catalysts in the multi-component cycloaddition reaction, in an aqueous buffer solution, for the production of bis-indolizine compounds in moderate to excellent yields (45–85%). The horseradish root ( Armoracia rusticana ) has been selected as the most promising biocatalyst source among the evaluated plants, and the obtained yields were greater than in the conventional synthesis method. The structures of indolizine derivatives were confirmed by nuclear magnetic resonance spectra, elemental analyses, as well as Fourier transform-infrared spectra. The cytotoxicity of the latter obtained indolizine compounds on the growth of the model microorganism, Saccharomyces cerevisiae MIUG 3.6 yeast strain, was also evaluated. Various parameters (number of generations, growth rate, generation time, dry matter yield, the degree of the budding yeast cells, and the degree of yeast autolysis, fermentation intensity), which describe the yeast growth, suggest that the nutrient broth supplemented with different concentrations of bis-indolizine compounds (10 and 1 µM) had no toxic effect on the yeast strain growth, under submerged cultivation conditions.","PeriodicalId":12758,"journal":{"name":"Green Processing and Synthesis","volume":"33 1","pages":"0"},"PeriodicalIF":3.8000,"publicationDate":"2023-01-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Green “one-pot” fluorescent bis-indolizine synthesis with whole-cell plant biocatalysis\",\"authors\":\"Andreea Veronica Dediu Botezatu, Gabriela Elena Bahrim, Claudia Veronica Ungureanu, Anna Cazanevscaia Busuioc, Bianca Furdui, Rodica Mihaela Dinica\",\"doi\":\"10.1515/gps-2023-0046\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Abstract An efficient one-pot route leading to bis-indolizine symmetric compounds has been developed via a new approach from the dipyridinium heterocyclic compound, reactive halogenated derivative, and activated alkyne through biocatalysis. 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引用次数: 0
摘要
摘要以双吡啶杂环化合物、反应性卤化衍生物和活化炔为原料,通过生物催化,建立了一条高效的一锅法合成双吲哚嘧啶对称化合物的新途径。评价了一组本地植物在“一锅”生物催化这些有价值的荧光化合物合成反应中的催化潜力。这些生物催化剂大多含有氧化还原酶类的酶(过氧化物酶:0.56-1.08 mmol purpurogallin·g−1鲜重·min−1,多酚氧化酶(PPO): 27.19-48.95 PPO单位·mg组织−1,CAT: 3.27-21.71µmol O 2·g−1鲜重·min−1),在多组分环加成反应中用作绿色催化剂,在水缓冲溶液中以中高收率(45-85%)生产双吲哚嗪类化合物。在评价植物中,辣根(Armoracia rusticana)被认为是最有前途的生物催化剂来源,其产率高于传统的合成方法。用核磁共振谱、元素分析和傅里叶变换红外光谱对吲哚啉衍生物的结构进行了确证。并对后者获得的吲哚嗪类化合物对模式微生物酿酒酵母MIUG 3.6酵母菌的细胞毒性进行了评价。描述酵母生长的各项参数(代数、生长速率、世代时间、干物质产量、酵母细胞出芽程度、酵母自溶程度、发酵强度)表明,在潜水培养条件下,添加不同浓度双吲哚嗪化合物(10µM和1µM)的营养液对酵母菌株生长没有毒性影响。
Green “one-pot” fluorescent bis-indolizine synthesis with whole-cell plant biocatalysis
Abstract An efficient one-pot route leading to bis-indolizine symmetric compounds has been developed via a new approach from the dipyridinium heterocyclic compound, reactive halogenated derivative, and activated alkyne through biocatalysis. A set of local plants was evaluated for its catalytic potential in “one-pot” biocatalysis of these valuable fluorescent compound synthesis reactions. Most of these biocatalysts containing enzymes from the oxidoreductase class (peroxidase: 0.56–1.08 mmol purpurogallin‧g −1 fresh weight‧min −1 , polyphenol oxidase (PPO) : 27.19–48.95 PPO units‧mg tissue −1 , CAT: 3.27–21.71 µmol O 2 ‧g −1 fresh weight‧min −1 ), were used as green catalysts in the multi-component cycloaddition reaction, in an aqueous buffer solution, for the production of bis-indolizine compounds in moderate to excellent yields (45–85%). The horseradish root ( Armoracia rusticana ) has been selected as the most promising biocatalyst source among the evaluated plants, and the obtained yields were greater than in the conventional synthesis method. The structures of indolizine derivatives were confirmed by nuclear magnetic resonance spectra, elemental analyses, as well as Fourier transform-infrared spectra. The cytotoxicity of the latter obtained indolizine compounds on the growth of the model microorganism, Saccharomyces cerevisiae MIUG 3.6 yeast strain, was also evaluated. Various parameters (number of generations, growth rate, generation time, dry matter yield, the degree of the budding yeast cells, and the degree of yeast autolysis, fermentation intensity), which describe the yeast growth, suggest that the nutrient broth supplemented with different concentrations of bis-indolizine compounds (10 and 1 µM) had no toxic effect on the yeast strain growth, under submerged cultivation conditions.
期刊介绍:
Green Processing and Synthesis is a bimonthly, peer-reviewed journal that provides up-to-date research both on fundamental as well as applied aspects of innovative green process development and chemical synthesis, giving an appropriate share to industrial views. The contributions are cutting edge, high-impact, authoritative, and provide both pros and cons of potential technologies. Green Processing and Synthesis provides a platform for scientists and engineers, especially chemists and chemical engineers, but is also open for interdisciplinary research from other areas such as physics, materials science, or catalysis.