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Using Esterase and Laccase Enzymes to Derivatize Bioactive Plant Phenolics for Altered Chemistry.

机译:使用酯酶和漆酶来衍生生物活性植物酚类化合物,以改变化学反应。

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摘要

Plant phenolics have notable antioxidant activity and there is potential to improve their action by chemical modification. Two enzyme classes carry out reactions that can act on the hydroxyl moiety of phenolics. Esterase enzymes can be used in non-aqueous solvents to esterify a long chain acyl group onto the phenolic compound. Laccase enzymes can be used to form phenoxy radicals that can then couple to form larger molecular weight oligomers. Both enzymatic modifications may produce a new antioxidant with altered chemistry.;One archaeal esterase (AF1753) from Archaeoglobus fulgidus and one bacterial esterase (PP3645) from Pseudomonas putida were assayed for activity in organic solvents. Both enzymes catalyzed hydrolysis of phenyl acetate and vinyl acetate in 98:2 (v/v) (t-amyl alcohol):buffer; with continued activity up to 96 h of reaction. However, the enzymes were not able to catalyze transesterification of 4'-hydroxyacetophenone with vinyl acetate in 9:1 (v/v) cyclohexane:(t-amyl alcohol), which was not explained by enzyme inactivation during lyophilization. Still, alanine scanning mutagenesis revealed that R37A substitution improved activity of AF1753 on long-chain p-nitrophenyl (pNP) esters.;A multicopper oxidase (SCO6712) from Streptomyces coelicolor displayed activity on a variety of phenolics including caffeic acid, ferulic acid, resveratrol, quercetin, morin, kaempferol and myricetin. Among the products formed by action on flavonols were dimers of quercetin, morin, and myricetin. Quercetin and myricetin dimers showed longer retention time on reversed phase chromatography. All three dimers could be detected by 5 min of reaction but depleted by 3 h and 24 h. The TRAP and FRAP antioxidant activity of the whole reaction mixture of modified quercetin, morin, and myricetin decreased, as starting phenolic was depleted over 24 h. Accordingly, mass spectrometry was used to shed light on the molecular structure of the dimers produced from quercetin and myricetin. In both cases, mass spectrometric analyses ruled out dimer formation through the A ring of each monomer. For myricetin, the most likely linkage structure was determined to be between either two B rings or a B ring with a C ring. These predicted linkage positions are in agreement to those observed for quercetin dimers previously extracted from natural plant sources.
机译:植物酚类具有显着的抗氧化活性,并且有可能通过化学修饰来改善其作用。两种酶进行的反应可作用于酚类的羟基部分。酯酶可用于非水溶剂中以将长链酰基酯化到酚类化合物上。漆酶可以用来形成苯氧基,然后可以偶联形成更大分子量的低聚物。两种酶的修饰都可能产生化学性质改变的新抗氧化剂。在有机溶剂中测定了一种古细菌古菌的古细菌酯酶(AF1753)和恶臭假单胞菌的细菌酯酶(PP3645)。两种酶均在98:2(v / v)(叔戊醇):缓冲液中催化乙酸苯酯和乙酸乙烯酯的水解;持续反应长达96小时。但是,这些酶不能催化4'-羟基苯乙酮与乙酸乙烯酯在9:1(v / v)环己烷:(叔戊醇)中的酯交换反应,冻干过程中的酶失活无法解释这一点。丙氨酸扫描诱变仍然显示,R37A取代提高了AF1753对长链对硝基苯基(pNP)酯的活性。产自链霉菌的多铜氧化酶(SCO6712)对多种酚类化合物具有活性,包括咖啡酸,阿魏酸,白藜芦醇,槲皮素,香兰素,山奈酚和杨梅素。通过作用于黄酮醇而形成的产物是槲皮素,香豆素和杨梅素的二聚体。槲皮素和杨梅素二聚体在反相色谱上显示更长的保留时间。在反应5分钟后可检测到所有三个二聚体,但在3 h和24 h耗尽。改性槲皮素,香豆素和杨梅素的整个反应混合物的TRAP和FRAP抗氧化活性均降低,因为起始酚在24小时内消耗over尽。因此,质谱法用于阐明由槲皮素和杨梅素产生的二聚体的分子结构。在两种情况下,质谱分析都排除了通过每个单体的A环形成二聚体的情况。对于杨梅素,最可能的连接结构被确定为在两个B环或一个带有C环的B环之间。这些预测的连接位置与先前从天然植物来源提取的槲皮素二聚体所观察到的一致。

著录项

  • 作者

    Sherif, Mohammed.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Biochemistry.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 189 p.
  • 总页数 189
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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