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首页> 外文期刊>Journal of molecular catalysis, B. Enzymatic >Synthesis of polycardanol from a renewable resource using a fungal peroxidase from Coprinus cinereus
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Synthesis of polycardanol from a renewable resource using a fungal peroxidase from Coprinus cinereus

机译:利用灰粉鬼伞真菌过氧化物酶从可再生资源合成聚腰果酚

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摘要

A fungal peroxidase from Coprinus cinereus (CiP) was successfully used for oxidative polymerization of cardanol in water-organic solvent mixtures. Cardanol is a phenol derivative from a renewable resource having the meta-substituent of a C15 unsaturated hydrocarbon chain mainly with one to three double bonds. So far, only uneconomic plant peroxidases, such as soybean peroxidase (SBP), have been used to polymerize cardanol. The fungal peroxidase used was easily produced by cultivating C cinereus, and was purified by ultrafiltration and size exclusion chromatography. The purified peroxidase had a specific activity of 4960 U/mg. The CiP-catalyzed polymerization of cardanol was carried out in aqueous/organic solvents. Microbial CiP catalyzed the cardanol polymerization as efficiently as SBR The structure and molecular weight of the polycardanol produced by CiP were comparable to those produced by SBP. A low reaction temperature of 10 and 15 degrees C produced polycardanol in high yield and the hydrogen peroxide feed rate was found to affect the initial reaction rate and the final conversion. From a practical point of view, it is believed that microbial CiP will be found more useful for the synthesis of a range of polyphenols from renewable resources than plant peroxidases. (c) 2005 Elsevier B.V. All rights reserved.
机译:来自灰粉鬼伞(CiP)的真菌过氧化物酶已成功用于腰果酚在水-有机溶剂混合物中的氧化聚合。腰果酚是来自可再生资源的酚衍生物,其具有主要具有1至3个双键的C 15不饱和烃链的间位取代基。到目前为止,只有不经济的植物过氧化物酶,例如大豆过氧化物酶(SBP),已被用于聚合腰果酚。所使用的真菌过氧化物酶很容易通过培养灰灰葡萄球菌产生,并通过超滤和尺寸排阻色谱法纯化。纯化的过氧化物酶的比活性为4960 U / mg。在水性/有机溶剂中进行腰果酚的CiP催化聚合。微生物CiP可以像SBR一样有效地催化腰果酚的聚合反应。CiP产生的聚腰果酚的结构和分子量与SBP产生的相当。在10和15摄氏度的低反应温度下可以高产率生产聚腰果酚,发现过氧化氢的进料速率会影响初始反应速率和最终转化率。从实践的角度来看,据信与植物过氧化物酶相比,发现微生物CiP对从可再生资源合成多种多酚更有用。 (c)2005 Elsevier B.V.保留所有权利。

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