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首页> 外文期刊>Biotechnology for Biofuels >Enzymatic conversion reactions of 5-hydroxymethylfurfural (HMF) to bio-based 2,5 - diformylfuran (DFF) and 2,5-furandicarboxylic acid (FDCA) with air: mechanisms, pathways and synthesis selectivity
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Enzymatic conversion reactions of 5-hydroxymethylfurfural (HMF) to bio-based 2,5 - diformylfuran (DFF) and 2,5-furandicarboxylic acid (FDCA) with air: mechanisms, pathways and synthesis selectivity

机译:5-羟甲基糠醛(HMF)至生物基2,5-二甲基呋喃(DFF)和2,5-呋喃羧酸(FDCA)的酶促转化反应与空气:机制,途径和合成选择性

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2,5-Furandicarboxylic acid (FDCA) is one of the top biomass-derived value-added chemicals. It can be produced from fructose and other C6 sugars via formation of 5-hydroxymethilfurfural (HMF) intermediate. Most of the chemical methods for FDCA production require harsh conditions, thus as an environmentally friendly alternative, an enzymatic conversion process can be applied. Commercially available horseradish peroxidase (HRP) and lignin peroxidase (LPO), alcohol (AO) and galactose oxidase (GO), catalase (CAT) and laccase (LAC) were tested against HMF, 2,5-diformylfuran (DFF), 5-hydroxymethyl-2-furoic acid (HMFA) and 5-formyl-2-furoic acid (FFA). Enzyme concentrations were determined based on the number of available active sites and reactions performed at atmospheric oxygen pressure. AO, GO, HRP and LPO were active against HMF, where LPO and HRP produced 0.6 and 0.7% of HMFA, and GO and AO produced 25.5 and 5.1% DFF, respectively. Most of the enzymes had only mild (3.2% yield or less) or no activity against DFF, HMFA and FFA, with only AO having a slightly higher activity against FFA with an FDCA yield of 11.6%. An effect of substrate concentration was measured only for AO, where 20?mM HMF resulted in 19.5% DFF and 5?mM HMF in 39.9% DFF, with a Km value of 14?mM. Some multi-enzyme reactions were also tested and the combination of AO and CAT proved most effective in converting over 97% HMF to DFF in 72?h. Our study aimed at understanding the mechanism of conversion of bio-based HMF to FDCA by different selected enzymes. By understanding the reaction pathway, as well as substrate specificity and the effect of substrate concentration, we would be able to better optimize this process and obtain the best product yields in the future.
机译:2,5-呋喃羧酸(FDCA)是顶部生物质衍生的增值化学品之一。它可以通过形成5-羟基乙呋喃(HMF)中间体来源于果糖和其他C6糖。对于FDCA生产的大多数化学方法需要苛刻的条件,因此作为环保替代方案,可以应用酶转化过程。测试市售的辣根过氧化物酶(HRP)和木质素过氧化物酶(LPO),醇(AO)和半乳糖氧化酶(GO),过氧化氢酶(猫)和漆酶(LAC)对HMF,2,5-二甲基呋喃(DFF),5-羟甲基-2-糠醛(HMFA)和5-甲酰基-2-糠醛(FFA)。基于在大气氧气压力下进行的可用活性位点的数量和反应测定酶浓度。 AO,GO,HRP和LPO对HMF有效,其中LPO和HRP分别产生0.6%和0.7%的HMFA,并分别产生25.5和5.1%的DFF。大多数酶只有轻度(3.2%的产率或更低)或对DFF,HMFA和FFA的活性,只有AO对FFA具有稍高的活性,FDCA产量为11.6%。仅针对AO测量底物浓度的效果,其中20μmHMF在39.9%DFF中得到19.5%的DFF和5?mm HMF,Km值为14Ωmm。还测试了一些多酶反应,并且AO和猫的组合证明最有效地将超过97%的HMF转化为72℃的DFF。我们的研究旨在通过不同选定的酶理解生物基HMF转化为FDCA的机制。通过了解反应途径,以及底物特异性和底物浓度的影响,我们将能够更好地优化该过程并获得未来的最佳产品产量。

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