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筛选和评估新型羟甲基糠醛氧化酶用于生产糠二酸。

Screening and Evaluation of New Hydroxymethylfurfural Oxidases for Furandicarboxylic Acid Production.

机构信息

Centro de Investigaciones Biológicas Margarita Salas, CSIC, Madrid, Spain.

Centro de Investigaciones Biológicas Margarita Salas, CSIC, Madrid, Spain

出版信息

Appl Environ Microbiol. 2020 Aug 3;86(16). doi: 10.1128/AEM.00842-20.

Abstract

The enzymatic production of 2,5-furandicarboxylic acid (FDCA) from 5-hydroxymethylfurfural (HMF) has gained interest in recent years, as FDCA is a renewable precursor of poly(ethylene-2,5-furandicarboxylate) (PEF). 5-Hydroxymethylfurfural oxidases (HMFOs) form a flavoenzyme family with genes annotated in a dozen bacterial species but only one enzyme purified and characterized to date (after heterologous expression of a sp. HMFO gene). This oxidase acts on both furfuryl alcohols and aldehydes and, therefore, is able to catalyze the conversion of HMF into FDCA through 2,5-diformylfuran (DFF) and 2,5-formylfurancarboxylic acid (FFCA), with only the need of oxygen as a cosubstrate. To enlarge the repertoire of HMFO enzymes available, genetic databases were screened for putative HMFO genes, followed by heterologous expression in After unsuccessful trials with other bacterial HMFO genes, HMFOs from two species were produced as active soluble enzymes, purified, and characterized. The sp. enzyme was also produced and purified in parallel for comparison. Enzyme stability against temperature, pH, and hydrogen peroxide, three key aspects for application, were evaluated (together with optimal conditions for activity), revealing differences between the three HMFOs. Also, the kinetic parameters for HMF, DFF, and FFCA oxidation were determined, the new HMFOs having higher efficiencies for the oxidation of FFCA, which constitutes the bottleneck in the enzymatic route for FDCA production. These results were used to set up the best conditions for FDCA production by each enzyme, attaining a compromise between optimal activity and half-life under different conditions of operation. HMFO is the only enzyme described to date that can catalyze by itself the three consecutive oxidation steps to produce FDCA from HMF. Unfortunately, only one HMFO enzyme is currently available for biotechnological application. This availability is enlarged here by the identification, heterologous production, purification, and characterization of two new HMFOs, one from and one from an unidentified species. Compared to the previously known HMFO, the new enzyme from exhibits better performance for FDCA production in wider pH and temperature ranges, with higher tolerance for the hydrogen peroxide formed, longer half-life during oxidation, and higher yield and total turnover numbers in long-term conversions under optimized conditions. All these features are relevant properties for the industrial production of FDCA. In summary, gene screening and heterologous expression can facilitate the selection and improvement of HMFO enzymes as biocatalysts for the enzymatic synthesis of renewable building blocks in the production of bioplastics.

摘要

近年来,人们对利用酶将 5-羟甲基糠醛(HMF)转化为 2,5-呋喃二甲酸(FDCA)产生了浓厚的兴趣,因为 FDCA 是聚(2,5-呋喃二甲酸乙二酯)(PEF)的可再生前体。5-羟甲基糠醛氧化酶(HMFO)是一种黄素酶家族,其基因在十几个细菌物种中被注释,但迄今为止只纯化和表征了一种酶(在异源表达 sp. HMFO 基因后)。这种氧化酶既能作用于糠醇又能作用于糠醛,因此能够通过 2,5-二糠醛(DFF)和 2,5-糠酸(FFCA)将 HMF 转化为 FDCA,只需要氧气作为辅助底物。为了扩大可用的 HMFO 酶的 repertoire,筛选了遗传数据库中潜在的 HMFO 基因,然后在 中进行了异源表达。在尝试其他细菌 HMFO 基因失败后,两种 物种的 HMFO 酶被作为活性可溶性酶产生、纯化和表征。同时也平行生产和纯化了 sp. 酶进行比较。评估了酶对温度、pH 值和过氧化氢的稳定性,这是应用的三个关键方面(以及活性的最佳条件),结果表明三种 HMFO 之间存在差异。还确定了 HMF、DFF 和 FFCA 氧化的动力学参数,新的 HMFO 对 FFCA 的氧化效率更高,这是 FDCA 生产中酶法途径的瓶颈。这些结果用于为每种酶设定最佳的 FDCA 生产条件,在不同的操作条件下在最佳活性和半衰期之间取得平衡。HMFO 是目前为止唯一能够自行催化三个连续氧化步骤从 HMF 生产 FDCA 的酶。不幸的是,目前只有一种 HMFO 酶可用于生物技术应用。通过鉴定、异源生产、纯化和表征两种新的 HMFO,一种来自 ,另一种来自未鉴定的 物种,这种可用性在这里得到了扩大。与之前已知的 HMFO 相比,来自 的新酶在更宽的 pH 值和温度范围内具有更好的 FDCA 生产性能,对形成的过氧化氢具有更高的耐受性,在氧化过程中的半衰期更长,在优化条件下的长期转化中具有更高的产率和总周转率。所有这些特性都是 FDCA 工业生产的相关特性。总之,基因筛选和异源表达可以促进 HMFO 酶的选择和改进,作为生物塑料生产中可再生构建块酶法合成的生物催化剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32e5/7414962/1176a39c92bf/AEM.00842-20-f0001.jpg

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