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以真菌提取的β-葡聚糖为供体,利用商业β-葡聚糖酶对甜菊糖苷进行转糖基化反应。

Transglycosylation of Stevioside by a Commercial β-Glucanase with Fungal Extracted β-Glucans as Donors.

作者信息

Zerva Anastasia, Mohammadi Milad, Dimopoulos Georgios, Taoukis Petros, Topakas Evangelos

机构信息

Biotechnology Laboratory, School of Chemical Engineering, National Technical University of Athens, 5 Iroon Polytechniou Str., Zografou Campus, 15780 Athens, Greece.

Laboratory of Food Chemistry and Technology, School of Chemical Engineering, National Technical University of Athens, 5 Iroon Polytechniou Str., Zografou Campus, 15780 Athens, Greece.

出版信息

Waste Biomass Valorization. 2023 Jan 24:1-11. doi: 10.1007/s12649-023-02052-4.

Abstract

ABSTRACT

Alternative sweeteners, such as steviol glucosides from the plant Bertoni, are becoming increasingly popular for the design of next-generation foodstuffs. However, the bitter aftertaste of native steviol glucosides is one of the main reasons behind consumer reluctance towards stevia-containing products. Biocatalysis could be a sustainable solution to this problem, through addition of glucosyl moieties to the molecule. Glycoside hydrolases are enzymes performing transglycosylation reactions, and they can be exploited for such modifications. In the present work, the commercial β-glucanase Finizym 250L® was employed for the transglycosylation of stevioside. After optimization of several reaction parameters, the maximal reaction yield obtained was 19%, with barley β-glucan as the glycosyl donor. With the aim to develop a sustainable process, β-glucan extracts from different fungal sources were prepared. Pulsed Electric Field pretreatment of mycelial biomass resulted in extracts with higher β-glucan content. The extracts were tested as alternative glucosyl donors, reaching up to 15.5% conversion yield, from -extracted β-glucan. Overall, in the present work a novel enzymatic process for the modification of stevioside is proposed, with concomitant valorization of β-glucans extracted from fungal biomass, potentially generated as a byproduct from other applications, in concert with the principles of circular economy.

摘要

摘要

甜菊糖苷等甜味剂正越来越广泛地应用于新一代食品的设计中。然而,天然甜菊糖苷的苦味是消费者不愿购买含甜菊产品的主要原因之一。生物催化可能是解决这一问题的可持续方法,通过向分子中添加葡萄糖基部分来实现。糖苷水解酶是能够进行转糖基化反应的酶,可用于此类修饰反应中。在本研究中,使用商业β-葡聚糖酶Finizym250L®对甜菊糖苷进行转糖基化反应。在优化了几个反应参数后,以大麦β-葡聚糖作为糖基供体时,获得的最大反应产率为19%。为了开发可持续工艺方法,制备了来自不同真菌来源的β-葡聚糖提取物,并对丝状真菌生物质进行脉冲电场预处理以获得更高β-葡聚糖含量的提取物。这些提取物作为替代糖基供体进行测试时,从提取的β-葡聚糖中获得的转化率高达15.5%。总体而言,本研究提出了一种用于修饰甜菊糖苷的新型酶法工艺,同时对从真菌生物质中提取的β-葡聚糖进行了增值利用,这些β-葡聚糖可能是其他应用产生的副产物,并符合循环经济原则。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d7d/9872074/6986149e2ed0/12649_2023_2052_Fig1_HTML.jpg

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