Construction of hyperthermostable d-allulose 3-epimerase from Arthrobacter globiformis M30 using the sequence information from Arthrobacter psychrolactophilus.

IF 2.8 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Kensaku Shimada, Kouhei Ohtani, Pushpa Kiran Gullapalli, Kazuhiko Ishikawa
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引用次数: 0

Abstract

d-Allulose is one of the rare monosaccharides and is considered as a safe ingredient in foods. It can be enzymatically produced from d-fructose by the enzyme d-allulose 3-epimerase. More stable enzymes can operate effectively for longer durations, reducing the need for frequent replacements and thereby lowering costs. In addition, the preparation of the recombinant Arthrobacter globiformis M30 (AgDAE) enzyme requires heat treatment at 60-70 °C to remove host cell debris and potential microbial contaminants. Therefore, to address the need for more thermostable enzymes in d-allulose production, we aimed to create thermostable mutants of AgDAE using the protein engineering method. We cloned d-allulose identified from A. globiformis M30 and, using sequence homology, we constructed thermostable mutants by protein engineering. Each effect of the five mutations used was independent and additive. By integrating positive mutations, we succeeded in the construction of a chimeric enzyme exhibiting hyperthermostability without loss of enzymatic activity. The constructed chimera mutant was highly functional above 95 °C and remained stable under 80 °C. Our approach using structural information for the chimeric construction experiments also suggested that incorporating mutations from other homologous enzymes can impart advantages in enzymes in a simple and effective manner.

利用嗜冷嗜酸节杆菌序列信息构建球状节杆菌M30超耐热d-allulose 3- epimase。
d-Allulose是一种罕见的单糖,被认为是食品中的安全成分。它可以由d-果糖通过d-allulose 3- epimase酶产生。更稳定的酶可以有效地运行更长的时间,减少频繁更换的需要,从而降低成本。此外,重组球形节杆菌M30 (AgDAE)酶的制备需要60-70℃的热处理,以去除宿主细胞碎片和潜在的微生物污染物。因此,为了解决d-allulose生产中对更多热稳定酶的需求,我们旨在利用蛋白质工程方法创建AgDAE的热稳定突变体。克隆了从A. globiformis M30中鉴定的d-allulose,利用序列同源性,通过蛋白工程构建了耐热突变体。所使用的五个突变的每个效应都是独立的和加性的。通过整合正突变,我们成功地构建了一种嵌合酶,具有超热稳定性,而不丧失酶活性。所构建的嵌合体突变体在95°C以上具有较高的功能,在80°C以下保持稳定。我们利用结构信息进行嵌合构建实验的方法也表明,结合其他同源酶的突变可以以简单有效的方式赋予酶的优势。
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来源期刊
FEBS Open Bio
FEBS Open Bio BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
5.10
自引率
0.00%
发文量
173
审稿时长
10 weeks
期刊介绍: FEBS Open Bio is an online-only open access journal for the rapid publication of research articles in molecular and cellular life sciences in both health and disease. The journal''s peer review process focuses on the technical soundness of papers, leaving the assessment of their impact and importance to the scientific community. FEBS Open Bio is owned by the Federation of European Biochemical Societies (FEBS), a not-for-profit organization, and is published on behalf of FEBS by FEBS Press and Wiley. Any income from the journal will be used to support scientists through fellowships, courses, travel grants, prizes and other FEBS initiatives.
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