A scalable overexpression of a thermostable recombinant poly-histidine tag carboxyl esterase under lambda promoter: purification, characterization, and protein modelling

IF 3.5 Q3 Biochemistry, Genetics and Molecular Biology Journal of Genetic Engineering and Biotechnology Pub Date : 2023-12-12 DOI:10.1186/s43141-023-00610-w
Nadia A. Soliman, Safaa M. Ali, Mahmoud E. A. Duab, Yasser R. Abdel-Fattah
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Abstract

As a white biotechnological trend, esterases are thought to be among the most active enzymes’ classes in biocatalysis and synthesis of industrially importance organic compounds. Esterases are used in many applications such as the manufacture of pharmaceuticals, cosmetics, leather, textile, paper, food, dairy products, detergents, and treatment of some environmental pollutants. A poly-histidine moiety was added to the C-terminal end of the Geobacillus sp. gene encoding carboxyl esterase (EstB, ac: KJ735452) to facilitate one-step purification. This recombinant protein was successfully expressed in Escherichia coli (E. coli) under control of Lambda promoter (λ). An open reading frame (ORF) of 1500 bps encoding a polypeptide of 499 amino acid residues and a calculated molecular weight (54.7 kD) was identified as carboxyl-esterase B due to its conserved glycine-X-serine-X-glycine motif (G-X-S-X-G) and its high similarity toward other carboxyl esterases, where the 3-D tertiary structure of EstB was determined based on high homology % (94.8) to Est55. The expression was scaled up using 7-L stirred tank bioreactor, where a maximum yield of enzyme was obtained after 3.5 h with SEA 51.76 U/mg protein. The expressed protein was purified until unity using immobilized metal affinity chromatography (IMAC) charged with cobalt and then characterized. The purified enzyme was most active at pH 8.0 and remarkably stable at pH (8–10). Temperature optimum was recorded at 65 °C, and it kept 70% of its activity after 1-h exposure to 60 °C. The active half-live of enzyme was 25 min at 70 °C and a calculated T melting (Tm) at 70 °C. The determined reaction kinetics Michaelis–Menten constant (Km), maximum velocity rate (Vmax), the turnover number (Kcat), and catalytic efficiency (Kcat/Km) of the pure enzyme were found 22.756 mM, 164.47 U/ml (59.6 min−1), and (2.619 mol/ min), respectively. Creation of a recombinant 6 × -His estB derived from a thermophile Geobacillus sp. was performed successfully and then overexpressed under λ-promoter. In a bench scale bioreactor, the overexpression was grown up, followed by one-step purification and biochemical characterization. The recorded promising pH and temperature stability properties suggest that this expressed carboxyl esterase could be used in many industrial sectors.
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在λ启动子下可扩展地过表达一种热稳定性重组聚组氨酸标签羧基酯酶:纯化、表征和蛋白质模型
作为一种白色生物技术趋势,酯酶被认为是生物催化和合成工业重要有机化合物中最活跃的酶类之一。酯酶被广泛应用于制药、化妆品、皮革、纺织品、造纸、食品、乳制品、洗涤剂的生产以及一些环境污染物的处理。为了便于一步纯化,我们在 Geobacillus sp.编码羧基酯酶(EstB,ac: KJ735452)基因的 C 端添加了聚组氨酸分子。这种重组蛋白在 Lambda 启动子(λ)的控制下成功地在大肠杆菌(E. coli)中表达。由于其保守的甘氨酸-X-丝氨酸-X-甘氨酸基序(G-X-S-X-G)及其与其他羧基酯酶的高度相似性,EstB 被鉴定为羧基酯酶 B。使用 7 升搅拌罐生物反应器扩大表达规模,3.5 小时后获得最高产酶量,SEA 为 51.76 U/mg 蛋白。利用带钴的固定金属亲和层析(IMAC)技术将表达的蛋白质纯化至完全一致,然后对其进行表征。纯化的酶在 pH 值为 8.0 时活性最高,在 pH 值(8-10)时非常稳定。最适温度为 65 °C,在 60 °C下暴露 1 小时后仍能保持 70% 的活性。在 70 °C 时,酶的活性半衰期为 25 分钟,计算出的熔融温度(Tm)为 70 °C。测定的纯酶的反应动力学迈克尔-门顿常数(Km)、最大速度(Vmax)、周转数(Kcat)和催化效率(Kcat/Km)分别为 22.756 mM、164.47 U/ml (59.6 min-1) 和 (2.619 mol/min)。从嗜热菌 Geobacillus sp.中成功创建了重组 6 × -His estB,并在λ-启动子下进行了过表达。在台架规模的生物反应器中,过表达菌得到了生长,随后进行了一步纯化和生化鉴定。所记录的良好的 pH 和温度稳定性表明,这种表达的羧基酯酶可用于许多工业部门。
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来源期刊
Journal of Genetic Engineering and Biotechnology
Journal of Genetic Engineering and Biotechnology Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
5.70
自引率
5.70%
发文量
159
审稿时长
16 weeks
期刊介绍: Journal of genetic engineering and biotechnology is devoted to rapid publication of full-length research papers that leads to significant contribution in advancing knowledge in genetic engineering and biotechnology and provide novel perspectives in this research area. JGEB includes all major themes related to genetic engineering and recombinant DNA. The area of interest of JGEB includes but not restricted to: •Plant genetics •Animal genetics •Bacterial enzymes •Agricultural Biotechnology, •Biochemistry, •Biophysics, •Bioinformatics, •Environmental Biotechnology, •Industrial Biotechnology, •Microbial biotechnology, •Medical Biotechnology, •Bioenergy, Biosafety, •Biosecurity, •Bioethics, •GMOS, •Genomic, •Proteomic JGEB accepts
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