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铜绿假单胞菌脂肪酶基因在大肠杆菌中的分子克隆及异源表达

Molecular cloning and heterologous expression of lipase gene from Pseudomonas aeruginosa in Escherichia coli.

作者信息

K R Ganesh, T M Ningaraju, Peter Anitha, C N Lakshminarayana Reddy, V Kavan Kumar

机构信息

University of Agricultural Sciences, GKVK, Bangalore-560065, India.

College of Technology and Engineering, MPUAT, Udaipur, Rajasthan-313001, India.

出版信息

Int J Biol Macromol. 2025 Mar;297:139866. doi: 10.1016/j.ijbiomac.2025.139866. Epub 2025 Jan 14.

Abstract

Lipases, enzymes that perform the hydrolysis of triglycerides into fatty acids and glycerol, present a potential paradigm shift in the realms of food and detergent industries. Their enhanced efficiency, energy conservation and environmentally friendly attributes make them promising substitutes for chemical catalysts. Motivated by this prospect, this present study was targeted on the heterologous expression of a lipase gene, employing E. coli as the host organism. The lipase gene was sourced from Pseudomonas aeruginosa genomic DNA open reading frame spanning 936 bp by PCR using gene-specific primers. Initial cloning into the T/A vector (pTZ57 R/T) and subsequent sub-cloning into the pET-28a(+) bacterial expression vector. Transformation into E. coli BL21 codon plus strain ensued for the expression of the recombinant protein which was induced at 37 °C. The recombinant lipase protein was purified by immobilized metal ion chromatography. The Optimal activity of the recombinant enzyme was found to be at 40 °C and pH 8.0. The partial purified lipase exhibited a specific activity of 6595.71 U/mg in the dialyzed fraction, markedly surpassing the crude fraction's 1182.87 U/mg.

摘要

脂肪酶是一种能将甘油三酯水解为脂肪酸和甘油的酶,在食品和洗涤剂行业领域呈现出潜在的范式转变。它们提高的效率、节能特性以及环境友好属性使其成为化学催化剂的有前景的替代品。受此前景激励,本研究以脂肪酶基因的异源表达为目标,采用大肠杆菌作为宿主生物体。脂肪酶基因通过使用基因特异性引物进行PCR,从铜绿假单胞菌基因组DNA开放阅读框中获取,其跨度为936 bp。首先克隆到T/A载体(pTZ57 R/T)中,随后亚克隆到pET-28a(+)细菌表达载体中。接着将其转化到大肠杆菌BL21密码子加菌株中以表达重组蛋白,该重组蛋白在37°C下诱导表达。重组脂肪酶蛋白通过固定化金属离子色谱法进行纯化。发现重组酶的最佳活性在40°C和pH 8.0条件下。部分纯化的脂肪酶在透析部分的比活性为6595.71 U/mg,明显超过粗酶部分的1182.87 U/mg。

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