Cloning and Expression of Pseudomonas fluorescens 26-2 Lipase Gene in Pichia pastoris and Characterizing for Transesterification

2008 ◽  
Vol 159 (2) ◽  
pp. 355-365 ◽  
Author(s):  
Jiangke Yang ◽  
Bo Zhang ◽  
Yunjun Yan
2010 ◽  
Vol 11 (6) ◽  
pp. 2373-2382 ◽  
Author(s):  
Bihong Shi ◽  
Liqing Zeng ◽  
Haolei Song ◽  
Qiaoqin Shi ◽  
Songgang Wu

2005 ◽  
Vol 31 (2) ◽  
pp. 095-102 ◽  
Author(s):  
Zhengbing Jiang ◽  
Yitao Zheng ◽  
Yu Luo ◽  
Gang Wang ◽  
Hongping Wang ◽  
...  

Author(s):  
Rafid A. Abdulkareem

The main goal of the current study was cloning and expression of the human insulin gene in Pichia pastoris expression system, using genetic engineering techniques and its treatment application. Total RNA was purified from fresh normal human pancreatic tissue. RNA of good quality was chosen to obtain a first single strand cDNA. Human preproinsulin gene was amplified from cDNA strand, by using two sets of specific primers contain EcoR1 and Notl restriction sites. The amplified preproinsulin gene fragment was double digested with EcoRI and Not 1 restriction enzymes, then inserted into pPIC9K expression vector. The new pPIC9K-hpi constructive expression vector was transformed by the heat-shock method into the E.coli DH5α competent cells. pPic9k –hpi, which was propagated in the positive transformant E. coli cells, was isolated from cells and then linearised by restriction enzyme SalI, then transformed into Pichia pastoris GS115 using electroporation method. Genomic DNA of His+ transformants cell was extracted and used as a template for PCR analysis. The results showed, that the pPic9k – hpi was successfully integrated into the P. pastoris genome, for selected His+ transformants clones on the anticipated band at 330 bp, which is corresponded to the theoretical molecular size of the human insulin gene. To follow the insulin expression in transformans, Tricine–SDS gel electrophoresis and Western blot analysis were conducted. The results showed a successful expression of recombinant protein was detected by the presence of a single major band with about (5.8 KDa) on the gel. These bands correspond well with the size of human insulin with the theoretical molecular weight (5.8 KDa).


Author(s):  
Selfela Restu Adina ◽  
Antonius Suwanto ◽  
Anja Meryandini ◽  
Esti Puspitasari

Abstract Background Lipases are promising biocatalysts for industrial applications and attract attention to be explored. A novel acidic lipase has been isolated from the lipolytic bacteria Micrococcus luteus EMP48-D (LipEMP48-D) screened from tempeh. The lipase gene had previously been overexpressed in Escherichia coli BL21, but the expression level obtained was relatively low. Here, to improve the expression level, the lipase gene was cloned to Pichia pastoris. We eliminated the native signal sequence of M. luteus and replaced it with α-mating factor (α-MF) signal sequence. We also optimized and synthesized the lipase gene based on codon preference in P. pastoris. Results LipEMP48-D lipase was expressed as an extracellular protein. Codon optimization has been conducted for 20 codons, with the codon adaption index reaching 0.995. The highest extracellular lipase activity obtained reached 145.4 ± 4.8 U/mg under AOX1 promoter in P. pastoris KM71 strain, which was 9.7-fold higher than the previous activity in E. coli. LipEMP48-D showed the highest specific activity at pH 5.0 and stable within the pH range 3.0–5.0 at 40 °C. LipEMP48-D also has the capability of hydrolyzing various long-chain triglycerides, particularly olive oil (100%) followed by sunflower oil (88.5%). LipEMP48-D exhibited high tolerance for various polar organic solvents with low log P, such as isopropanol (115.7%) and butanol (114.6%). The metal ions (Na+, K+, Ca2+, Mg2+, Mn+) decreased enzyme activity up to 43.1%, while Fe2+ increased relative activity of enzymes up to 200%. The conversion of free fatty acid (FFA) into fatty acid methyl ester (FAME) was low around 2.95%. Conclusions This study was the first to report overexpression of Micrococcus lipase in yeast. The extracellular expression of this acidic lipase could be potential for biocatalyst in industrial fields, especially organic synthesis, food industry, and production of biodiesel.


2012 ◽  
Vol 167 (8) ◽  
pp. 2198-2211 ◽  
Author(s):  
Huimin Zhang ◽  
Minchen Wu ◽  
Jianfang Li ◽  
Shujuan Gao ◽  
Yanjun Yang

2003 ◽  
Vol 269 (2) ◽  
pp. 252-260 ◽  
Author(s):  
R. N. Z. A. Rahman ◽  
J. H. Chin ◽  
A. B. Salleh ◽  
M. Basri

2010 ◽  
Vol 192 (7) ◽  
pp. 585-593 ◽  
Author(s):  
Lingying Kong ◽  
Daosen Guo ◽  
Shiyi Zhou ◽  
Xinlei Yu ◽  
Guixue Hou ◽  
...  

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