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An Efficient Protocol to Enhance Recombinant Protein Expression Using Ethanol in Escherichia Coli

Overview
Journal MethodsX
Specialty Pathology
Date 2015 Dec 3
PMID 26629417
Citations 17
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Abstract

Bacterial cells can be engineered to express non-native genes, resulting in the production of, recombinant proteins, which have various biotechnological and pharmaceutical applications. In eukaryotes, such as yeast or mammalian cells, which have large genomes, a higher recombinant protein expression can be troublesome. Comparatively, in the Escherichia coli (E. coli) expression system, although the expression is induced with isopropyl β-d-1-thiogalactopyranoside (IPTG), studies have shown low expression levels of proteins. Irrespective of the purpose of protein production, the production process requires the accomplishment of three individual factors: expression, solubilization and purification. Although several efforts, including changing the host, vector, culture parameters of the recombinant host strain, co-expression of other genes and changing of the gene sequences, have been directed towards enhancing recombinant protein expression, the protein expression is still considered as a significant limiting step. Our protocol explains a simple method to enhance the recombinant protein expression that we have optimized using several unrelated proteins. It works with both T5 and T7 promoters. This protocol can be used to enhance the expressions of most of the proteins. The advantages of this technique are presented below:•It produces several fold increase in the expression of poorly expressed, less expressed or non-expressed recombinant proteins.•It does not employ any additional component such as chaperones, heat shock proteins or co-expression of other genes.•In addition to being inexpensive, easy to manage, universal, and quick to perform, the proposed method does not require any commercial kits and, can be used for various recombinant proteins expressed in the E. coli expression system.

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References
1.
Voutsina A, Riva M, Carles C, Alexandraki D . Sequence divergence of the RNA polymerase shared subunit ABC14.5 (Rpb8) selectively affects RNA polymerase III assembly in Saccharomyces cerevisiae. Nucleic Acids Res. 1999; 27(4):1047-55. PMC: 148285. DOI: 10.1093/nar/27.4.1047. View

2.
Chhetri G, Pandey T, Kumar B, Akhtar M, Tripathi T . Recombinant expression, purification and preliminary characterization of the mRNA export factor MEX67 of Saccharomyces cerevisiae. Protein Expr Purif. 2014; 107:56-61. DOI: 10.1016/j.pep.2014.11.011. View

3.
Barroso J, Elholm M, Flatmark T . Tight binding of deoxyribonucleotide triphosphates to human thymidine kinase 2 expressed in Escherichia coli. Purification and partial characterization of its dimeric and tetrameric forms. Biochemistry. 2003; 42(51):15158-69. DOI: 10.1021/bi035230f. View

4.
Bolen D, Baskakov I . The osmophobic effect: natural selection of a thermodynamic force in protein folding. J Mol Biol. 2001; 310(5):955-63. DOI: 10.1006/jmbi.2001.4819. View

5.
Chen L, Tai P . Effects of antibiotics and other inhibitors on ATP-dependent protein translocation into membrane vesicles. J Bacteriol. 1987; 169(6):2373-9. PMC: 212066. DOI: 10.1128/jb.169.6.2373-2379.1987. View