Direct Construction and Screening of the Expression Vector of Anaerobic Clostridium in Escherichia coli

2013 ◽  
Vol 19 (5) ◽  
pp. 822-826
Author(s):  
Chunyu LIU ◽  
Yan CHEN ◽  
Jinqun HUANG ◽  
Jianxin PEI ◽  
Hao PANG ◽  
...  
2009 ◽  
Vol 75 (20) ◽  
pp. 6622-6625 ◽  
Author(s):  
Douglas L. Rank ◽  
Mahdi A. Saeed ◽  
Peter M. Muriana

ABSTRACT The gene for the Salmonella enterica serovar Enteritidis fimbrial protein SefA was cloned into an Escherichia coli surface expression vector and confirmed by Western blot assay. E. coli clones expressing SefA attached to avian ovary granulosa cells and HEp-2 cells, providing evidence for the involvement of SefA in the ability of Salmonella to attach to eukaryotic cells.


2003 ◽  
Vol 49 (11) ◽  
pp. 723-726 ◽  
Author(s):  
César Milton Baratto ◽  
Marcia Vanusa da Silva ◽  
Lucélia Santi ◽  
Luciane Passaglia ◽  
Irene Silveira Schrank ◽  
...  

Albeit Metarhizium anisopliae is the best-characterized entomopathogenic fungus, the role of some hydrolytic enzymes during host cuticle penetration has not yet been established. Three chitinase genes (chit1, chi2, chi3) from Metarhizium have already been isolated. To characterize the chitinase coded by the chit1 gene, we expressed the active protein (CHIT42) in Escherichia coli using a T7-based promoter expression vector. The recombinant protein, CHIT42, is active against glycol chitin and synthetic N-acetylglucosamine (GlcNAc) dimer and tetramer substrates. These activities suggest that the recombinant CHIT42 acts as an endochitinase.Key words: Metarhizium anisopliae, chitinases, chit genes, recombinant protein, enthomopathogenic fungi.


1991 ◽  
Vol 88 (5) ◽  
pp. 1731-1735 ◽  
Author(s):  
S. J. Elledge ◽  
J. T. Mulligan ◽  
S. W. Ramer ◽  
M. Spottswood ◽  
R. W. Davis

2013 ◽  
Vol 421 ◽  
pp. 354-358
Author(s):  
Jia Ming Lin ◽  
Chun Fang Wang ◽  
Jia Ning Guan ◽  
Hong Xia Ma ◽  
Shuang Hou ◽  
...  

Based on the (Gly4Ser)3 linker, theesat-6andcfp-10gene were fused for raising the antigenicity of single antigen. The DNA fragments ofesat-6andcfp-10were fused by splicing by overlapping extension (SOE) polymerase chain reaction (PCR),and the fusion gene esat-6-cfp-10 were cloned into pMD18-T vector, and then we got the recombinant plasmid pMD-esat-6-cfp-10. pMD-esat-6-cfp-10 and pET28a (+) were digested byBamHI andEcoRI double enzymes. The purified mpb esat-6-cfp-10 fusion gene was subcloned into the expression vector pET28a (+),and the prokaryotic expression vector pET-esat-6-cfp-10 was constructed. Plasmid containing pET-esat-6-cfp-10 was transformed into competenceEscherichia coliBL21(DE3).The bacterium was induced by isopropyl-β-D-thiogalactopyranoside (IPTG) and analyzed by sodium dodecyl sulphate polyacrylamide gel electrophoresis (SDS-PAGE),approximately 25 kDa exogenous protein was observed on the SDS-PAGE. The protein was analyzed by using Western-blotting. The results indicated that the protein was of antigenic activity ofMycobacterium bovis. These results could serve as a basis for further studies on the usefulness of the fusion gene and its expression product in the development of DNA vaccine; living carrier vaccine; subunit vaccine and diagnostic reagents against bovine tuberculosis.


2002 ◽  
Vol 184 (11) ◽  
pp. 2906-2913 ◽  
Author(s):  
Keietsu Abe ◽  
Fumito Ohnishi ◽  
Kyoko Yagi ◽  
Tasuku Nakajima ◽  
Takeshi Higuchi ◽  
...  

ABSTRACT Tetragenococcus halophila D10 catalyzes the decarboxylation of l-aspartate with nearly stoichiometric release of l-alanine and CO2. This trait is encoded on a 25-kb plasmid, pD1. We found in this plasmid a putative asp operon consisting of two genes, which we designated aspD and aspT, encoding an l-aspartate-β-decarboxylase (AspD) and an aspartate-alanine antiporter (AspT), respectively, and determined the nucleotide sequences. The sequence analysis revealed that the genes of the asp operon in pD1 were in the following order: promoter → aspD → aspT. The deduced amino acid sequence of AspD showed similarity to the sequences of two known l-aspartate-β-decarboxylases from Pseudomonas dacunhae and Alcaligenes faecalis. Hydropathy analyses suggested that the aspT gene product encodes a hydrophobic protein with multiple membrane-spanning regions. The operon was subcloned into the Escherichia coli expression vector pTrc99A, and the two genes were cotranscribed in the resulting plasmid, pTrcAsp. Expression of the asp operon in E. coli coincided with appearance of the capacity to catalyze the decarboxylation of aspartate to alanine. Histidine-tagged AspD (AspDHis) was also expressed in E. coli and purified from cell extracts. The purified AspDHis clearly exhibited activity of l-aspartate-β-decarboxylase. Recombinant AspT was solubilized from E. coli membranes and reconstituted in proteoliposomes. The reconstituted AspT catalyzed self-exchange of aspartate and electrogenic heterologous exchange of aspartate with alanine. Thus, the asp operon confers a proton motive metabolic cycle consisting of the electrogenic aspartate-alanine antiporter and the aspartate decarboxylase, which keeps intracellular levels of alanine, the countersubstrate for aspartate, high.


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