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Effect of base substitutions in the colicin E1 gene on colicin E1 export and bacteriocin activity

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Summary

Base substitutions have been introduced into the segment of the colicin E1 gene corresponding to the polypeptide region between the 404th and the 502nd residues which was considered to participate in colicin E1 export and bacteriocin activity. The methods used were in vitro localized mutagenesis with sodium bisulphite and in vivo mutagenesis using either nitrosoguanidine or ethyl methane sulphonate. Cells carrying mutagenized plasmids were screened by their inability to form a clear zone on a lawn of colicin E1 sensitive cells. Mutation sites were determined from the nucleotide sequence analysis and the altered amino acid residues were reduced. The mutant proteins were analysed for their ability to be exported to the periplasmic space and for their bacteriocin activity. Out of eight mutants obtained, three had a single amino acid replacement. Mutant proteins that had Ser and Glu in place of Pro-462 and Gly-502, respectively, showed a decrease in both the export and the bacteriocin activity. A mutant protein having Arg in place of Gly-439 showed a decrease only in the bacteriocin activity. These results suggest that the target region of colicin E1 contributes to the export as well as the bacteriocin activity but the two functions are supported in part by different amino acid residues of the protein.

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References

  • Baas PD, van Teeffelen HAAM, Teertstra WR, Jansy HS, Veeneman GH, van der Marel GA, van Boom JH (1980) Restoration of the biological activity of in vitro synthesized ΦX DNA by transfection of ung spheroplasts or dUTPase treatment. FEBS Lett 110:15–20

    Google Scholar 

  • Chou PY, Fasman GD (1978) Prediction of the secondary structure of proteins from their amino acid sequence. Adv Enzymol 47:45–148

    Google Scholar 

  • Cramer WA, Dankert JR, Uratani Y (1983) The membrane channel-forming bacteriocidal protein, colicin E1. Biochim Biophys Acta 737:173–193

    Google Scholar 

  • Davidson VL, Brunden KR, Cramer WA, Cohen FS (1984) Studies on the mechanism of action of channel-forming colicins using artificial membranes. J Membr Biol 79:105–118

    Google Scholar 

  • Ebina Y, Takahara Y, Kishi F, Nakazawa A, Brent R (1983) LexA protein is a repressor of the colicin E1 gene. J Biol Chem 258:13258–13261

    Google Scholar 

  • Jakes JS, Model P (1979) Mechanism of export of colicin E1 and colicin E3. J Bacteriol 138:770–778

    Google Scholar 

  • Kalderon D, Oostra BA, Ely BK, Smith AE (1982) Deletion loop mutagenesis: a novel method for the construction of point mutations using deletion mutants. Nucleic Acids Res 10:5161–5171

    Google Scholar 

  • Little JW, Mount DW (1982) The SOS regulatory system of Escherichia coli. Cell 24:11–22

    Google Scholar 

  • Maniatis T, Fritsch EF, Sambrook J (1982) Molecular cloning: a laboratory manual. Cold Spring Harbor Laboratory, Cold Spring Harbor, New York

    Google Scholar 

  • Miller JH (1972) Nitrosoguanidine mutagenesis. In: Experiments in molecular genetics. Cold Spring Harbor Laboratory, Cold Spring Harbor, New York, pp 125–139

    Google Scholar 

  • Nakazawa A, Tamada T (1972) Stimulation of colicin E1 synthesis by cyclic 3′,5′-adenosine monophosphate in mitomycin C-induced Escherichia coli. Biochem Biophys Res Commun 46:1004–1010

    Google Scholar 

  • Nossal NG, Heppel LA (1966) The release of enzymes by osmotic shock from Escherichia coli in exponential phase. J Biol Chem 241:3055–3062

    Google Scholar 

  • Oka A, Sugimoto K, Sasaki H, Takanami M (1982) An in vitro method generating base substitutions in preselected regions of plasmid DNA: application to structural analysis of the replication origin of the Escherichia coli K-12 chromosome. Gene 19:59–69

    Google Scholar 

  • Sanger F, Coulson AR, Barrel BG, Smith AJH, Roe BA (1980) Cloning in single-stranded bacteriophage as an aid to rapid DNA sequencing. J Mol Biol 143:161–178

    Google Scholar 

  • Suit JL, Fan M-L, Sabik JF, Lararre R, Luria SE (1983) Alternative forms of lethality in mitomycin C-induced bacteria carrying ColE1 plasmids. Proc Natl Acad Sci USA 80:579–583

    Google Scholar 

  • Yamada M, Ebina Y, Miyata T, Nakazawa T, Nakazawa A (1982a) Nucleotide sequence of the structural gene for colicin E1 and predicted structure of the protein. Proc Natl Acad Sci USA 79:2827–2831

    Google Scholar 

  • Yamada M, Miki T, Nakazawa A (1982b) Translocation of colicin E1 through the cytoplasmic membrane of Escherichia coli. FEBS Lett 150:465–468

    Google Scholar 

  • Yamada M, Nakazawa A (1984) Factors necessary for the export process of colicin E1 across the cytoplasmic membrane of Escherichia coli. Eur J Biochem 140:249–255

    Google Scholar 

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Communicated by M. Takanami

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Yamada, M., Nakazawa, A. Effect of base substitutions in the colicin E1 gene on colicin E1 export and bacteriocin activity. Mol Gen Genet 202, 24–29 (1986). https://doi.org/10.1007/BF00330511

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  • DOI: https://doi.org/10.1007/BF00330511

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