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Genetic manipulations in Rhizobium meliloti utilizing two new transposon Tn5 derivatives

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Summary

Two derivatives of the prokaryotic transposon Tn5 were constructed in vitro. In Tn5-233, the central area of Tn5, which carries resistance to kanamycin/neomycin, bleomycin and streptomycin, is replaced by a fragment carrying resistance to the aminocyclitol antibiotics gentamycin/kanamycin and streptomycin/spectinomycin. In Tn5-235, the Escherichia coli β-galactosidase gene is inserted within the streptomycin resistance gene of Tn5, and constitutively expressed from a Tn5 promoter. Both constructs transpose with about the same frequency as Tn5 in Escherichia coli and Rhizobium meliloti. When a Tn5-derivative is introduced into an R. meliloti strain which already contains a different Tn5-derivative, in situ transposon replacement is obtained at high frequency, presumably by a pair of crossovers between the IS50 sequences at the ends of the incoming and resident transposons. In this way we converted a previously isolated recA::Tn5 mutant into the corresponding recA::Tn5-233 strain, which can now be used as a genetic background in the study of complementation of other Tn5-induced mutations. We also replaced the drug markers of several Tn5-induced exo mutants, which we were then able to map relative to each other by transduction with phage ϕ M12. In a strain carrying Tn5-235 located near Tn5-233, we were able to isolate deletions of the intervening markers, presumably resulting from general recombination between the two transposons, by screening for loss of the Lac+ phenotype. Unlike Tn5 itself, resident Tn5-233 does not appear to suppress transposition of another incoming Tn5-derivative.

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Abbreviations

bp:

base pairs

Nm:

neomycin

Km:

kanamycin

Sm:

streptomycin

Sp:

spectinomycin

Gm:

gentamycin

Tc:

tetracycline

Tp:

trimethoprim

Ot:

oxytetracycline

Rf:

rifampicin

Xgal:

5-bromo-4-chloro-3-indolyl-β-d-galactoside

References

  • Avery L, Kaiser D (1983) In situ transposon replacement and isolation of a spontaneous tandem genetic duplication. Mol Gen Genet 191:99–109

    Google Scholar 

  • Auerswald EA, Ludwig G, Schaller H (1980) Structural analysis of Tn5. Cold Spring Harbor Symp Quant Biol 45:107–113

    Google Scholar 

  • Bellofatto V, Shapiro L, Hodgson DA (1984) Generation of a Tn5 promoter probe and its use in the study of Caulobacter crescentus. Proc Natl Acad Sci USA 81:1035–1039

    Google Scholar 

  • Berg DE, Davies J, Allet B, Rochaix J-D (1975) Transposition of R factor genes to bacteriophage λ. Proc Natl Acad Sci USA 72:3628–3632

    Google Scholar 

  • Berg DE, Egner C, Hirschel BJ, Howard J, Johnsrud L, Jorgensen RA, Tlsty TD (1980) Insertion, excision, and inversion of Tn5. Cold Spring Harbor Symp Quant Biol 45:115–123

    Google Scholar 

  • Berg DE, Berg CM (1983) The procaryotic transposon Tn5. Biol Technol 1:417–435

    Google Scholar 

  • Beringer JE, Beynon JL, Buchanan-Wollaston AV, Johnston AWB (1978) Transfer of the drug resistance transposon Tn5 to Rhizobium. Nature 276:633–634

    Google Scholar 

  • Better M, Helinski DR (1983) Isolation and characterization of the recA gene of Rhizobium meliloti. J Bacteriol 155:311–316

    Google Scholar 

  • Biek D, Roth JR (1980) Regulation of Tn5 transposition in Salmonella typhimurium. Proc Natl Acad Sci USA 77:6047–6051

    Google Scholar 

  • Bolivar F, Rodrigues RL, Betlach MC, Boyer HM (1977) Construction and characterization of new cloning vehicles. I. Ampicillin resistant derivatives of the plasmid pMB9. Gene 2:75–93

    Google Scholar 

  • Casadaban MJ, Chou J, Cohen SN (1980) In vitro gene fusions that join an enzymatically active β-galactosidase segment to amino-terminal fragments of exogenous proteins: Escherichia coli plasmid vectors for the detection and cloning of translational initiation signals. J Bacteriol 143:971–980

    Google Scholar 

  • Collins FG, Hall RM (1985) Identification of a Tn5 determinant conferring resistance to phleomycins, bleomycins and tallysomycins. Plasmid 14:143–151

    Google Scholar 

  • De Vos GF, Finan TM, Signer ER, Walker GC (1984) Host-dependent transposon Tn5-mediated streptomycin resistance. J Bacteriol 159:395–399

    Google Scholar 

  • Figurski DH, Helinski DR (1979) Replication of an origin-containing derivative of plasmid RK2 dependent on a plasmid function provided in trans. Proc Natl Acad Sci USA 76:1648–1652

    Google Scholar 

  • Finan TM, Hartwieg E, LeMieux K, Bergman K, Walker GC, Signer ER (1984) General transduction in Rhizobium meliloti. J Bacteriol 159:120–124

    Google Scholar 

  • Finan TM, Hirsch AM, Leigh JA, Johansen E, Kuldau GA, Deegan S, Walker GC, Signer ER (1985) Symbiotic mutants of Rhizobium meliloti that uncouple plant from bacterial differentiation. Cell 40:869–877

    Google Scholar 

  • Genilloud O, Garrido MC, Moreno F (1984) The transposon Tn5 carries a bleomycin resistance determinant. Gene 32:225–233

    Google Scholar 

  • Hughes KT, Roth JR (1984) Directed formation of deletions and duplications using Mud(Ap, lac). Genetics 109:263–282

    Google Scholar 

  • Isberg RR, Lazaar AL, Syvanen M (1982) Regulation of Tn5 by the right repeat proteins: control at the level of the transposition reaction? Cell 30:883–892

    Google Scholar 

  • Jorgensen RA, Rothstein SJ, Reznikoff WS (1979) A restriction enzyme cleaveage map of Tn5 and location of a region encoding neomycin resistance. Mol Gen Genet 177:65–72

    Google Scholar 

  • Johnson RC, Yin JCP, Reznikoff WS (1982) Control of Tn5 transposition in E. coli is mediated by protein from the right repeat. Cell 30:873–882

    Google Scholar 

  • Kroos L, Kaiser D (1984) Construction of Tn5-lac, a transposon that fuses LacZ expression to exogenous promoters, and its introduction into Myxococcus xanthus. Proc Natl Acad Sci USA 81:5816–5820

    Google Scholar 

  • Leigh JA, Signer ER, Walker GC (1985) Exopolysaccharide-deficient mutants of Rhizobium meliloti that form ineffective nodules. Proc Natl Acad Sci USA 82:6231–6235

    Google Scholar 

  • Lowe JB, Berg DE (1983) A product of the Tn5 transposase gene inhibits transposition. Genetics 103:605–615

    Google Scholar 

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

    Google Scholar 

  • Mazodier P, Giraud E, Gasser F, (1982) Tn5 dependent streptomycin resistance in Methylobacterium Organophylicum. FEMS Microbiol Lett 13:27–30

    Google Scholar 

  • Mazodier P, Cassart P, Giraud E, Gasser F (1985) Completion of the nucleotide sequence of the central region of Tn5 confirms the presence of three resistance genes. Nucleic Acids Res 13:195–205

    Google Scholar 

  • Meade HM, Long SR, Ruvkun GB, Brown SE, Ausubel FM (1982) Physical and genetic characterization of symbiotic and auxotrophic mutants of Rhizobium meliloti induced by transposon Tn5 mutagenesis. J Bacteriol 149:114–122

    Google Scholar 

  • Miller JH (1972) Experiments in molecular genetics. Cold Spring Harbor Laboratory, Cold Spring Harbor, New York

    Google Scholar 

  • Putnoky P, Kiss GB, Ott I, Kondorosi A (1984) Tn5 carries a streptomycin resistance determinant downstream from the kanamycin resistance gene. Mol Gen Genet 191:288–294

    Google Scholar 

  • Rella M, Mercenier A, Haas D (1985) Transposon mutagenesis of Pseudomonas aeruginosa with a Tn5 derivative: application to physical mapping of the arc gene cluster. Gene 33:293–303

    Google Scholar 

  • Rothstein SR, Jorgensen RA, Yin JC-P, Yong-di Z, Johnson RC, Reznikoff WS (1980) Genetic organization of Tn5. Cold Spring Harbor Symp Quant Biol 45:99–105

    Google Scholar 

  • Ruvkun GB, Ausubel FM (1981) A general method for site-directed mutagenesis in prokaryotes. Nature (London) 289:85–88

    Google Scholar 

  • Simon R (1984) High frequency mobilization of gram-negative bacterial replicons by the in vitro constructed Tn5-Mob transposon. Mol Gen Genet 196:413–420

    Google Scholar 

  • Wang GC, Spokes JR, Woodward MJ, Hirsch PR (1985) Transposon mutagenesis of Rhizobium using a derivative of Tn5 conferring gentamycin and spectinomycin resistance. In: Evans HJ, Bottomley P, Newton WE (eds) Nitrogen fixation research progress. Martinus Nijhoff Publishers, Dodrecht, p 153

    Google Scholar 

  • Ward JM, Grindsted J (1982) Physical and genetic analysis of the Inc-W group plasmids R388, Sa, and R7K. Plasmid 7:239–250

    Google Scholar 

  • Yakobson EA, Guiney DG Jr (1984) Conjugal transfer of bacterial chromosomes mediated by the RK2 plasmid transfer origin cloned into transposon Tn5. J Bacteriol 160:451–453

    Google Scholar 

  • Zsebo KM, Wu F, Hearst JE (1984) Tn5.7 construction and physical mapping of pRPS404 containing photosynthetic genes from Rhodopseudomonas capsulata. Plasmid 11:182–184

    Google Scholar 

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Communicated by J. Schell

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De Vos, G.F., Walker, G.C. & Signer, E.R. Genetic manipulations in Rhizobium meliloti utilizing two new transposon Tn5 derivatives. Molec Gen Genet 204, 485–491 (1986). https://doi.org/10.1007/BF00331029

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