Skip to main content
Log in

Macroptilium atropurpureum (siratro) host specificity genes are linked to a nodD-like gene in the broad host range Rhizobium strain NGR234

  • Published:
Molecular and General Genetics MGG Aims and scope Submit manuscript

Summary

A 6.7 kb HindIII fragment from the Sym-plasmid of strain NGR234 was found to code a nodD-like gene flanked by two loci which were required for siratro host range. Transfer of the 6.7 kb fragment from NGR234 to R. trifolii strain ANU843 conferred extended host range ability to this strain on siratro plants but not to other plants normally nodulated by strain NGR234. Tn5 mutagenesis of the 6.7 kb fragment showed that insertions located into loci flanking the nodD-like gene abolished the extended host range phenotype. A hybridization probe spanning one of the host specificity loci was shown to hybridize to three specific bands in the NGR234 genome. Complementation and DNA hybridization data showed that the nodD-like gene of strain NGR234 was functionally similar to that in R. trifolii. The introduction to R. trifolii of the 6.7 kb HindIII fragment containing Tn5 insertions located in the nodD-like gene did not abolish the ability to extend the host range of R. trifolii to siratro plants. However, transfer of the 6.7 kb HindIII to R. trifolii derivatives containing Tn5 insertions into either nodA, B or C or other R. trifolii nod genes failed to confer siratro nodulation to these recipients. Reconstruction experiments showed that the 6.7 kb fragment from strain NGR234 and the 14 kb nodulation region of R. trifolii could induce the nodulation of siratro plants when introduced together into Sym-plasmid-cured Rhizobium strains.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Bachem CWB, Konorosi E, Banfalvi Z, Horvath B, Kondorosi A, Schell J (1985) Identification and cloning of nodulation genes from the wide host range Rhizobium strain MPIK3030. Mol Gen Genet 199:271–278

    Google Scholar 

  • Bachem CWB, Banfalvi Z, Kondorosi E, Schell J, Kondorosi A (1986) Identification of host range determinants in the Rhizobium species MPIK3030, in press

  • Badenoch-Jones J, Bates C, Scott K, Rolfe B, Shine J (1984) Nitrogenase genes in the fast-growing broad host range Rhizobium strain ANU240. In: Veeger C, Newton WE (eds) Advances in nitrogen fixation research. Nijhoff/Junk (publishers), Pudoc

  • Banfalvi Z, Sakanyan Y, Koncz C, Kiss A, Dusha I, Kondorosi A (1981) Location of nodulation and nitrogen fixation genes on a high molecular weight plasmid in R. meliloti. Mol Gen Genet 184:318–325

    Google Scholar 

  • Bauer WD (1981) The infection of legumes by rhizobia. Annu Rev Plant Physiol 32:407–449

    Google Scholar 

  • Bender GL, Rolfe BG (1985) A rapid plant assay for the Parasponia-Rhizobium symbiosis. Plant Sci Lett, in press

  • Brewin NJ, Beringer JE, Johnston AWB (1980) Plasmid mediated transfer of host-range specificity. J Gen Microbiol 120:413–420

    Google Scholar 

  • Broughton WJ, Heycke N, Heiner Meyer ZA, Pankhurst CE (1984) Plasmid-linked nif and “nod” genes in fast growing rhizobia that nodulate Glycine max, Phosphocarpus tetragonolobus, and Vigna ungniculata. Proc Natl Acad Sci USA 81:3093–3097

    Google Scholar 

  • Carlson RW, Hanley B, Rolfe BG, Djordjevic MA (1985) A structural comparison of the acidic extracellular polysaccharides from Rhizobium trifolii mutants affected in symbiosis. Plant Physiol, in press

  • Cen Y, Bender GL, Trinick MJ, Morrison NA, Scott KF, Gresshoff PM, Shine J, Rolfe BG (1982) Transposon mutagenesis in Rhizobia which can nodulate both legumes and the nonlegume Parasponia. Appl Environ Microbiol 43:233–236

    Google Scholar 

  • Chakravorty AK, Zurkowski W, Shine J, Rolfe BG (1982) Symbiotic nitrogen fixation: molecular cloning of Rhizobium genes involved in exopoly-saccharide synthesis and effective nodulation. J Mol Appl Genet 1:585–596

    Google Scholar 

  • Chen H, Batley M, Redmond J, Rolfe BG (1985) Alteration of the effective nodulation properties of a fast-growing broad host range Rhizobium due to changes in exopolysaccharide synthesis. J Plant Physiol 120:331–349

    Google Scholar 

  • Chesney RH, Scott JR, Vapnek D (1979) Integration of the plasmid prophages P1 and P7 into the chromosome of Escherichia coli. J Mol Biol 130:161–173

    Google Scholar 

  • Clewell DB, Helinski DR (1969) Supercoiled DNA-protein complex in Escherichia coli: purification and induced conversion to an open circular form. Proc Natl Acad Sci USA 62:1159–1166

    Google Scholar 

  • Ditta G, Stanfield S, Corbin D, Helinski DR (1980) Broad host range DNA cloning system for gram-negative bacteria: construction of a gene bank of Rhizobium meliloti. Proc Natl Acad Sci USA 77:560–568

    Google Scholar 

  • Djordjevic MA, Zurkowski W, Shine J, Rolfe BG (1983) Symplasmid transfer to symbiotic mutants of Rhizobium trifolii, Rhizobium leguminosarum and Rhizobium meliloti. J Bacteriol 156:1035–1045

    Google Scholar 

  • Djordjevic MA, Schofield PR, Ridge RW, Morrison NA, Bassam BJ, Plazinski J, Watson JM, Rolfe BG (1985a) Rhizobium nodulation genes involved in root hair curling (Hac) are functionally conserved. Plant Mol Biol 4:174–160

    Google Scholar 

  • Djordjevic MA, Schofield PR, Rolfe BG (1985b) Tn5 mutagenesis of Rhizobium trifolii host-specific nodulation genes result in mutants with altered host-range ability. Mol Gen Genet 200:463–471

    Google Scholar 

  • Djordjevic SP, Batley M, Rolfe BG, Redmond JW (1985) The structure of the exopolysaccharide from Rhizobium sp. strain ANU280 (NGR234). Carbohydr Res, in press

  • Donald RG, Raymond CK, Ludwig RA (1985) Vector insertion mutagenesis of Rhizobium sp. strain ORS571: direct cloning of mutagenized DNA sequences. J Bacteriol 162:317–323

    Google Scholar 

  • Downie JA, Knight CD, Johnston AWB, Rossen L (1985) Identification of genes and gene products involved in the nodulation of peas by Rhizobium leguminosarum. Mol Gen Genet 198:255–262

    Google Scholar 

  • Egelhoff TT, Fischer RF, Jacobs TW, Mulligan JT, Long SR (1985) Nucleotide sequence of Rhizobium meliloti 1021 nodulation genes: nodD is read divergently from nodA, B, C. DNA 4:241–248

    Google Scholar 

  • Hirschel BJ, Galas DJ, Chandler M (1982) Cointegrate formation by Tn5, but not transposition, is dependent on RecA. Proc Natl Acad Sci USA 79:4530–4534

    Google Scholar 

  • Hombrecher G, Brewin NJ, Johnston AWB (1984) Cloning and mutagenesis of nodulation genes from Rhizobium leguminosarum TOM, a strain with extended host range. Mol Gen Genet 182:767–770

    Google Scholar 

  • Innes RW, Kuempel PL, Plazinski J, Canter-Cremers H, Rolfe BG, Djordjevic MA (1985) Plant factors induce expression of nodulation and host-range genes in Rhizobium trifolii. Mol Gen Genet 200:671–678

    Google Scholar 

  • Ish-Horowicz D (1982) Rapid isolation of plasmid or bacteriophage λ DNA: Alkaline lysis method. In: Maniatis T, Fritsch EF, Sambrook J (eds) Molecular cloning, a laboratory manual. Cold Spring Harbor, Laboratory New York, pp 368–369

    Google Scholar 

  • Kondorosi E, Banfalvi Z, Kondorosi A (1984) Physical and genetic analysis of a symbiotic region of Rhizobium meliloti: identification of nodulation genes. Mol Gen Genet 193:445–452

    Google Scholar 

  • Mohapatra SS, Bender GL, Shine J, Rolfe BG, Gresshoff PM (1983) In vitro expression of nitrogenase activity in Parasponia-Rhizobium strain ANU289. Arch Microbiol 134:12–16

    Google Scholar 

  • Morrison NA (1984) Genetic analysis of nodulation and nitrogen fixation in the broad-host-range Rhizobium strain NGR234 (PhD thesis). Research School of Biological Sciences, Australian National University, Canberra, Australia

    Google Scholar 

  • Morrison NA, Hau CY, Trinick MJ, Shine J, Rolfe BG (1983) Heat curing of a sym-plasmid in a fast growing Rhizobium sp. that is able to nodulate legumes and the non-legume Parasponia sp. J Bacteriol 153:527–531

    Google Scholar 

  • Morrison NA, Cen YHC, Chen HC, Plazinski J, Ridge R, Rolfe BG (1984a) Mobilization of a sym-plasmid from a fast-growing Cowpea Rhizobium strain. J Bacteriol 160:483–487

    Google Scholar 

  • Morrison NA, Chen HC, Bassam BJ, Plazinski J, Ridge R, Rolfe BG (1984b) Tn5 mutagenesis and symbiotic mutants of a fast-growing cowpea Rhizobium. In: Veeger C, Newton WE (eds) Advances in nitrogen fixation research, Nijhoff/Junk, Pudoc, p 692

  • Mulligan JT, Long SR (1985) Induction of Rhizobium meliloti nodC expression by plant exudate requires nodD. Proc Natl Acad Sci USA 82:6609–6613

    Google Scholar 

  • O'Farrell PH, Kutter E, Nakanishi M (1980) A restriction map of the bacteriophage T4 genome. Mol Gen Genet 179:421

    Google Scholar 

  • Pankhurst CE, Broughtin WJ, Bachem C, Kondorosi E, Kondorosi A (1983) Identification of nitrogen fixation genes on a large plasmid from a broad host range Rhizobium sp. In: Pühler A (ed) Molecular genetics of the bacteria-plant interaction. Springer, Berlin Heidelberg New York Tokyo, pp 169–176

    Google Scholar 

  • Rolfe BG, Gresshoff PM, Shine J (1980) Rapid screening for symbiotic mutants of Rhizobium and white clover. Plant Sci Lett 19:277–284

    Google Scholar 

  • Rolfe BG, Djordjevic MA, Morrison NA, Plazinski J, Bender GL, Ridge R, Zurkowski W, Tellam JT, Gresshoff PM, Shine J (1983) Genetic analysis of the symbiotic regions in Rhizobium trifolii and Rhizobium parasponia. In: Pühler A (ed) Molecular genetics of the bacteria-plant interaction, Springer, Berlin Heidelberg New York Tokyo, pp 188–203

    Google Scholar 

  • Rosenberg C, Boistard P, Denarie J, Casse-Delbart FL (1981) Genes controlling early and late functions in symbiosis are located on a megaplasmid in Rhizobium meliloti. Mol Gen Genet 184:326–333

    Google Scholar 

  • Rossen L, Johnston AWB, Downie JA (1984) DNA sequence of the Rhizobium leguminosarum nodulation genes nodA, B and C required for root hair curling. Nucleic Acids Res 12:9497–9508

    Google Scholar 

  • Rossen L, Shearman CA, Johnston AWB, Downie JA (1985) The nodD gene is autoregulatory, and in the presence of plant extract, induces the nodABC genes of R. leguminosarum. EMBO J 13: in press

  • Schofield PR, Ridge RW, Rolfe BG, Shine J, Watson JM (1984) Host-specific nodulation is encoded on a 14 kb fragment in Rhizobium trifolii. Plant Mol Biol 3:3–11

    Google Scholar 

  • Simon R, Priefer U, Pühler A (1982) Vector plasmids for in vivo and in vitro manipulations of gram-negative bacteria. In: Pühler A (ed) Molecular genetics of the bacteria-plant interaction. Springer, Berlin Heidelberg New York, pp 98–106

    Google Scholar 

  • Torok I, Kondorosi E, Stepkowski T, Posfai J, Kondorosi A (1984) Nucleotide sequence of Rhizobium meliloti nodulation genes. Nuclei Acids Res 12:9509–9524

    Google Scholar 

  • Trinick MJ (1980) Relationships amongst the fast-growing rhizobia of Lablab purpureus, Leucaena leucocephala, Mimosa spp. Acacia farnesiana and Sesbania grandiflora and their affinities with other rhizobial groups. J Appl Bacteriol 49:39–53

    Google Scholar 

  • Trinick MJ, Galbraith (1980) The Rhizobium requirements of the non-legume Parasponia in relation to the cross-inoculation group concept of legumes. New Phytol 86:17–26

    Google Scholar 

  • Vasse JM, Truchet GL (1984) The Rhizobium-legume symbiosis: observation of root infection by bright-field microscopy after staining with methylene blue. Planta 161:487–489

    Google Scholar 

  • Vincent JM (1977) Rhizobium: general microbiology. In: Hardy RWF, Silver WS (eds) A treatise on dinitrogen fixation, vol 3. John Wiley and Sons, New York, pp 277–364

    Google Scholar 

  • Vincent JM (1980) Factors controlling the legume-Rhizobium symbiosis. In: Newton WE, Orme-Johnston WH (eds) Nitrogen fixation, vol 2. University Park Press Baltimore, pp 103–129

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Additional information

Communicated by J. Schell

Rights and permissions

Reprints and permissions

About this article

Cite this article

Bassam, B.J., Rolfe, B.G. & Djordjevic, M.A. Macroptilium atropurpureum (siratro) host specificity genes are linked to a nodD-like gene in the broad host range Rhizobium strain NGR234. Mol Gen Genet 203, 49–57 (1986). https://doi.org/10.1007/BF00330383

Download citation

  • Received:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00330383

Key words

Navigation