Previous Article | Next Article 
J Bacteriol. 1993 September; 175(17): 5529-5538
Transfer functions of the conjugative integrating element pSAM2 from Streptomyces ambofaciens: characterization of a kil-kor system associated with transfer.
J Hagège,
J L Pernodet,
G Sezonov,
C Gerbaud,
A Friedmann and
M Guérineau
Laboratoire de Biologie et Génétique Moléculaire, Université Paris-Sud, Orsay, France.
ABSTRACT
pSAM2 is an 11-kb integrating element from Streptomyces ambofaciens. During matings, pSAM2 can be transferred at high frequency, forming pocks, which are zones of growth inhibition of the recipient strain. The nucleotide sequences of the regions involved in pSAM2 transfer, pock formation, and maintenance have been determined. Seven putative open reading frames with the codon usage typical of Streptomyces genes have been identified: traSA (306 amino acids [aa]), orf84 (84 aa), spdA (224 aa), spdB (58 aa), spdC (51 aa), spdD (104 aa), and korSA (259 aa). traSA is essential for pSAM2 intermycelial transfer and pock formation. It could encode a protein with similarities to the major transfer protein, Tra, of pIJ101. TraSA protein contains a possible nucleotide-binding sequence and a transmembrane segment. spdA, spdB, spdC, and spdD influence pock size and transfer efficiency and may be required for intramycelial transfer. A kil-kor system similar to that of pIJ101 is associated with pSAM2 transfer: the korSA (kil-override) gene product could control the expression of the traSA gene, which has lethal effects when unregulated (Kil phenotype). The KorSA protein resembles KorA of pIJ101 and repressor proteins belonging to the GntR family. Thus, the integrating element pSAM2 possesses for transfer general features of nonintegrating Streptomyces plasmids: different genes are involved in the different steps of the intermycelial and intramycelial transfer, and a kil-kor system is associated with transfer. However, some differences in the functional properties, organization, and sizes of the transfer genes compared with those of other Streptomyces plasmids have been found.
J Bacteriol. 1993 September; 175(17): 5529-5538
This article has been cited by other articles:
-
Tiffert, Y., Gotz, B., Reuther, J., Wohlleben, W., Muth, G.
(2007). Conjugative DNA transfer in Streptomyces: SpdB2 involved in the intramycelial spreading of plasmid pSVH1 is an oligomeric integral membrane protein that binds to dsDNA. Microbiology
153: 2976-2983
[Abstract]
[Full Text]
-
Gorelik, M., Lunin, V. V., Skarina, T., Savchenko, A.
(2006). Structural characterization of GntR/HutC family signaling domain. Protein Sci.
15: 1506-1511
[Abstract]
[Full Text]
-
Hosted, T. J., Wang, T., Horan, A. C.
(2004). Characterization of the Streptomyces lavendulae IMRU 3455 linear plasmid pSLV45. Microbiology
150: 1819-1827
[Abstract]
[Full Text]
-
Qin, Z., Shen, M., Cohen, S. N.
(2003). Identification and Characterization of a pSLA2 Plasmid Locus Required for Linear DNA Replication and Circular Plasmid Stable Inheritance in Streptomyces lividans. J. Bacteriol.
185: 6575-6582
[Abstract]
[Full Text]
-
Grohmann, E., Muth, G., Espinosa, M.
(2003). Conjugative Plasmid Transfer in Gram-Positive Bacteria. Microbiol. Mol. Biol. Rev.
67: 277-301
[Abstract]
[Full Text]
-
Haug, I., Weissenborn, A., Brolle, D., Bentley, S., Kieser, T., Altenbuchner, J.
(2003). Streptomyces coelicolor A3(2) plasmid SCP2*: deductions from the complete sequence. Microbiology
149: 505-513
[Abstract]
[Full Text]
-
Rigali, S., Derouaux, A., Giannotta, F., Dusart, J.
(2002). Subdivision of the Helix-Turn-Helix GntR Family of Bacterial Regulators in the FadR, HutC, MocR, and YtrA Subfamilies. J. Biol. Chem.
277: 12507-12515
[Abstract]
[Full Text]
-
Sezonov, G., Possoz, C., Friedmann, A., Pernodet, J.-L., Guérineau, M.
(2000). KorSA from the Streptomyces Integrative Element pSAM2 Is a Central Transcriptional Repressor: Target Genes and Binding Sites. J. Bacteriol.
182: 1243-1250
[Abstract]
[Full Text]
-
Draper, G. C., McLennan, N., Begg, K., Masters, M., Donachie, W. D.
(1998). Only the N-Terminal Domain of FtsK Functions in Cell Division. J. Bacteriol.
180: 4621-4627
[Abstract]
[Full Text]
-
Sezonov, G., Duchêne, A.-M., Friedmann, A., Guérineau, M., Pernodet, J.-L.
(1998). . J. Bacteriol.
180: 3056-3061
[Abstract]
[Full Text]
-
Wu, L J, Lewis, P J, Allmansberger, R, Hauser, P M, Errington, J
(1995). A conjugation-like mechanism for prespore chromosome partitioning during sporulation in Bacillus subtilis.. Genes Dev.
9: 1316-1326
[Abstract]
Copyright © 1993 by the American Society for Microbiology. All rights reserved.