Literature DB >> 1909421

Localization and orientation of the VirD4 protein of Agrobacterium tumefaciens in the cell membrane.

S Okamoto1, A Toyoda-Yamamoto, K Ito, I Takebe, Y Machida.   

Abstract

The virD4 gene of Agrobacterium tumefaciens is essential for the formation of crown galls. Analysis of the nucleotide sequence of virD4 has suggested that the N-terminal region of the encoded protein acts as a signal peptide for the transport of the VirD4 protein to the cell membrane of Agrobacterium. We have examined the localization and orientation of this protein in the cell membrane. When the nucleotides encoding the first 30 to 41 amino acids from the N-terminus of the VirD4 protein were fused to the gene for alkaline phosphatase from which the signal sequence had been removed, alkaline phosphatase activity was detectable under appropriate conditions. Immunoblotting with VirD4-specific antiserum indicated that the VirD4 protein could be recovered exclusively from the membrane fraction of Agrobacterium cells. Moreover, when the membrane fraction was separated into inner and outer membrane fractions by sucrose density-gradient centrifugation, VirD4 protein was detected in the inner-membrane fraction and in fractions that sedimented between the inner and outer membrane fractions. By contrast, the VirD4'/alkaline phosphatase fusion protein with the N-terminal sequence from VirD4 was detected only in the inner membrane fraction. Treatment of spheroplasts of Agrobacterium cells with proteinase K resulted in digestion of the VirD4 protein. These results indicate that the VirD4 protein is transported to the bacterial membrane and anchored on the inner membrane by its N-terminal region. In addition, the C-terminal portion of the VirD4 protein probably protrudes into the periplasmic space, perhaps in association with some unidentified cellular factor(s).

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Year:  1991        PMID: 1909421     DOI: 10.1007/bf00282443

Source DB:  PubMed          Journal:  Mol Gen Genet        ISSN: 0026-8925


  55 in total

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2.  Octopine and nopaline strains of Agrobacterium tumefaciens differ in virulence; molecular characterization of the virF locus.

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3.  Agrobacterium tumefaciens and the susceptible plant cell: a novel adaptation of extracellular recognition and DNA conjugation.

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Authors:  M Achtman; P A Manning; C Edelbluth; P Herrlich
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5.  Cleavage of structural proteins during the assembly of the head of bacteriophage T4.

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6.  Separation and characterization of the outer membrane of Pseudomonas aeruginosa.

Authors:  T Mizuno; M Kageyama
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Review 8.  T-DNA of the Agrobacterium Ti and Ri plasmids.

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Authors:  D J Klionsky; S D Emr
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Authors:  A Herrera-Estrella; Z M Chen; M Van Montagu; K Wang
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  37 in total

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Review 2.  The bases of crown gall tumorigenesis.

Authors:  J Zhu; P M Oger; B Schrammeijer; P J Hooykaas; S K Farrand; S C Winans
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4.  Relationship of DNA-transfer-systems: essential transfer factors of plasmids RP4, Ti and F share common sequences.

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6.  Stability of the Agrobacterium tumefaciens VirB10 protein is modulated by growth temperature and periplasmic osmoadaption.

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Review 7.  Agrobacterium tumefaciens T-complex transport apparatus: a paradigm for a new family of multifunctional transporters in eubacteria.

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8.  The Agrobacterium rhizogenes GALLS gene encodes two secreted proteins required for genetic transformation of plants.

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9.  The mating pair formation system of plasmid RP4 defined by RSF1010 mobilization and donor-specific phage propagation.

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10.  An anomalous type IV secretion system in Rickettsia is evolutionarily conserved.

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