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Physical and Functional S-layer Reconstitution in Aeromonas Salmonicida

Overview
Journal J Bacteriol
Specialty Microbiology
Date 1995 May 1
PMID 7751277
Citations 10
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Abstract

The various functions attributed to the S-layer of Aeromonas salmonicida have been previously identified by their conspicuous absence in S-layer-defective mutants. As a different approach to establish the multifunctional nature of this S-layer, we established methods for reconstitution of the S-layer of A. salmonicida. Then we investigated the functional competence of the reconstituted S-layer. S-layers were reconstituted in different systems: on inert membranes or immobilized lipopolysaccharide (LPS) from purified S-layer protein (A-protein) or on viable cells from either A-protein or preassembled S-layer sheets. In the absence of divalent cations and LPS, purified A-protein in solution spontaneously assembled into tetrameric oligomers and, upon concentration by ultrafiltration, into macroscopic, semicrystalline sheets formed by oligomers loosely organized in a tetragonal arrangement. In the presence of Ca2+, purified A-protein assembled into normal tetragonal arrays of interlocked subunits. A-protein bound with high affinity (Kd, 1.55 x 10(-7) M) and specificity to high-molecular-weight LPS from A. salmonicida but not to the LPSs of several other bacterial species. In vivo, A-protein could be reconstituted only on A. salmonicida cells which contained LPS, and Ca2+ affected both a regular tetragonal organization of the reattached A-protein and an enhanced reattachment of the A-protein to the cell surface. The reconstitution of preformed S-layer sheets (produced by an S-layer-secreting mutant) to an S-layer-negative mutant occurred consistently and efficiently when the two mutant strains were cocultured on calcium-replete solid media. Reattached A-protein (exposed on the surface of S-layer-negative mutants) was able to bind porphyrins and an S-layer-specific phage but largely lacked regular organization, as judged by its inability to bind immunoglobulins. Reattached S-layer sheets were regularly organized and imparted the properties of porphyrin binding, hydrophobicity, autoaggregation, adherence to and invasion of fish macrophages and epithelial cells, and resistance to macrophage cytotoxicity. However, cells with reconstituted S-layers were still sensitive to complement and insensitive to the antibiotics streptonigrin and chloramphenicol, indicating incomplete functional reconstitution.

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References
1.
Ishiguro E, Ainsworth T, Trust T, KAY W . Congo red agar, a differential medium for Aeromonas salmonicida, detects the presence of the cell surface protein array involved in virulence. J Bacteriol. 1985; 164(3):1233-7. PMC: 219320. DOI: 10.1128/jb.164.3.1233-1237.1985. View

2.
Belland R, Trust T . Synthesis, export, and assembly of Aeromonas salmonicida A-layer analyzed by transposon mutagenesis. J Bacteriol. 1985; 163(3):877-81. PMC: 219213. DOI: 10.1128/jb.163.3.877-881.1985. View

3.
Van Alstine J, Trust T, Brooks D . Differential partition of virulent Aeromonas salmonicida and attenuated derivatives possessing specific cell surface alterations in polymer aqueous-phase systems. Appl Environ Microbiol. 1986; 51(6):1309-13. PMC: 239063. DOI: 10.1128/aem.51.6.1309-1313.1986. View

4.
Sakai D . Electrostatic mechanism of survival of virulent Aeromonas salmonicida strains in river water. Appl Environ Microbiol. 1986; 51(6):1343-9. PMC: 239068. DOI: 10.1128/aem.51.6.1343-1349.1986. View

5.
Belland R, Trust T . Cloning of the gene for the surface array protein of Aeromonas salmonicida and evidence linking loss of expression with genetic deletion. J Bacteriol. 1987; 169(9):4086-91. PMC: 213712. DOI: 10.1128/jb.169.9.4086-4091.1987. View