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B Guss

Publications and source records attributed to B Guss.

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Structure and evolution of the repetitive gene encoding streptococcal protein G.

The complete sequence of the structural gene encoding the immunoglobulin G binding protein from Streptococcus G148 has been determined, as well as its 5' and 3' flanking sequences. The sequence reveals an open reading frame encoding a putative preprotein with a relative molecular mass of 63294. N-Terminal sequencing of the mature protein, spontaneously released from streptococcal cells, demonstrates that the signal peptide consists of 33 amino acids. The DNA sequence reveals extensive internal homologies similar to other cell-wall-bound receptors from gram-positive bacteria. Comparisons with a related gene previously isolated from another strain of streptococci revealed large differences in size, due to variations in the number of internal repeats. The structure of the gene suggests an evolution through multiple duplications.

Amino Acid Sequence↗

Cloning and expression of the gene for a fibronectin-binding protein from Staphylococcus aureus.

The gene encoding the fibronectin-binding protein (FNBP) from Staphylococcus aureus strain 8325-4 was isolated from a gene bank in pBR322. The original clone, containing a 6.5-kb insert, gave a functional product present in the periplasm of Escherichia coli. Analysis of polypeptides isolated after affinity chromatography on fibronectin-Sepharose followed by ion-exchange chromatography revealed two gene products, 87 and 165 kd in mol. wt. The amino acid compositions of these two polypeptides and a native FNBP from S. aureus strain Newman were very similar. Antibodies raised against the native FNBP from strain Newman precipitated the 125I-labelled 165-kd polypeptide, and unlabeled 165- and 87-kd polypeptides as well as native FNBP inhibited the immunoprecipitation reactions. The region of the fnbp-gene encoding the fibronectin-binding activity has been identified and subcloned in an expression vector based on the staphylococcal protein A gene. The resulting product in E. coli is an extracellular fusion protein consisting of two IgG-binding domains of protein A followed by a fibronectin-binding region. The fusion protein binds to fibronectin and completely inhibits the binding of fibronectin to intact cells of S. aureus.

Cloning, Molecular↗

Structure of the IgG-binding regions of streptococcal protein G.

The gene encoding the IgG-binding protein G from Streptococcus G148 was isolated by molecular cloning. A subclone containing a 1.5-kb insert gave a functional product in Escherichia coli. Protein analysis of affinity-purified polypeptides revealed two gene products, both smaller than protein G spontaneously released from streptococci, but with identical IgG-binding properties. The complete nucleotide sequence of the insert revealed a repeated structure probably evolved through duplications of fragments of different sizes. The deduced amino acid sequence revealed an open reading frame extending throughout the insert, terminating in a TAA stop codon. Analysis of the two gene products by N-terminal amino acid determination suggests that two different TTG codons are recognized in E. coli for initiation of translation to yield the two products. Based on these results several truncated gene constructions were expressed and analysed. The results suggest that the C-terminal part of streptococcal protein G consists of three IgG-binding domains followed by a region which anchors the protein to the cell surface. Structural and functional comparisons with streptococcal M protein and staphylococcal protein A have been made.

Amino Acid Sequence↗

Analysis of protein A encoded by a mutated gene of Staphylococcus aureus Cowan I.

The protein A (spa) genes from Staphylococcus aureus Cowan I and a mutant strain of Cowan I called V-1 earlier suggested to produce a monovalent IgG-binding protein A have been cloned in Escherichia coli. The DNA sequences coding for the IgG-binding part of the spa genes from both strains have been determined and compared with each other and with a partial amino acid sequence of purified protein A from strain V-1. The nucleotide sequence of the spa gene from strain V-1 reveals an NH2-terminally located IgG-binding region homologous to region E first reported for strain 8325-4, region D and the major portion of region A. The amino acid sequence analysis of the purified protein A from this strain also shows the presence of regions E and D but only a minor part of region A. Reversed-phase high-performance liquid chromatography fractionation of purified protein A from strain V-1 revealed that the preparation was heterogeneous, containing mainly two peptides with different abilities to bind IgG molecules. A shuttle vector containing the cloned protein A gene from V-1 was constructed and transformed into different strains of S. aureus and the produced protein A was purified and analysed using sodium dodecyl sulfate/polyacrylamide gel electrophoresis.

Amino Acid Sequence↗

Complete sequence of the staphylococcal gene encoding protein A. A gene evolved through multiple duplications.

The gene coding for protein A from Staphylococcus aureus has been isolated by molecular cloning, and a subclone containing an 1.8-kilobase insert was found to give a functional protein A in Escherichia coli. The complete nucleotide sequence of the insert, including the structural gene and the 5' and 3' flanking sequences, has been determined. Starting from a TTG initiator codon, an open reading frame comprising 1527 nucleotides gives a preprotein of 509 amino acids and a predicted Mr = 58,703. The structural gene is flanked on both sides by palindromic structures followed by a stretch of T residues, suggesting transcriptional termination signals. Thus, it appears that protein A is translated from a monocistronic mRNA. The sequence reveals extensive internal homologies involving a 58-amino acid unit, responsible for IgG binding, repeated 5 times and an 8-amino acid unit, possibly responsible for binding to the cell wall of S. aureus, repeated 12 times. Comparisons between the repeated regions show a marked preference for silent mutations, indicating an evolutionary pressure to keep the amino acid sequence preserved. The structure of the gene also suggests how the gene has evolved.

Amino Acid Sequence↗

Region X, the cell-wall-attachment part of staphylococcal protein A.

The sequence of region X of staphylococcal protein A has been determined. The hypothesis has been put forward that this region spans the Staphylococcus aureus cell wall and is responsible for the binding to the peptidoglycan. The primary amino acid sequence of region X was determined for two strains exhibiting cell-wall-bound protein A, Cowan I and 8325-4. The sequence determination of the Cowan I material is partial and was performed by Edman degradation, in contrast to the sequence of the 8325-4 material which was completely analyzed by nucleotide sequencing of the corresponding gene. The region consists of two structurally different domains, a highly repetitive region (Xr), with an octapeptide structure repeated approximately 12 times, and a C-terminal domain (Xc) with an unique sequence. A comparison between the two strains reveals a high mutual homology as well as a high internal homology between the octapeptide structures. Six out of eight amino acids are identical in the repetition of this structure throughout region Xr in both proteins and the other two are changed in a rather regular pattern.

Amino Acid Sequence↗

Expression of the gene encoding protein A in Staphylococcus aureus and coagulase-negative staphylococci.

Two shuttle vectors containing the gene for protein A (spa) from Staphylococcus aureus have been constructed to study expression of the gene in various strains of S. aureus and in the coagulase-negative species Staphylococcus epidermidis, Staphylococcus capitis, and Staphylococcus xylosus. One plasmid, pSPA15, contains the complete structural gene for protein A, which binds to the cell wall in various Staphylococcus species. The other plasmid, pSPA16, codes for a truncated protein A lacking the C-terminal part called region X. The latter is exclusively extracellular in all Staphylococcus species tested, which confirms the importance of region X for cell wall binding. The expression of the plasmid-coded protein A in various strains of S. aureus is strongly correlated to the expression of the chromosomal spa gene. The coagulase-negative species expressing plasmid-encoded protein A produce 12 to 30% of the amount coded by the chromosomal spa gene in S. aureus strains Cowan I and A676.

Amino Acid Sequence↗

Gene fusion vectors based on the gene for staphylococcal protein A.

Two plasmid vectors, containing the gene coding for staphylococcal protein A and adapted for gene fusion, have been constructed. These vectors will allow fusion of any gene to the protein A gene, thus giving hybrid proteins which can be purified, in a one-step procedure, by IgG affinity chromatography. As an example of the practical use of such vectors, the protein A gene has been fused to the lacZ gene of Escherichia coli. E. coli strains containing such plasmids produce hybrid proteins with both IgG binding and beta-galactosidase activities. The hybrid protein(s) can be immobilized on IgG-Sepharose by its protein A moiety with high efficiency without losing its enzymatic activity and they can be eluted from the column by competitive elution with pure protein A. The fused protein(s) also binds to IgG-coated microtiter wells which means that the in vivo product can be used as an enzyme conjugate in ELISA tests.

Base Sequence↗

Gene for staphylococcal protein A.

The gene for protein A from Staphylococcus aureus was cloned into pBR322 in Escherichia coli. An immunoassay was used to detect production of the protein. Protein A produced in E. coli was found in the periplasmic space and was purified and concentrated by IgG-Sepharose affinity chromatography. DNA sequence assay of the gene revealed a region with the general features of a prokaryotic signal peptide and a fifth structural region homologous to the four repetitive regions found earlier by amino acid sequence determination of the mature protein. Upstream from the structural gene there is a possible promoter region and a ribosomal binding sequence typical of gram-positive bacteria. The initiation codon is TTG.

Base Sequence↗