Major proteins of the outer cell envelope membrane of Escherichia coli K-12: multiple species of protein I.
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Biomedical subjects
Publications and source records attributed to U Henning.
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Protein II, a major outer cell envelope membrane protein, was found together with lipopolysaccharide to stoichiometrically inhibit conjugation in Escherichia coli K12.
Three Escherichia coli phages, TuIa, TuIb, and TuII, were isolated from local sewage. We present evidence that they use the major outer membrane proteins Ia, Ib, and II, respectively, as receptors. In all cases the proteins, under the experimental conditions used, required lipopolysaccharide to exhibit their receptor activity. For proteins Ia and II, an approximately two- to eightfold molar excess of lipopolysaccharide (based on one diglucosamine unit) was necessary to reach maximal receptor activity. Lipopolysaccharide did not appear to possess phage-binding sites. It seemed that the lipopolysaccharide requirement reflected a protein-lipopolysaccharide interaction in vivo, and lipopolysaccharide may thus cause the specific localization of these proteins. Inactivation of phage TuII by a protein II-lipopolysaccharide complex was reversible as long as the complex was in solution. Precipitation of the complex with Mg2+ led to irreversible phage inactivation with an inactivation constant (37 degrees C)K = 7 X 10-2 ml/min per microgram. With phages TuIa and TuIb and their respective protein-lipopolysaccharide complexes, only irreversible inactivation was found at 37 degrees C. The activity of the three proteins as phage receptors shows that part of them must be located at the cells surface. In addition, the association of proteins Ia and Ib with the murein layer of the cell envelope makes this pair trans-membrane proteins.
Mutants of Escherichia coli have been analyzed which miss two of the major proteins of the outer cell envelope membrane. The two proteins I and II, normally are present at high concentrations (about 10(5) copies per cell). In such mutants, as compared with wild type, the phospholipid-to-protein ratio in the outer membrane has increased by a factor of 2.3 causing a considerable difference in density between wild type and mutant membranes. The concentrations of two other major components of the outer membrane, lipopolysaccharide and Braun's lipoprotein, did not change. The protein-deficient mutants do not exhibit gross functional defects in vitro. An increased sensitivity to EDTA and a slight such increase to dodecyl sulfate (but not to deoxycholate or Triton X-100) was observed, loss of so-called periplasmic enzymes was not found, and other differences to wild type are marginal. The mutants can grow with normal morphology. It is not possible, however, to prepare "ghosts" (particles of size and shape of the cell without murein, surrounded by a derivative of the outer membrane, and possessing the major proteins of this membrane) from them. This fact confirms our earlier suggestion that the proteins in question are required for the shape maintenance phenomenon in ghosts, and the mutants reject the speculation that these proteins are involved in the expression of the genetic information specifying cellular shape. Freeze-fracturing showed that in mutant cells, and in sharp contrast to wild type, the far predominant fracture plane is within the outer membrane. The concentration of the well known densely packed particles at the outer, concave leaflet of this fracture plane is greatly reduced. It was not possible, however, to clearly establish that one or the other protein is part of these particles because these ultrastructural differences were not apparent in mutants missing either one of the proteins only. The biochemical and ultrastructural data allow the conclusion that the loss of two major proteins and the concomitant increase of phospholipid concentration has changed the architecture of the outer membrane from a highly oriented structure, with a large fraction of protein-protein interaction, to one predominantly exhibiting planar lipid bilayer characteristics. E. coli thus can assemble rather different outer membranes, a fact excluding that outer membrane formation constitutes a highly ordered or strictly sequential assembly-line process.
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One of the major proteins of the Escherichia coli outer cell envelope membrane, protein I, can be separated electrophoretically into protein components Ia and Ib. Strain differences exist regarding presence or absence of component Ib and this component can selectively be lost by mutation to resistance against a phage. Both components Ia and Ib are further heterogeneous isoelectrically, and both together may contain at lease six separable isoelectric species. As judged by analysis of their cyanogen bromide fragments, Ia and Ib are almost identical concerning their primary structure; the difference (charge only or size and charge) was located in a part of the protein that does not correspond to the C-terminal or N-terminal regions. Components Ia and Ib thus represent essentially the same polypeptide and they may arise by a modification process in vitro or the existence of two almost identical genes.
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Homogenotes, heterogenotes, and intergeneric hybrids have been studied that are diploid for the structural gene of a major outer cell envelope membrane protein (protein II) from Escherichia coli. This protein can act as a phage receptor. In wild-type homogenotes, diploidy for the gene did not cause a gene dosage effect. It could be shown with two heterogenotes that both the chromosomal mutant and the episomal wild-type genes are expressed, and in each case more of the mutant than the wild-type protein species was found in the cell envelope. In on case of 21 phage-resistant mutants missing protein II was a trans effect observed of the mutant gene on the expression of the episomal wild type gene. Transfer of E. coli episomes carrying the protein II structural gene into Salmonella typhimurium and Proteus mirabilis resulted in intergeneric hybrids that became sensitive to the relevant phage and harbored the E. coli protein II in their cell envelopes. The results may be taken as suggestive evidence for a simple feedback mechanism for the regulation of synthesis of protein II, and they show that there are no highly specific requirements on protein primary structure for incorporation into an outer cell envelope membrane.
The cyanogen bromide fragments of protein I, a major protein of the Escherichia coli outer cell envelope membrane, have been isolated and characterized. There appear to be two methionine-serine or methionine-threonine sequences causing incomplete cleavage but complete conversion of methionine to homoserine. Largely due to the existence of these overlapping fragments the order of 5 of the 6 fragments present could be deduced. None of the fragments exhibits any remarkable low degree of polarity, and the tryptic fingerprint of the largest fragment (comprising about 60% of protein I) also does not show any conspicuous large fraction of lipophilic peptides. It is concluded that the domain of protein I that may be buried in the lipid phase of the outer membrane in all likelihood is not very large, and there is, in fact, no definite proof yet that protein I is a membrane protein sensu stricto.
A procedure is described that from one batch of cells allows the isolation of all major proteins of the outer cell envelope membrane of Escherichia coli B/r. The method involves differential extraction of cell envelopes with ionic and non-ionic detergents with and without Mg2+ present, and the proteins are finally separated by molecular sieve chromatography in the presence of sodium dodecylsulfate. From 200 g cell paste in ten days (including the five days chromatography) approximately 120 mg protein I (molecular weight approximately 38,000), approximately 110 mg protein II* (molecular weight approximately 33,000), approximately 50 mg protein III (molecular weight approximately 17,000), and approximately 30 mg protein IV (molecular weight approximately 7,000) are obtained in pure state, and these yields are near the expected ones assuming quantitatve recoveries. Protein II* is a heat-modifiable protein (perhaps due to complete unfolding and/or binding of sodium dodecyl-sulfate only at higher temperatures), and the isolated protein is completely in its unmodified form. Protein IV, Braun's lipoprotein, in the cell envelope exists in two forms, one covalently bound to the murein layer and the other not. The isolated protein IV represents the free form of the protein that so far had not been isolated; its protein part dies not differ substantially from that of the bound form.
Protein II*, one of the major Escherichia coli outer cell envelope membrane proteins has been characterized. The protein is heat-modifiable and perhaps due to complete unfolding and/or binding of sodium dodecylsulfate only at higher temperatures the modified protein exhibits a higher apparent molecular weight (33,000) than the non-modified form (28,000). Protein-chemical evidence as well as the behavior of two mutant proteins II* very strongly suggest that this protein consists of a single polypeptide chain and that in the strains studied there is no other major protein with similar characteristics. For another outer membrane protein, protein III (molecular weight 17,000), it has not yet been established if it should be classified as a major protein. Protein III consists of one or perhaps two polypeptide chains. The possibility existed that protein III is bound covalently to lipopolysaccharide, and this has been ruled out. Also, the lipopolysaccharide of the E. coli strains studied does not carry covalently bound protein in amounts anywhere near stoichiometry. N-on-protein substituents were neither found in protein II* nor in protein III. It is concluded that in E. coli B/r and the E. coli K12 strains used there are three major proteins: I, II, and IV; protein III may also belong to this class. There are not more major proteins than these. All four proteins are compared and discussed regarding their unknown functions and their relation to E. coli outer membrane proteins studied by other authors.
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Ghosts from Escherichia coli have been oxidized with CuSO4-o-phenanthroline or ferricyanide-ferrocene. Upon oxidation they became resistant to boiling dodecyl sulfate. The resulting rod-shaped "oxidation containers" apparently held together by disulfide bridges, are practically pure protein. They are soluble in dodecyl sulfate when reduced and they contain a set of about 30 different polypeptide chains. The four major ghost membrane proteins are not represented among the "oxidation proteins." Comparison of data obtained from digestion of ghosts with trypsin or particle-bound trypsin showed that most of the "oxidation proteins" appear to be located at the outer surface of the ghost membrane which is derived from the outer cell envelope membrane. One of the major ghost membrane proteins, II, is partially digested by trypsin, and it is shown that its trypsin sensitive part is also exposed only at the outer surface of the ghost membrane. Native cells could be oxidized only with low yields of "oxidation containers." However, cell envelopes prepared without detergents or chelating agents, as well as cells depleted of phospholipid or treated with sucrose-Triton X-100, are completely accessible to oxidation. In each case, the same set of proteins as that present in "oxidation containers" from ghosts was found to be covalently linked. Treatment of cells with trypsin caused the loss of about five "oxidation proteins" and a complete loss of oxidizability of the ghosts derived from these cells. It therefore appears that arrangement and localization of the "oxidation proteins" are not greatly different in cells and in ghosts, i.e., that these proteins are also situated asymmetrically at the outer cell envelope membrane.
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E. coli cells treated with the bifunctional crosslinking reagents dimethyl malonimidate, succinimidate, adipimidate, suberimidate, and sebacinimidate served for the isolation of rod-shaped "ghosts." These ghosts proved to be crosslinked over their entire surface; i.e., a macromolecule (resistant to boiling 1% Na dodecyl sulfate) the size of the cell had been created. Also, ghosts could similarly be crosslinked. In both cases, the final "sacs" contained about 60-70% protein, and very little or no lipopolysaccharide. When ghosts from which phospholipid had been removed were crosslinked, the covalently closed ghosts were almost pure protein; 80-90% of their dry mass was accounted for by protein. Ammonolysis of the crosslinked material (whether stemming from crosslinked cells or ghosts) showed that the same four proteins (Na dodecyl sulfate gel bands) had been crosslinked that are found in normally prepared ghosts. These observations practically exclude the hypothesis that a fluid mosaic model of membrane structure can be applied to the outer membrane of the E. coli cell envelope; rather, extensive protein-protein interactions must exist over the whole surface of this membrane. These findings are consistent with the possibility that the ghost polypeptide chains are involved in the determination of cellular shape.
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