Molecular genetic analysis of membrane protein topology.
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Biomedical subjects
Publications and source records attributed to J Beckwith.
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Escherichia coli alkaline phosphatase, coded for by the phoA gene, is normally translocated across the cytoplasmic membrane into the periplasm with high efficiency. We have constructed a series of derivatives of the phoA gene that code for a wild-type signal sequence but result in altered amino acid sequences at the amino terminus of the mature alkaline phosphatase. Our results suggest that the presence of two positively charged amino acids very early in the mature sequence interferes significantly with protein export. In one case, phoA2AB, the presence of the sequence Arg-Ile-Arg at the amino terminus of alkaline phosphatase results in a 50-times reduction in the export of the protein. By using oligonucleotide-directed mutagenesis, we have constructed mutant derivatives of phoA2AB that are greatly enhanced for export. In all cases, these derivatives reduce the net positive charge in the region. Our results may explain the failure of E. coli to export a number of proteins coded for by artificial constructs and suggest a way to improve export in these cases.
A fusion between tsr (encoding the inner membrane protein Tsr) and phoA (encoding the periplasmic protein alkaline phosphatase, AP) generates a membrane-bound hybrid protein (Tsr-AP 2) with AP enzymatic activity. The hybrid protein is proteolytically unstable and is broken down to yield a smaller, soluble species with AP activity. We devised a genetic screen to distinguish between cells containing only membrane-bound AP and those containing soluble AP. The screen depends on diffusion of soluble AP away from cells with a leaky outer membrane to produce a halo of AP activity around colonies on solid growth medium. Several mutants lacking this halo show reduced degradation of Tsr-AP 2. One mutant is also defective in breakdown of five other abnormal periplasmic proteins but not of two cytoplasmic proteins. The mutation in this strain, degP4::Tn5, defines a locus distinct from previously identified loci that affect protein stability or protease activities. This strain may be useful for preventing the breakdown of unstable foreign proteins in Escherichia coli.
It was shown previously that the secA gene of Escherichia coli is derepressed in cells that have a defect in protein export. Here it is demonstrated that the beta-galactosidase produced by a secA-lacZ gene fusion strain is regulated in the same way. Studies on the fusion strain reveal that the promoter or a site involved in regulation of the secA gene is located considerably upstream from the structural gene. The properties of the fusion strain provide a new selection for mutants that are defective in protein export. Selection for increased lac expression of a secA-lacZ fusion strain yields mutations in three of the known sec genes, secA, secD and prlA/secY. In addition, mutations in several genes not previously known to affect secA expression were obtained. A mutation in one of these genes causes a pleiotropic defect in protein export and a cold-sensitive growth defect; this gene, which maps at approximately 90 min on the bacterial chromosome, has been named secE.
The transposon TnphoA can be used specifically to detect bacterial genes that code for cell envelope proteins. We have used TnphoA to search for genes regulated by osmolarity in Escherichia coli. Among approximately 30,000 random insertions of TnphoA into the chromosome, we have found 700 independent fusions that produce hybrid proteins with alkaline phosphatase activity. Of these, 37 were induced after growth in a medium of high osmolarity and none was repressed. Osmo-inducible fusions of phoA were found to ompC and to a gene that is probably proU. These two genes were already known to be transcriptionally induced by osmolarity. In addition, eight other genes, designated osm, were identified and mapped on the bacterial chromosome. The expression of these genes is induced by solutes that are unable to decrease the turgor pressure applied to the envelope. One of the osm genes, osmI, is also specifically induced by glycerol, which does diffuse across the cytoplasmic membrane. The expression and osmoregulation of all the osm genes were shown to occur independently of ompR and envZ, which control the expression and osmoregulation of the ompC and ompF genes in E. coli.
It has been proposed that Glu-181 of the catabolite gene activator protein (CAP) makes direct contact with certain base pairs of the specific DNA site. We have purified wild-type CAP and two substituted CAP variants, [Val181]CAP and [Leu181]CAP, and have assessed the DNA-sequence-recognition properties in vitro with respect to positions 5, 6, 7, 8, and 16 of the DNA site. The data indicate that [Val181]CAP and [Leu181]CAP fail to discriminate between the consensus DNA base pair and the three non-consensus-DNA base pairs at 2-fold-related positions 7 and 16 of the DNA site. In contrast, [Val181]CAP and [Leu181]CAP retain the ability to discriminate between different base pairs at positions 5 and 8 of the DNA site. We conclude that Glu-181 of CAP makes a direct contact with 2-fold-related positions 7 and 16 of the DNA site, as proposed previously based on in vivo results. We propose that upon replacement of Glu-181 by valine or leucine, this contact is eliminated and is replaced by no other functional contact. We estimate that the contact by Glu-181 with each position contributes -0.7 kcal/mol to the total CAP-DNA binding free energy.
The topology of the integral membrane protein MalF, which is required for maltose transport in Escherichia coli, has been analyzed using fusions of alkaline phosphatase (EC 3.1.3.1). The properties of such fusion strains support a MalF structure previously proposed on theoretical grounds. Several transmembrane segments within MalF can act as signal sequences in exporting alkaline phosphatase. Other transmembrane sequences, in conjunction with cytoplasmic domains, can stably anchor alkaline phosphatase in the cytoplasm. Our results suggest that features of the amino acid sequence (possibly the positively charged amino acids) of the cytoplasmic domains of membrane proteins are important in anchoring these domains in the cytoplasm. These studies in conjunction with our earlier results show that alkaline phosphatase fusions to membrane proteins can be an important aid in analyzing membrane topology and its determinants.
New mutants of Escherichia coli altered in protein export were identified in phoA-lacZ and lamB-lacZ gene fusion strains by searching for mutants that showed an altered lactose phenotype. Several mutations mapped in a new gene, secD. These mutants were, in general, cold sensitive for growth, and the mutations led to an accumulation of precursor of exported proteins. The secD gene is closely linked to tsx on the E. coli chromosome, but separable from another gene proposed to be involved in export, ssaD, which maps nearby. A plasmid carrying secD+ was identified and used to show that the mutations are recessive. The secD gene may code for a component of the cellular export machinery.
The structural gene (appA) for the periplasmic acid phosphatase (optimum pH 2.5) of Escherichia coli was cloned into a plasmid by using a combination of in vivo and in vitro techniques. The position and orientation of the appA gene within the cloned DNA fragment were identified by using fusions to the alkaline phosphatase gene (phoA) generated by Tn5 IS50L::phoA (TnphoA) insertions. For TnphoA-generated hybrid proteins to have high enzymatic activity, it appears that the phoA gene must be fused to a target gene coding for a signal which promotes protein export. The approach used to identify the appA gene thus appears to provide a simple general means of selectively identifying genes encoding membrane and secreted proteins.
Fusions of the secreted protein alkaline phosphatase to an integral cytoplasmic membrane protein of Escherichia coli showed different activities depending on where in the membrane protein the alkaline phosphatase was fused. Fusions to positions in or near the periplasmic domain led to high alkaline phosphatase activity, whereas those to positions in the cytoplasmic domain gave low activity. Analysis of alkaline phosphatase fusions to membrane proteins of unknown structure may thus be generally useful in determining their membrane topologies.
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We describe mutants of Escherichia coli that decrease the plasmid copy number of pBR322 derivatives. One mutant was partially characterized genetically and its mutation, designated pcnB for plasmid copy number, was mapped to approximately 3 min on the E. coli chromosome. This locus is distinct from other genes whose products are known to affect plasmid replication or stable plasmid maintenance. The pcnB mutant strain should be useful for cloning genes into pBR322 that have aberrant or deleterious effects on the cell when present in high copy number.
An amber mutation in the secA gene of Escherichia coli causes a pleiotropic decrease in the synthesis of secreted proteins, including maltose-binding protein (MBP) and alkaline phosphatase. Reversal of the inhibition of MBP synthesis in secA(Am) strains by signal sequence mutations in the malE gene has been reported. These results suggest a coupling between secretion and translation which involves an interaction between the signal sequence of nascent polypeptides and a cellular secretion machinery. Further analysis reported here indicated that signal sequence mutations of MBP or alkaline phosphatase did not selectively overcome the inhibition of MBP or alkaline phosphatase synthesis in secA(Am) strains. Rather, at a given time in parallel experiments there was substantial variability among closely isogenic secA(Am) strains in the magnitude of the synthesis block; this variability could account for the earlier results. Further experiments suggested that the inhibition of MBP synthesis in secA(Am) strains was caused by depletion of cyclic AMP, leading to decreased transcription of the malE gene. However, the secretion defects in secA(Am) strains were not affected by cyclic AMP levels. Therefore, we conclude that the reduction in MBP synthesis was a secondary consequence of the primary export defect in the secA(Am) strains.
We devised a new selection for conditionally lethal suppressors of secA mutants. This selection allows the isolation of both temperature-sensitive and cold-sensitive suppressor mutations, whereas previous studies were limited to nonlethal or cold-sensitive suppressor mutations. Two temperature-sensitive suppressor mutations lie in genes required for protein synthesis: asnS, the gene for the asparaginyl-tRNA synthetase, and divE, which encodes the tRNASer1. A previously characterized mutation in alaS, the gene for the alanyl-tRNA synthetase, suppresses the growth and secretion defects of a secA mutant. Although the primary effects of these suppressor mutations are different, it is likely that they cause suppression of secA mutations by altering the rate of protein synthesis, since the protein synthesis inhibitors, chloramphenicol and tetracycline, also suppress secA mutations. Chloramphenicol also suppresses the growth defect of certain other sec mutants. We postulate that the impaired secretory capacity of sec mutants can be offset by decreasing the rate of elongation of secreted proteins or by decreasing the total amount of secreted proteins per cell. The results indicate that our initial goal to identify cellular secretory components as suppressors of secA mutations might be difficult to achieve because of a high frequency of nonspecific suppressors that alter protein synthesis. Unexpectedly, the suppressor approach provides a direct genetic selection for mutants in protein synthesis.
We isolated a collection of mutants defective in the export of alkaline phosphatase to the periplasm. Two classes of mutants were obtained: one class with lesions unlinked to the phoA gene and a second class harboring linked mutations. Among the former class, one mutant is cold sensitive for growth and may be defective in a component of the Escherichia coli secretory apparatus. Included in the latter class are 47 mutants which are characterized in detail in this report. To facilitate DNA sequence analysis of these mutants, we devised a convenient method that relies on homologous recombination in vivo to transfer phoA mutations from the bacterial chromosome directly onto the genome of a single-stranded M13 phage vector. DNA sequence analysis revealed that our collection of mutants comprises six unique mutations, all of which reside in the phoA signal sequence coding region and lend further support to the notion that the length of the hydrophobic core of the signal sequence is crucial for its function in protein export. Kinetic studies showed that in these mutants, the small fraction of alkaline phosphatase which succeeds in reaching a periplasmic location, despite a defective signal sequence, is translocated across the membrane in a slow, posttranslational fashion.
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Kline et al. (1980) have reported that indole-3-acetic acid (IAA) and four other indole derivatives are able to substitute for cAMP in activating expression of the ara regulon of E. coli. We have examined this phenomenon in detail, utilizing fusions between the structural gene for beta-galactosidase and the promoters for the araBAD, araE, and araFG operons. We confirm that IAA potently stimulates transcription from the araBAD promoter. The effect is highly specific to araBAD, as IAA has no, or only slight, effects on the araE and araFG operons. However, contrary to the results of Kline et al., we find that the action of IAA does not require CAP. Thus, IAA fully stimulates the transcription of araBAD in a strain which bears a complete deletion of the crp gene.
We constructed a derivative of transposon Tn5 that permits the generation of hybrid proteins composed of alkaline phosphatase (EC 3.1.3.1) lacking its signal peptide fused to amino-terminal sequences of other proteins. Such a hybrid gives alkaline phosphatase activity if the protein fused to alkaline phosphatase contributes sequences that promote export and thus compensate for the missing alkaline phosphatase signal peptide. Fusions to both a secreted periplasmic protein and a complex cytoplasmic membrane protein led to alkaline phosphatase activity. TnphoA fusions should help localize export signals within the structure of a protein, such as a transmembrane protein, as well as identify new chromosomal genes for secreted and transmembrane proteins.