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C Georgopoulos

Publications and source records attributed to C Georgopoulos.

At least 109 records · Page 6Linked to original sources

The Escherichia coli groE chaperonins.

The E.coli groES and groEL genes have been shown to form an operon, to be essential for E. coli viability, and to belong to the so-called heat-shock class of genes whose expression is regulated by the intracellular levels of sigma factor sigma 32. Both groE chaperonin proteins possess a seven-fold axis of symmetry, groES being composed of seven identical subunits of 97 amino acids each, and groEL of fourteen identical subunits of 548 amino acids each. The two groE chaperonins interact intimately as judged by both genetic and biochemical criteria. This interaction has been shown to be required for both bacteriophage morphogenesis and bacterial growth. The groEL chaperonin has been shown to bind to a number of incomplete or unfolded polypeptides in vitro. Such binding may prevent misfolding and promote rapid intra- or intermolecular folding of polypeptides in vivo. The proposed role of the groES chaperonin is to displace the polypeptides bound to groEL, thus effectively promoting the recycling of groEL.

Bacterial Proteins↗

Functional domains of the Escherichia coli dnaK heat shock protein as revealed by mutational analysis.

The employment of a set of truncated dnaK peptides produced by deletion and insertion mutations in the Escherichia coli dnaK gene allowed us to define regions of the dnaK protein which are involved in particular enzymatic functions. The results obtained suggest that the dnaK polypeptide is organized into at least two distinct functional domains. The highly conserved amino-terminal portion is required for the ATPase activity. The carboxyl-terminal portion, characterized by relatively low similarity among species, is responsible for the autophosphorylating activity. The mutant dnaK protein C[74], which lacks amino acid sequences at the extreme carboxyl-terminal portion of the protein, retains both the ATPase and the autophosphorylating activities. The results obtained with the full-length (70-kDa) dnaK756 protein suggest that the thermolabile defect of the dnaK756 mutation affects directly or indirectly the ATPase active site of the enzyme. The autophosphorylating activity of the dnaK+, dnaK756, and C[74] polypeptides was activated at least 10-fold by the addition of CaCl2.

Adenosine Triphosphatases↗

Purification and properties of the Escherichia coli heat shock protein, HtpG.

As a preliminary to the understanding of the function of the highly conserved Escherichia coli heat shock protein HtpG, the protein was purified and partially characterized. The htpG gene was subcloned into the inducible expression vector, pT7-6. Upon induction, the HtpG protein accumulated to approximately 30% of the total protein in the cell. A purification scheme was devised which involved column chromatography on DEAE-cellulose, hydroxylapatite, and Sephacryl S-200. The amino acid composition of the purified protein corresponded closely with the predicted amino acid composition derived from the DNA sequence, and the sequence of the 8 amino-terminal residues matched the predicted sequence exactly. The molecular weight of the denatured protein is 65,500 and the native molecular weight is 144,620, as calculated by using both the Stokes radius and the sedimentation coefficient. As the molecular weight predicted from the DNA sequence is 71,429, this indicates the HtpG protein is a dimer. The HtpG protein was found to be a phosphoprotein. Thus, HtpG is structurally similar to its eukaryotic homologue, hsp83, which is also a phosphoprotein and a dimer.

Amino Acids↗

Initiation of lambda DNA replication with purified host- and bacteriophage-encoded proteins: the role of the dnaK, dnaJ and grpE heat shock proteins.

Based on previous in vivo genetic analysis of bacteriophage lambda growth, we have developed two in vitro lambda DNA replication systems composed entirely of purified proteins. One is termed 'grpE-independent' and consists of supercoiled lambda dv plasmid DNA, the lambda O and lambda P proteins, as well as the Escherichia coli dnaK, dnaJ, dnaB, dnaG, ssb, DNA gyrase and DNA polymerase III holoenzyme proteins. The second system includes the E.coli grpE protein and is termed 'grpE-dependent'. Both systems are specific for plasmid molecules carrying the ori lambda DNA initiation site. The major difference in the two systems is that the 'grpE-independent' system requires at least a 10-fold higher level of dnaK protein compared with the grpE-dependent one. The lambda DNA replication process may be divided into several discernible steps, some of which are defined by the isolation of stable intermediates. The first is the formation of a stable ori lambda-lambda O structure. The second is the assembly of a stable ori lambda-lambda O-lambda P-dnaB complex. The addition of dnaJ to this complex also results in an isolatable intermediate. The dnaK, dnaJ and grpE proteins destabilize the lambda P-dnaB interaction, thus liberating dnaB's helicase activity, resulting in unwinding of the DNA template. At this stage, a stable DNA replication intermediate can be isolated, provided that the grpE protein has acted and/or is present. Following this, the dnaG primase enzyme recognizes the single-stranded DNA-dnaB complex and synthesizes RNA primers. Subsequently, the RNA primers are extended into DNA by DNA polymerase III holoenzyme. The proposed model of the molecular series of events taking place at ori lambda is substantiated by the many demonstrable protein-protein interactions among the various participants.

Bacterial Proteins↗

Three pure chaperone proteins of Escherichia coli--SecB, trigger factor and GroEL--form soluble complexes with precursor proteins in vitro.

Diverse studies of three cytoplasmic proteins of Escherichia coli--SecB, trigger factor and GroEL--have suggested that they can maintain precursor proteins in a conformation which is competent for membrane translocation. These proteins have been termed 'chaperones'. Using purified chaperone proteins and precursor protein substrates, we find that each of these chaperones can stabilize proOmpA for translocation and for the translocation-ATPase. These chaperones bind to proOmpA to form isolable complexes. SecB and GroEL will also form complexes with another exported protein, prePhoE. In contrast, these chaperones do not form stable complexes with a variety of soluble proteins such as SecA protein, bovine serum albumin, ovalbumin or ribonuclease A. While chaperones may transiently interact with soluble proteins to catalyze their folding, the stable interaction between chaperones and presecretory proteins, maintaining an open conformation which is essential for translocation, may commit these proteins to the secretion pathway.

Adenosine Triphosphatases↗

The groES and groEL heat shock gene products of Escherichia coli are essential for bacterial growth at all temperatures.

The products of the groES and groEL genes of Escherichia coli, constituting the groE operon, are known to be required for growth at high temperature (42 degrees C) and are members of the heat shock regulon. Using a genetic approach, we examined the requirement for these gene products for bacterial growth at low temperature (17 to 30 degrees C). To do this, we constructed various groES groEL heterodiploid derivative strains. By inactivating one of the groE operons by a polar insertion, it was shown by bacteriophage P1 transduction that at least one of the groE genes was essential for growth at low temperature. Further P1 transduction experiments with strains that were heterodiploid for only one of the groE genes demonstrated that both groE gene products were required for growth at low temperature, which suggested a fundamental role for the groE proteins in E. coli growth and physiology.

Bacterial Proteins↗

Identification, characterization, and mapping of the Escherichia coli htrA gene, whose product is essential for bacterial growth only at elevated temperatures.

We identified and cloned an Escherichia coli gene called htrA (high temperature requirement). The htrA gene was originally discovered because mini-Tn10 transposon insertions in it allowed E. coli growth at 30 degrees C but prevented growth at elevated temperatures (above 42 degrees C). The htrA insertion mutants underwent a block in macromolecular synthesis and eventually lysed at the nonpermissive temperature. The htrA gene was located at approximately 3.7 min (between the fhuA and dapD loci) on the genetic map of E. coli and between 180 and 187.5 kilobases on the physical map. It coded for an unstable, 51-kilodalton protein which was processed by removal of an amino-terminal fragment, resulting in a stable, 48-kilodalton protein.

Chromosome Mapping↗

Modulation of stability of the Escherichia coli heat shock regulatory factor sigma.

The heat shock response of Escherichia coli is under the positive control of the sigma 32 protein (the product of the rpoH gene). We found that overproduction of the sigma 32 protein led to concomitant overproduction of the heat shock proteins, suggesting that the intracellular sigma 32 levels limit heat shock gene expression. In support of this idea, the intracellular half-life of the sigma 32 protein synthesized from a multicopy plasmid was found to be extremely short, e.g., less than 1 min at 37 and 42 degrees C. The half-life increased progressively with a decrease in temperature, reaching 15 min at 22 degrees C. Finally, conditions known previously to increase the rate of synthesis of the heat shock proteins, i.e., a mutation in the dnaK gene or expression of phage lambda early proteins, were shown to simultaneously result in a three- to fivefold increase in the half-life of sigma 32.

Escherichia coli↗

Escherichia coli DnaK and GrpE heat shock proteins interact both in vivo and in vitro.

Previous studies have demonstrated that the Escherichia coli dnaK and grpE genes code for heat shock proteins. Both the Dnak and GrpE proteins are necessary for bacteriophage lambda DNA replication and for E. coli growth at all temperatures. Through a series of genetic and biochemical experiments, we have shown that these heat shock proteins functionally interact both in vivo and in vitro. The genetic evidence is based on the isolation of mutations in the dnaK gene, such as dnaK9 and dnaK90, which suppress the Tr- phenotype of bacteria carrying the grpE280 mutation. Coimmunoprecipitation of DnaK+ and GrpE+ proteins from cell lysates with anti-DnaK antibodies demonstrated their interaction in vitro. In addition, the DnaK756 and GrpE280 mutant proteins did not coimmunoprecipitate efficiently with the GrpE+ and DnaK+ proteins, respectively, suggesting that interaction between the DnaK and GrpE proteins is necessary for E. coli growth, at least at temperatures above 43 degrees C. Using this assay, we found that one of the dnaK suppressor mutations, dnaK9, reinstated a protein-protein interaction between the suppressor DnaK9 and GrpE280 proteins.

Bacteriophage lambda↗

The heat-shock-regulated grpE gene of Escherichia coli is required for bacterial growth at all temperatures but is dispensable in certain mutant backgrounds.

Previous work has established that the grpE+ gene product is a heat shock protein that is essential for bacteriophage lambda growth at all temperatures and for Escherichia coli growth at temperatures above 43 degrees C. Here it is shown that the grpE+ gene product is essential for bacterial viability at all temperatures. The strategy required constructing a grpE deletion derivative carrying a selectable chloramphenicol drug resistance marker provided by an omega insertion and showing that this deletion construct can be crossed into the bacterial chromosome if and only if a functional grpE+ gene is present elsewhere in the same cell. As a control, the same omega insertion could be placed immediately downstream of the grpE+ coding sequence without any observable effects on host growth. This result demonstrates that the inability to construct a grpE-deleted E. coli strain is not simply due to a lethal polar effect on neighboring gene expression. Unexpectedly, it was found that the grpE deletion derivative could be crossed into the bacterial chromosome in a strain that was defective in DnaK function. Further analysis showed that it was not the lack of DnaK function per se that allowed E. coli to tolerate a deletion in the grpE+ gene. Rather, it was the presence of unknown extragenic suppressors of a dnaK mutation that somehow compensated for the deficiency in both DnaK and GrpE function.

Blotting, Western↗

Initiation of lambda DNA replication reconstituted with purified lambda and Escherichia coli replication proteins.

Using highly purified bacteriophage lambda and E. coli replication proteins, we were able to reconstitute an in vitro system capable of replication ori lambda-containing plasmid DNA. The addition of a new E. coli factor, the grpE gene product, to this replication system reduced the level of dnaK protein required for efficient DNA synthesis by at least 10-fold, and also allowed the isolation of a stable DNA replication intermediate. Based on all available information, we propose a molecular mechanism for the action of the dnaK and grpE proteins during the prepriming reaction leading to lambda DNA synthesis.

Bacterial Proteins↗

Sequence analysis and regulation of the htrA gene of Escherichia coli: a sigma 32-independent mechanism of heat-inducible transcription.

Previous work has established that the E. coli htrA gene product is essential for bacterial survival at temperatures above 42 degrees. We have sequenced the htrA gene region and found an open reading frame (ORF) coding for a protein of 491 amino acids with a calculated molecular weight of 51,163 daltons. This molecular weight corresponds well with that seen following electrophoresis on SDS-polyacrylamide gels. This protein has an amino-terminal sequence typical for a leader peptide and undergoes post-translational modification by cleavage of an amino-terminal portion. The insertional mutations which affect the function of the htrA gene map inside this ORF. The levels of htrA mRNA increase rapidly and transiently upon heat shock in a manner independent of the rpoH gene, which encodes the sigma 32 RNA polymerase subunit and is known to regulate transcription of typical heat shock genes. Using S1 mapping and RNA primer extension, we have identified the htrA promoter and found that it is similar to the P3 promoter of the rpoH gene. The P3 promoter is especially active at high temperatures and is recognized by a recently identified transcriptional factor, sigma E.

Amino Acid Sequence↗

Sequence analysis and transcriptional regulation of the Escherichia coli grpE gene, encoding a heat shock protein.

We have sequenced the Escherichia coli grpE gene and shown that it encodes a 197-amino acid residue protein of 21,668-Mr. The predicted N-terminal amino acid sequence, as well as the overall amino acid composition agree well with that of the purified protein. From Northern analysis, we have shown that transcription of the grpE gene is under heat shock regulation, i.e., there is a rapid and transient increase in the rate of synthesis of grpE mRNA upon a shift-up in temperature. Forty-six bases upstream of the structural gene is a sequence closely related to the consensus heat shock promoter identified by Cowing et al. [Proc. Natl. Acad. Sci. U.S.A, 82, 2679-2683]. We have shown by S1 mapping and RNA sequencing that this is indeed the promoter for the grpE mRNA. It appears that all discernable transcription initiates only from this promoter, even under non-heat shock conditions.

Amino Acid Sequence↗

Purification and properties of the NusB protein of Escherichia coli.

Mutations in the nusB gene of Escherichia coli block transcriptional antitermination mediated by the N gene protein of bacteriophage lambda. We describe here two methods of overproducing the NusB protein in E. coli and a method of purifying NusB to apparent homogeneity on a large scale. Purified NusB directly stimulates transcriptional antitermination by the lambda N protein in vitro. It behaves as a monomer (Mr = 15,689) during gel permeation chromatography and gradient sedimentation. The number of NusB molecules in a wild type E. coli K12 cell ranges from about 3,000 to about 6,000 molecules/cell, depending on the growth medium, and is about 50-80% of the number of molecules of the core component of RNA polymerase in the cell. This implies that NusB has a major role in regulating chain elongation during the transcription of E. coli genes. Many E. coli strains with nusB mutations cannot grow at low temperature. However, a sup+ strain with the suppressible amber mutation nusBam115 can grow at 42 degrees C. Since such a strain does not produce NusB protein detectable by immunoprecipitation with anti-NusB, normal amounts of NusB are not essential for the survival of E. coli at 42 degrees C.

Bacterial Proteins↗

Role of the Escherichia coli DnaK and DnaJ heat shock proteins in the initiation of bacteriophage lambda DNA replication.

We examined the role of two Escherichia coli heat shock proteins, the dnaK and dnaJ gene products, during the initiation of lambda dv DNA replication in vitro. Using 14C-labeled lambda P protein we showed that the DnaK and DnaJ heat shock proteins function together to release lambda P protein from the preprimosomal complex consisting of lambda origin of replication-lambda O-lambda P-DnaB protein. Hydrolysis of ATP, catalyzed presumably by DnaK, is required during this reaction. Substitution of DnaK protein with that of the mutant DnaK756 protein blocks lambda P release. After DnaK and DnaJ action, the preprimosomal complex, isolated on Sepharose 4B, can support lambda dv DNA replication without any additional prepriming proteins. Using DnaK-affinity chromatography we showed that both lambda O and lambda P proteins bind to DnaK protein. The lambda P protein interacts with DnaK protein in a salt-resistant, hydrophobic manner, and ATP hydrolysis is necessary to elute at least part of lambda P protein from the DnaK-affinity column. The proposed mechanism of action of the prokaryotic DnaK and DnaJ heat shock proteins agrees with the hypothesis that Hsp70, the DnaK analogue of eukaryotes, uses ATP to disrupt hydrophobic aggregates [Pelham, H. R. B. (1986) Cell 46, 959-961].

Bacteriophage lambda↗

The grpE protein of Escherichia coli. Purification and properties.

The grpE gene of Escherichia coli was first identified because a mutation in it, grpE280, prevented bacteriophage lambda DNA replication in vivo. Subsequent work resulted in the identification of the grpE protein in two-dimensional gels and its classification as a heat shock protein. Here we report the purification of the grpE protein. We show that overproduction of grpE occurs in dnaK 103 bacteria which do not produce a functional Mr 72,000 dnaK protein. The grpE protein was purified from this strain primarily by its specific retention on a dnaK affinity column. The interaction between these two proteins, which is stable in the presence of 2 M KCl, allowed other proteins to be washed from this column. grpE was then eluted by ATP, which disrupts the interaction. During purification, grpE activity was monitored by its ability to complement an in vitro lambda dv DNA replication system dependent on the lambda O and lambda P proteins. The effect of ATP on the dnaK-grpE complex was also observed during sedimentation of the two proteins in glycerol gradients. Purified grpE protein has a Mr of approximately 23,000 under both denaturing and native conditions, as determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis and sedimentation, respectively. However, in the presence of dnaK under native conditions, grpE cosediments with dnaK. When ATP is added to the gradient, the complex is disrupted, and the two proteins sediment independently as monomers.

Adenosine Triphosphate↗

Enzymology of the pre-priming steps in lambda dv DNA replication in vitro.

We have examined some of the early pre-priming steps of bacteriophage lambda dv DNA replication in vitro. Previous experiments have shown that bacteriophage lambda replication requires host RNA polymerase-dependent RNA synthesis near or at the origin of replication (ori lambda) to initiate DNA synthesis. Using a crude Fraction II enzymatic system we have shown that during RNA polymerase action, at least the bacteriophage lambda O and lambda P replication proteins as well as the host dnaB protein must be present to initiate ori lambda-specific DNA replication. The presence of three other host initiation proteins, dnaG primase, dnaJ, and dnaK, is not required during RNA polymerase action. Because of the apparent absence of a requirement for the dnaJ and dnaK pre-priming proteins during the transcriptional activation step, we propose that the early events of lambda dv DNA replication, prior to action by the dnaG primase, can be divided into two recognizable steps: an early step which requires at least RNA polymerase, lambda O, lambda P, and dnaB, and a subsequent step which requires the action of at least the dnaJ and dnaK proteins.

Bacterial Proteins↗