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S Molin

Publications and source records attributed to S Molin.

At least 91 records · Page 5Linked to original sources

Suicidal genetic elements and their use in biological containment of bacteria.

The potential risks of unintentional releases of genetically modified organisms, and the lack of predictable behavior of these in the environment, are the subject of considerable concern. This concern is accentuated in connection with the next phase of gene technology comprising deliberate releases. The possibilities of reducing such potential risks and increasing the predictability of the organisms are discussed for genetically engineered bacteria. Different approaches towards designing disabled strains without seriously reducing their beneficial effects are presented. Principally two types of strain design are discussed: actively contained bacteria based on the introduction of controlled suicide systems, and passively contained strains based on genetic interference with their survival under environmental-stress conditions.

Bacteria↗

Maintenance and killing efficiency of conditional lethal constructs in Pseudomonas putida.

Conditional lethal (suicidal) genetic constructs were designed and employed in strains of Pseudomonads as models for containment of genetically-engineered microbes that may be deliberately released into the environment. A strain of Pseudomonas putida was formed with a suicide vector designated pBAP24h that was constructed by cloning the host killing gene (hok) into the RSF1010 plasmid pVDtac24 and placing it under the control of the tac promoter. After hok induction in P. putida only 40% of surviving cells continued to bear the hok sequences within 4 h of induction; in contrast, 100% of the cells in uninduced controls bore hok. A few survivors that demonstrated resistance to hok-induced killing developed in P. putida, which may have been due to a mutation or physiological adaptation that rendered the membrane 'resistant' to hok. Conditional lethal strains of P. putida also were formed by inserting gef (a chromosomal homolog of hok) under the control of the tac promoter into the chromosome using a transposon. Constructs with chromosomal gef, as well as an RK2-derived plasmid construct containing gef, were only marginally more stable than the hok constructs; they were effective in killing P. putida when induced and within 2 h post-induction killing from either gef construct resulted in a 10(3)-10(5)-fold reduction in viable cell count compared to uninduced controls.

Cloning, Molecular↗

Expression of extracellular phospholipase from Serratia liquefaciens is growth-phase-dependent, catabolite-repressed and regulated by anaerobiosis.

Many members of the genus Serratia synthesize and excrete a number of extracellular hydrolytic enzymes. One of these is the phospholipase A1 from Serratia liquefaciens, the expression of which is growth-phase-dependent. Through the use of gene fusions and primer extension analysis we show that the expression of phospholipase is subject to positive transcriptional regulation of a dual promoter system; one promoter positioned approximately 600bp upstream from the phlA gene is responsible for the induction of phospholipase expression under anaerobic conditions, and the other promoter positioned 50bp upstream from the phlA gene is subject to catabolite repression and induced during the transition from exponential to late log-phase of bacterial growth. On the basis of sequence homology and behaviour in the relevant Escherichia coli mutants, we suggest that distant promoter to be Fnr-controlled and the proximal phlA promoter to be a member of the FIbB-controlled flagellar-chemotaxis regulon.

Amino Acid Sequence↗

Analysis of an Escherichia coli mutant strain resistant to the cell-killing function encoded by the gef gene family.

The chromosomal genes gef and relF from Escherichia coli and the plasmid-encoded genes hok, flmA, srnB, and pndA constitute the gef gene family, which encodes a cell-killing function. In order to investigate the mechanism of cell killing we have isolated an E. coli mutant strain that is resistant to the overexpression of the toxic proteins encoded by the gef gene family. This phenotype requires at least two mutations, one of which has been mapped to 55.2 minutes. This mutation was sequenced and shown to represent a single base substitution in an open reading frame (ORF178) encoding a putative membrane protein having a molecular mass of 20.1 kDa. ORF178 and an upstream frame, ORF190, probably constitute an operon.

Amino Acid Sequence↗

Designing microbes for release into the environment.

After 20 years in which gene technology has become an important part of modern biotechnology we have seen very beneficial applications of the new techniques in the pharmaceutical industry. We are now entering a second phase involving the deliberate release of genetically engineered organisms into the environment. This next step causes concern because of a low level of predictability of their possible effects. While the risk assessment of microbial release is far from easy, the strain designers also face problems concerning optimization of performance of the organisms. The two groups of actors in this new development--the risk assessors and the strain designers--need the same platform of understanding from the field of microbial ecology, and a number of specific areas which may now be approached by modern technology deserve particular attention. An increased understanding of the activities of microbes in the environment will also allow construction of more predictable, and therefore safer, strains. Biological containment and molecular microbial ecology are two sides of the same coin in the context of release of genetically engineered microorganisms.

Bacteria↗

Topographic analysis of the toxic Gef protein from Escherichia coli.

The chromosomal gef gene of Escherichia coli is a member of the gef gene family which encodes strongly toxic proteins of about 50 amino acids. We demonstrate here that the Gef protein is detectable by anti-peptide antibodies. Furthermore, we show that Gef is anchored in the cytoplasmic membrane by the N-terminal part of the protein, and that the C-terminal part is localized in the periplasm in a dimeric form with at least one disulphide bond. By mutagenesis of gef it is shown that the periplasmic portion of Gef encodes the toxic domain and that the dimerization of Gef is not essential for the toxic effect.

Amino Acid Sequence↗

The gef gene from Escherichia coli is regulated at the level of translation.

We describe post-transcriptional regulation of the chromosomal gene, gef, from Escherichia coli. The gef gene is a member of a gene family consisting of the chromosomal gef and relF genes from Escherichia coli and the hok, flmA, srnB, and pndA genes, which are situated on conjugative plasmids. All the genes encode small, toxic proteins of approximately 50 amino acids which are functionally and structurally homologous. Furthermore, the gene family shares post-transcriptional regulation of expression, albeit by different mechanisms. We demonstrate here that translation of gef is coupled to an upstream open reading frame which, in turn, is regulated by a transacting factor, probably an antisense RNA.

Amino Acid Sequence↗

Conditional-suicide containment system for bacteria which mineralize aromatics.

A model conditional-suicide system to control genetically engineered microorganisms able to degrade substituted benzoates is reported. The system is based on two elements. One element consists of a fusion between the promoter of the Pseudomonas putida TOL plasmid-encoded meta-cleavage pathway operon (P(m)) and the lacI gene encoding Lac repressor plus xylS, coding for the positive regulator of P(m). The other element carries a fusion between the P(tac) promoter and the gef gene, which encodes a killing function. In the presence of XylS effectors, LacI protein is synthesized, preventing the expression of the killing function. In the absence of effectors, expression of the P(tac)::gef cassette is no longer prevented and a high rate of cell killing is observed. The substitution of XylS for XylSthr45, a mutant regulator with altered effector specificity and increased affinity for benzoates, allows the control of populations able to degrade a wider range of benzoates at micromolar substrate concentrations. Given the wide effector specificity of the key regulators, the wild-type and mutant XylS proteins, the system should allow the control of populations able to metabolize benzoate; methyl-, dimethyl-, chloro-, dichloro-, ethyl-, and methoxybenzoates; salicylate; and methyl- and chlorosalicylates. A small population of genetically engineered microorganisms became Gef resistant; however, the mechanism of such survival remains unknown.

Journal Article↗

A family of genes encoding a cell-killing function may be conserved in all gram-negative bacteria.

The relF gene in Escherichia coli is related to the hok gene on plasmid R1. Both genes encode small proteins which, when overexpressed in E. coli lead to collapse of the membrane potential and cell death. A third gene, designated gef, which encodes a homologous cell-toxic protein, has been isolated from E. coli DNA. Both gef and relF are transcribed in E. coli and subject to post-transcriptional regulation which, in the case of gef, is coupled to translation of a leader sequence. The finding of homologous sequences in such distantly related bacteria as Agrobacterium and Rhizobium species suggests an important physiological role.

Amino Acid Sequence↗

Cloning and expression in Escherichia coli of the gene for extracellular phospholipase A1 from Serratia liquefaciens.

From a genomic library of Serratia liquefaciens, a cloned DNA fragment comprising a two-gene operon was isolated and expressed in Escherichia coli. One of the gene products was identified as a phospholipase A1, and the enzyme was found to be excreted to the outer environment from S. liquefaciens as well as from E. coli. Both genes were sequenced, and the relationship between open reading frames in the DNA sequence and in vitro-expressed polypeptides was established. The length of the phospholipase polypeptide was found to be 319 amino acids. In the amino-terminal end of the coding sequence was a stretch of about 20 hydrophobic amino acids, but, in contrast to consensus signal peptides, no basic residues were present. The length of the second polypeptide was 227 amino acids. It was found that expression of the phospholipase gene in both E. coli and S. liquefaciens was growth phase regulated (late expression).

Amino Acid Sequence↗

Genetic analysis of the parB+ locus of plasmid R1.

Plasmid R1 in Escherichia coli carries two loci which independently contribute to the stable maintenance of the plasmid. A genetic analysis of one of these, parB+, was carried out, and it was shown that the minimal region exerting stabilizing activity comprises at most 580 bp. The nucleotide sequence of the parB+ locus was determined, and indicated the presence of two genes, of which one probably codes for a 52 amino acid polypeptide, whereas the other gene product may be an untranslated RNA. These suggestions, based on the nucleotide sequence information, were supported by gene expression studies employing lac fusions. An incompatibility phenotype connected to parB+ was localized to that part of the 580 bp parB+ region which seems to encode the untranslated RNA.

Base Sequence↗

Identification and characterization of mutations responsible for a runaway replication phenotype of plasmid R1.

Initiation of replication of the resistance plasmid R1 is carefully regulated by the two negatively acting factors, CopA and CopB. It is shown here that the temperature-dependent runaway-replication phenotype of an R1 plasmid mutant is caused by two point mutations in each of the promoters for the genes of these control factors. Expression of the two genes is affected in the following way: (1) one C-to-T transition in the putative -35 box of the copB-repA operon creates a two- to three-fold stronger promoter from which expression is temperature-dependent; (2) another C-to-T transition in a G + C-rich area immediately downstream from the -10 box of the copA promoter reduces expression of the copA gene three-fold. The phenotypic consequences of the two mutations are discussed in the light of the current model for R1 replication control.

Base Sequence↗

Effects of genes exerting growth inhibition and plasmid stability on plasmid maintenance.

Plasmid stabilization mediated by the parA+ and parB+ genes of the R1 plasmid and the ccd+ and sop+ genes of the F plasmid was tested on a mini-R1 plasmid and a pBR322 plasmid derivative. The mini-R1 plasmid is thought to be unstably inherited owing to a low copy number and to random segregation of the plasmid at cell division, whereas cells harboring the pBR322 derivative used in this work are lost through competition with plasmid-free cells, mainly as a result of the shorter generation time of cells without plasmids. The pBR322 derivative carries a fusion between part of the atp operon of Escherichia coli and the bacteriophage lambda pR promoter, and the cI857 repressor gene. The insertion of sop+ from the F plasmid or parB+ from the R1 plasmid reduced the loss frequency by a factor of 10(3) for the pBR322 derivative and by at least a factor of 10(2) for the mini-R1 plasmid. Insertion of parA+ from the R1 plasmid decreased the loss frequency of the pBR322 derivative by a factor of 10 and that of the mini-R1 plasmid by a factor of 50. When ccd+ from the F plasmid was inserted, the loss frequency of the pBR322 derivative was decreased by a factor of 10, but it had only a marginal effect on the stability of the mini-R1 plasmid. In no case was any significant structural instability of the plasmids observed.

Cell Division↗

Partitioning of plasmid R1. Structural and functional analysis of the parA locus.

The stability locus, parA+, of plasmid R1 is shown to be localized within a 1500 base-pair region of DNA on the largest EcoRI restriction fragment of plasmid R1. The nucleotide sequence of the region revealed the presence of two open reading frames, one of 320 codons, and another of 60 codons. The larger open reading frame encodes a polypeptide of 36,000 Mr. Deletions covering the promoter distal end of the 36,000 Mr reading frame give rise to synthesis of large amounts of truncated protein. Construction of promoter fusions between the parA+ promoter and the lacZ gene showed that the parA+ region encodes a factor that negatively regulates the expression of the 36,000 Mr protein. The locus exerting parA+-associated incompatibility, denoted incA+, was mapped to a 60 base-pair region covering the parA+ promoter. Most likely, this region is involved both in the negative regulation of the parA+ operon and in the parA+-associated incompatibility. Two explanations are suggested to explain this possible dual function of the parA+ promoter region. The parA+ region was cloned into an unstably inherited (par-) derivative of a mini-F derivative. The low copy number plasmid mini-F devoid of its own partition genes was stabilized more than 100-fold by carrying the parA+ genes. This observation is in accordance with the proposal that the parA+ locus specifies the true partition function of plasmid R1.

Base Sequence↗

Mechanism of postsegregational killing by the hok gene product of the parB system of plasmid R1 and its homology with the relF gene product of the E. coli relB operon.

The parB region of plasmid R1 encodes two genes, hok and sok, which are required for the plasmid-stabilizing activity exerted by parB. The hok gene encodes a potent cell-killing factor, and it is regulated by the sok gene product such that cells losing a parB-carrying plasmid during cell division are rapidly killed. Coinciding with death of the host cell, a characteristic change in morphology is observed. Here we show that the killing factor encoded by the hok gene is a membrane-associated polypeptide of 52 amino acids. A gene located in the Escherichia coli relB operon, designated relF, is shown to be homologous to the hok gene. The relF gene codes for a polypeptide of 51 amino acids, which is 40% homologous to the hok gene product. Induced overexpression of the hok and relF gene products results in the same phenomena: loss of cell membrane potential, arrest of respiration, death of the host cell and change in cell morphology. The parB region and the relB genes were cloned into unstably inherited oriC minichromosomes. Whereas the parB region also conferred a high degree of genetic stability to an oriC minichromosome, the relB operon (with relF) did not; therefore the latter does not appear to 'stabilize' its replicon (the chromosome). The function of the relF gene is not known.

Amino Acid Sequence↗

Purification and characterization of the CopB replication control protein, and precise mapping of its target site in the R1 plasmid.

The CopB regulatory loop from plasmid R1 has been analyzed. The CopB protein was partially purified, but proteolytic activity in vitro resulted in the recovery of two molecular forms of the polypeptide. Both of these acted as repressors of the repA promoter and had identical activities. The smaller of the proteins was found to be the result of a specific cleavage in the normal in vivo translation product. The active form of the CopB protein is most likely a tetramer, which binds to a DNA region overlapping the repA promoter that also contains a stretch of dyad symmetry. Footprinting analysis and mutant analysis (including nucleotide sequence determination) identified this binding site within 20-25 base pairs. In agreement with in vivo results the binding between CopB and its target site is moderate compared with other operons like lac and trp.

Base Sequence↗

Unique type of plasmid maintenance function: postsegregational killing of plasmid-free cells.

The stability locus parB+ of plasmid R1 has been found to specify a unique type of plasmid maintenance function. Two genes, hok (host killing) and sok (suppressor of killing), are required for the stabilizing activity. The hok gene encodes a highly toxic gene product, whose overexpression causes a rapid killing and a concomitant dramatic change in morphology of the host cell. The other gene, sok, was found to encode a product that counteracts the hok gene-mediated killing. The parB+ region was inserted in a plasmid with a temperature-sensitive replication system. At nonpermissive temperature, the parB+ plasmid was maintained in the population for a significantly longer period than the corresponding parB- plasmid. Coupled to this extended maintenance, a large fraction of the population was shown to be nonviable plasmid-free cells with the characteristic hok-induced change in morphology. Based on these findings, we propose that the parB+ locus mediates plasmid stability by killing cells that have lost the parB+ plasmid during the preceding cell division, thereby ensuring that a growing bacterial culture predominantly consists of plasmid-containing cells.

Cell Division↗

Transcription and its regulation in the basic replicon region of plasmid R1.

The transcriptional units in the basic replicon of plasmid R1 were defined by means of gene fusions. It was found that in the wild-type plasmid there is one large mRNA encoding both the control factor copB and the positive replication factor repA. A second, internal transcription initiation site, the repA promoter, is usually repressed by the copB protein, and is therefore only of significance in the absence of this control factor. By induction of the repA promoter through gradual dilution of the copB repressor it was shown that translation of repA-mRNA, controlled by the copA-RNA, is significantly increased only when the rate of repA transcription is above a certain level. No indication was found for a possible interference from convergent copA transcription on repA transcription.

Base Sequence↗