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Biomedical subjects

R B Jensen

Publications and source records attributed to R B Jensen.

7 recordsLinked to original sources

Partitioning of plasmid R1. The ParM protein exhibits ATPase activity and interacts with the centromere-like ParR-parC complex.

The parA system of plasmid R1 consists of two genes, parM and parR, and a cis-acting centromere-like site parC. The ParM protein exhibits similarity with a superfamily of ATPases that includes actin, hsp70 and hexokinase. ParM was purified to near-homogeneity and assayed for in vitro ATPase activity. The wild-type ParM protein was found to posses ATPase activity. Mutant ParM derivatives that exhibited decreased in vitro ATPase activity were non-functional in vivo, indicating that the ATP turnover by ParM is essential for correct plasmid partitioning. The mutant ParM proteins exhibited trans-dominance, suggesting that ParM participates as a structural component of the partitioning apparatus. The ATPase activity of ParM was activated slightly by the presence of ParR and activated to a much greater extent when ParR was bound to the centromere-like parC region. An analysis using the yeast two-hybrid system indicated that ParM and ParR interact, and demonstrated that ParR interacts with itself. Thus our results suggest a direct interaction of ParM and ParR at the natural partition site parC, and that the ATPase activity of ParM is specifically stimulated by this interaction.

Adenosine Triphosphatases

The centromere-like parC locus of plasmid R1.

The parA partitioning system of plasmid R1 consists of three components: the cis-acting centromere-like parC locus, and two proteins, ParM and ParR. The parC locus contains two sets of five direct repeats (iterons) to which the ParR protein binds. The parA promoter is located in the core region between the two sets of iterons. Mini-R1 replicons carrying parC are stabilized by the simultaneous presence of ParM and ParR. The parC locus present on a co-resident plasmid leads to instability of the mini-R1 replicon (incompatibility). Here we present a genetic analysis of the stability and incompatibility phenotypes associated with parC. We show that all 10 iterons are required for maximum stabilization and incompatibility. Replacement of the core promoter region between the repeats by a foreign promoter region did not reduce stabilization. Thus, the only structural components in parC seem to be the two sets of iterons. The parA promoter, P parA, is repressed by ParR. We show that all 10 iterons are required for full repression of the promoter. The activity of the promoter was influenced by sequences located outside the core region. An A-rich region located upstream of the -35 element of PparA was found to increase promoter activity. The region encoding the parA mRNA leader region also strongly influenced the expression level of PparA- lacZ fusions. We show that this high expression (hex) element is a transcriptional antiterminator that prevents Rho-dependent termination.

Bacterial Proteins

Programmed cell death in bacteria: proteic plasmid stabilization systems.

Bacterial plasmids are stabilized by a number of different mechanisms. Here we describe the molecular aspects of a group of plasmid-encoded gene systems called the proteic killer gene systems. These systems mediate plasmid maintenance by selectively killing plasmid-free cells (post-segregational killing or plasmid addiction). The group includes ccd of F, parD/pem of R1/R100, parDE of RP4/RK2, and phd/doc of P1. All of these systems encode a stable toxin and an unstable antidote. The antidotes prevent the lethal action of their cognate toxins by forming tight complexes with them. The antidotes are degraded by cellular proteases. Thus, the different decay rates of the toxins and antidotes seem to be the molecular basis of toxin activation in plasmid-free cells. The operons encoding the toxins and antidotes are autoregulated at the level of transcription either by a complex formed by the toxins and the cognate antidotes or by the antidote alone. The cellular targets of the killer proteins have been determined to be DNA gyrase in the case of ccd of F and DnaB in the case of parD of R1. Surprisingly, the Escherichia coli chromosome encodes at least two of these peculiar gene systems.

Antidotes

Comparison of ccd of F, parDE of RP4, and parD of R1 using a novel conditional replication control system of plasmid R1.

A number of plasmid-encoded gene systems are thought to stabilize plasmids by killing plasmid-free cells (also termed post-segregational killing or plasmid addiction). Here we analyse the mechanisms of plasmid stabilization by ccd of F, parDE of RP4 and parD of R1, and compare them to hok/sok of R1. To induce synchronous plasmid loss we constructed a novel plasmid replication-arrest system, which possesses the advantage that plasmid replication can be completely arrested by the addition of IPTG, a non-metabolizable inducer. Using isogenic plasmid constructions we have found, for the first time, consistent correlation between the effect on steady-state loss rates and the effect on cell proliferation in the plasmid replication-arrest assay for all three systems. The parDE system had the most pronounced effect both on plasmid stabilization and on plasmid retention after replication arrest. In contrast, ccd and parD both exhibited weaker effects than anticipated from previously published results. Thus, our results indicate that the function and efficiencies of some of the systems should be reconsidered. Our results are consistent with the previously postulated hypothesis that ccd and parDE act by killing plasmid-free segregants, whereas parD seems to act by inhibiting cell division of plasmid-free segregants.

Bacterial Proteins

Partitioning of plasmid R1. The parA operon is autoregulated by ParR and its transcription is highly stimulated by a downstream activating element.

The parA partitioning system of plasmid R1 mediates efficient stabilization of R1 and F-derived replicons. The parA system is encoded by a continuous DNA segment of approximately 1600 base-pairs and consists of three components. Two adjacent genes, parM and parR, coding for the trans-acting proteins ParM and ParR, and the cis-acting parC site. The centromere-like parC site is located upstream of parM and parR and contains the parA promoter. The parM and parR genes are co-transcribed as an operon from the parA promoter. The 5' end of the parA encoded transcript was mapped to the center of the parC region at +115. The -10 and -35 core promoter sequences are flanked by the two sets of five direct repeats in parC (the ParR boxes). The parA promoter was found to be negatively regulated by the parR gene product, whereas the parM gene product seemingly was not involved in the regulation. Surprisingly, a region downstream of the parA promoter enhanced transcription from the promoter many-fold (30 to 50-fold). The parC site titrated the ParR protein, suggesting that the ParR protein interacts directly with the parC site. Using an engineered parA system we found that the parC site could be complemented in cis by the parM and parR genes. Furthermore, the proper function of the parC site was highly dependent on the expression level of ParM and ParR. The incompatibility associated with the parC site could not be suppressed by overexpression of the ParM and ParR proteins. Based on these results we suggest a novel partition model involving pairing of newly replicated plasmid molecules.

Bacterial Proteins

New compounds related to podophyllotoxin and congeners: synthesis, structure elucidation and biological testing.

4-Azido, 4-amino, 4-amido and 4-alkoxy compounds related to the lignans podophyllotoxin and 4'-demethylepipodophyllotoxin have been synthesized, and their structures elucidated. The Ritter reaction was shown to be useful in the preparation of the 4-amido compounds with the required stereochemistry. A preparative method for 4-chloro-4-deoxypicrophyllotoxin, for which all earlier synthetic attempts resulted in the two dehydrated compounds, alpha- and beta-apopicropodophyllotoxin, was developed. Supplementary preliminary studies of the biological activities of some of the compounds were performed. All compounds had pronounced inhibitory effect on the in vitro growth of human cervical cancer cells and TC-mouse cells with 4-amino-4-deoxypodophyllotoxin and 4-azido-4-deoxypodophyllotoxin showing the highest activity. Alkaline elution studies indicate that the toxicity of the 4'-demethoxy derivatives is due to protein-mediated DNA nicking. None of the compounds were found to have antiviral effect against herpes simplex type 2 (HSV-2), human immunodeficiency (HIV), and cytomegalovirus (CMV) in doses not toxic to the cells.

Animals

Thermal chemistry of podophyllotoxin in ethanol and a comparison of the cytostatic activity of the thermolysis products.

Podophyllotoxin (1) in buffered ethanolic solution is degraded by two pathways. One leads to (a) picropodophyllin (2), which undergoes dehydration to give alpha-apopicropodophyllin (5), which rearranges to give beta-apopicropodophyllin (6), (b) the ethyl ether of picropodophyllotoxin, 8, and (c) the ethyl ether of epipicropodophyllotoxin, 7. The other pathway leads directly to epipodophyllotoxin (10) and the corresponding ethyl ether, 9, and possibly, via a transient 3,4-dehydropodophyllotoxin (5'), to beta-apopicropodophyllin (6). The 1H NMR spectra of these compounds are described, their in vitro cytostatic activity compared, and their syntheses, including that of podophyllotoxin ethyl ether, reported.

Antineoplastic Agents