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D Bosch

Publications and source records attributed to D Bosch.

At least 55 records · Page 3Linked to original sources

Mapping and characterization of the entomocidal domain of the Bacillus thuringiensis CryIA(b) protoxin.

The amino acid sequences necessary for entomocidal activity of the CryIA(b) protoxin of Bacillus thuringiensis were determined. Introduction of stop codons behind codons Arg601, Phe604 or Ala607 showed that amino acid residues C-terminal to Ala607 are not required for insecticidal activity and that activation by midgut proteases takes place distal to Ala607. The two shortest polypeptides, deleted for part of the highly conserved beta-strand, were prone to proteolytic degradation, explaining their lack of toxicity. Apparently, this beta-strand is essential for folding of the molecule into a stable conformation. Proteolytic activation at the N-terminus was investigated by removing the first 28 codons, resulting in a translation product extending from amino acid 29 to 607. This protein appeared to be toxic not only to susceptible insect larvae such as Manduca sexta and Heliothis virescens, but also to Escherichia coli cells. An additional mutant, encoding only amino acid residues 29-429, encompassing the complete putative pore forming domain, but lacking a large part of the receptor-binding domain, was similarly toxic to E. coli cells. This suggests a role for the N-terminal 28 amino acids in rendering the toxin inactive in Bacillus thuringiensis, and indicates that the cytolytic potential of the pore forming domain is only realized after proteolytic removal of these residues by proteases in the insect gut. In line with this hypothesis are results obtained with a mutant protein in which Arg28 at the cleavage site was replaced by Asp. This substitution prevented the protein from being cleaved by trypsin in vitro, and reduced its toxicity to M. sexta larvae.

Animals↗

Characterization of baculovirus insecticides expressing tailored Bacillus thuringiensis CryIA(b) crystal proteins.

Full-length, truncated, and mature forms of the CryIA(b) insecticidal crystal protein gene of Bacillus thuringiensis were engineered into the p10 locus of Autographa californica nuclear polyhdrosis virus (AcNPV). A signal sequence of Heliothis virescens juvenile hormone esterase was introduced at the N-terminus of these constructs to induce secretion. All recombinants, except those containing the mature toxin, produced high levels of CryIA(b) ICPs in insect cells. Thirty percent of the intracellular protoxin was N-glycosylated, suggesting that the protoxin was translocated across the ER membrane. Secretion into the medium, however, was limited. The production of the mature toxin was poor as a result of its cytotoxicity to insect cells. In a bioassay against second instar Spodoptera exigua larvae, using a recombinant expressing the Androctonus australis scorpion toxin gene in the same p10 locus as a positive control, the median survival time of AcNPV recombinants expressing the various B. thuringiensis CryIA(b) ICP constructs was not significant different from that of wild-type AcNPV. This suggests that production and/or secretion of B. thuringiensis (pro)toxins by AcNPV p10 recombinant viruses does not increase insecticidal activity since (i) the protoxins produced are inactive and not likely to be activated in vivo; (ii) secretion of the B. thuringiensis protoxins is poor; and (iii) production of the mature toxins results in cytotoxicity.

Animals↗

Expression of giant silkmoth cecropin B genes in tobacco.

Cecropin B is a small antibacterial peptide from the giant silkmoth Hyalophora cecropia. To reveal the potential of this peptide for engineering bacterial disease resistance into crops, several cecropin B gene constructs were made either for expression in the cytosol or for secretion. All constructs were cloned in a plant expression vector and introduced in tobacco via Agrobacterium tumefaciens. A cDNA-derived cecropin B gene construct lacking the amino-terminal signal peptide was poorly expressed in transgenic plants at the mRNA level, whereas plants harbouring a full-length cDNA-derived construct containing the insect signal peptide, showed increased cecropin B-mRNA levels. Highest expression was found in plants harbouring a construct with a plant-gene-derived signal peptide. In none of the transgenic plants could the cecropin B peptide be detected. This is most likely caused by breakdown of the peptide by plant endogenous proteases, since a chemically synthesized cecropin B peptide was degraded within seconds in various plant cell extracts. This degradation could be prevented by the addition of specific protease inhibitors and by boiling the extract prior to adding the peptide. In addition, anionic detergents, in contrast to cationic, zwitter-ionic or non-ionic detergents, could prevent this degradation. Nevertheless, transgenic tobacco plants were evaluated for resistance to Pseudomonas solanacearum, the causal agent of bacterial wilt of many crops, and P. syringae pv. tabaci, the causal agent of bacterial wildfire, which are highly susceptible to cecropin B in vitro. No resistance was found. These experiments indicate that introduction and expression of cecropin B genes in tobacco does not result in detectable cecropin B protein levels and resistance to bacterial infections, most likely due to degradation of the protein by endogenous proteases.

Amino Acid Sequence↗

Development of Bacillus thuringiensis CryIC Resistance by Spodoptera exigua (Hubner) (Lepidoptera: Noctuidae).

Selection of resistance in Spodoptera exigua (Hubner) to an HD-1 spore-crystal mixture, CryIC (HD-133) inclusion bodies, and trypsinized toxin from Bacillus thuringiensis subsp. aizawai and B. thuringiensis subsp. entomocidus was attempted by using laboratory bioassays. No resistance to the HD-1 spore-crystal mixture could be achieved after 20 generations of selection. Significant levels of resistance (11-fold) to CryIC inclusion bodies expressed in Escherichia coli were observed after seven generations. Subsequent selection of the CryIC-resistant population with trypsinized CryIC toxin resulted, after 21 generations of CryIC selection, in a population of S. exigua that exhibited only 8% mortality at the highest toxin concentration tested (320 (mu)g/g), whereas the 50% lethal concentration was 4.30 (mu)g/g for the susceptible colony. Insects resistant to CryIC toxin from HD-133 also were resistant to trypsinized CryIA(b), CryIC from B. thuringiensis subsp. entomocidus, CryIE-CryIC fusion protein (G27), CryIH, and CryIIA. In vitro binding experiments with brush border membrane vesicles showed a twofold decrease in maximum CryIC binding, a fivefold difference in K(infd), and no difference in the concentration of binding sites for the CryIC-resistant insects compared with those for the susceptible insects. Resistance to CryIC was significantly reduced by the addition of HD-1 spores. Resistance to the CryIC toxin was still observed 12 generations after CryIC selection was removed. These results suggest that, in S. exigua, resistance to a single protein is more likely to occur than resistance to spore-crystal mixtures and that once resistance occurs, insects will be resistant to many other Cry proteins. These results have important implications for devising S. exigua resistance management strategies in the field.

Journal Article↗

Analysis of non-active engineered Bacillus thuringiensis crystal proteins.

Crystal proteins of Bacillus thuringiensis are known for their insecticidal specificity. This specificity is, to a large extent, determined by the interaction of the proteins with high-affinity binding sites on the epithelial membrane of the midgut of sensitive insects. In particular, domain II of the three domains of the toxic moiety has been implicated in specificity. To determine which sequences of the protein are involved in binding, loops of domain II which terminate in the molecular apex of CryIA(b) were replaced by the corresponding regions of CryIE, a protein with different binding characteristics and insect specificity. In contrast to expression of the wild-type genes, expression of the mutant alleles in Escherichia coli resulted in the formation of biologically inactive, insoluble aggregates. Although these aggregates could be solubilized in vitro using urea, in contrast to the wild-type CryIA(b), the mutant proteins did not correctly refold as is shown by their increased protease sensitivity and lack of biological activity. The results indicate that engineering CryI proteins, based on the CryIIIA structure, is likely to prove difficult, particularly since the conformation of CryIIIA and CryI proteins might differ in domain II.

Amino Acid Sequence↗

Insect resistance of transgenic plants that express modified Bacillus thuringiensis cryIA(b) and cryIC genes: a resistance management strategy.

Tobacco and tomato plants were generated exhibiting insect resistance due to the introduction of modified cryIA(b) and cryIC genes of Bacillus thuringiensis. Limited modifications at selected regions of the coding sequences of both genes are sufficient to obtain resistance against Spodoptera exigua, Heliothis virescens and Manduca sexta. The criteria used to modify both genes demonstrate that the removal of sequence motifs potentially resulting in premature polyadenylation and transcript instability causes increased insect resistance. The expression of a cryIC-cryIA(b) fusion resulting in protection against S. exigua, H. virescens and M. sexta demonstrates the potential of expressing translational fusions, not only to broaden the insect resistance of transgenic plants, but also to simultaneously employ different gene classes in resistance management strategies.

Amino Acid Sequence↗

Recombinant Bacillus thuringiensis crystal proteins with new properties: possibilities for resistance management.

To obtain Bacillus thuringiensis crystal proteins with new properties and to identify the regions involved in insecticidal activity, we generated hybrid genes composed of cryIC and cryIE by in vivo recombination. Analysis of the hybrid proteins showed that domain III of CryIC is involved in the toxicity towards Spodoptera exigua and Mamestra brassicae. Transfer of this domain to CryIE, which is not active against these insects, resulted in a new protein with a broader activity. This hybrid protein binds to different receptors than CryIC, suggesting its use as an alternative for CryIC in resistance management programs.

Amino Acid Sequence↗

An aspartic proteinase present in seeds cleaves Arabidopsis 2 S albumin precursors in vitro.

The Arabidopsis thaliana 2 S albumins are examples of vacuolar proteins which undergo intensive posttranslational processing. An in vitro processing assay to screen for processing enzymes present in seeds was developed using an in vitro synthesized 2 S albumin precursor as the substrate. A protease was characterized which cleaved the substrate into two fragments with molecular weights (as determined from their migration distance on SDS-polyacrylamide gel) corresponding to those of the small and large subunits of Arabidopsis 2 S albumin. The pH optimum of this protease activity, its inhibition by pepstatin A, and partial sequence data led to the conclusion that the protease under study was an aspartic proteinase. Synthetic peptides representing two 2 S albumin propeptides allowed the determination of the in vitro cleavage sites, and suggested that the protease activity is capable, in vitro, of cleaving the amino-terminal propeptide as well as the internal propeptide linking the two subunits. Alterations of the amino acids in and around the cleavage sites, made to study the specificity of the protease activity, suggest that both structural and sequence determinants are important in cleavage site recognition.

Albumins↗

Effect of different positively charged amino acids, C-terminally of the signal peptidase cleavage site, on the translocation kinetics of a precursor protein in Escherichia coli K-12.

Introduction of positively charged amino acids immediately downstream of the signal sequence in prokaryotic precursor proteins is known to affect the export process. However, it is not clear whether different positively charged amino acids affect the export process similarly. To investigate this, the glutamate at position +2 of outer membrane protein PhoE was substituted by arginine, lysine or histidine. Pulse-chase experiments revealed that the Lys and Arg residues at position +2 caused a reduced processing rate, and that the effect was markedly more severe in the case of the Arg residue. Trypsin accessibility experiments revealed that the accumulated precursors were present in the cytoplasm. Since the degree of the inhibitory effect corresponded to the pKa of the different positively charged amino acids, this suggests that the positively charged residues must be deprotonated during the secretory process.

Amino Acids↗

Glycine-144 is required for efficient folding of outer membrane protein PhoE of Escherichia coli K12.

Short stretches of similar sequences have been detected in unrelated bacterial outer membrane proteins (Nikaido and Wu (1984) Proc. Natl. Acad. Sci. USA 81, 1048-1052). In the most pronounced similarity region, only a glycine residue is absolutely conserved. To investigate whether this glycine residue is essential for outer membrane incorporation, oligonucleotide-directed mutagenesis was applied to replace this residue, i.e. Gly-144, as well as two other Gly-residues in pore protein PhoE. Substitution of Gly-52 and Gly-258 by Ala and Val, respectively, did not influence outer membrane incorporation. However, the substitution of Gly-144 by Leu affected the efficiency of outer membrane incorporation. After in vitro synthesis this mutant protein was less efficiently precipitated with monoclonal antibodies that recognize conformational epitopes than wild-type PhoE, showing that the mutation interferes with correct folding of the protein.

Bacterial Outer Membrane Proteins↗

One single lysine residue is responsible for the special interaction between polyphosphate and the outer membrane porin PhoE of Escherichia coli.

Site-directed mutagenesis was performed with the phosphate starvation-inducible outer membrane porin PhoE of Escherichia coli K-12 to study the molecular basis of its anion selectivity. Lysines 18, 29, 64, and 125 were replaced by glutamic acids, and the properties of the mutant porins were investigated in in vivo and in vitro experiments. Lipid bilayer experiments showed that all these mutations had no influence on the pore structure because PhoE and the mutants had the same single channel conductance in KCl solution. Selectivity measurements revealed that the mutations changed the ionic selectivity of PhoE, but the change was dependent on the location of the lysine. Replacement of Lys18 and Lys29 by glutamic acid had a relatively small influence. The effect of the Lys64 substitution was somewhat larger, and the effect of the replacement of Lys125 resulted in the most drastic change in selectivity and in the loss of the interaction of PhoE with polyphosphate, whereas the replacement of the other lysines had no effect on the polyphosphate interaction behavior. The results are consistent with the assumption that the charge spot in PhoE consists of only 1 lysine per monomer, located in position 125 of the primary sequence and probably close to the pore interior.

Bacterial Outer Membrane Proteins↗

The role of the positively charged N-terminus of the signal sequence of E. coli outer membrane protein PhoE in export.

Signal sequences of prokaryotic exported proteins have a dipolar character due to positively charged amino-acid residues at the N-terminus and to a preferentially negatively charged region around the cleavage site. The role of the two lysine residues at the N-terminus of the signal sequence of outer membrane protein PhoE of E. coli-K12 was investigated. Replacement of both of these residues by aspartic acid slightly affected the kinetics of protein translocation in vivo. This export defect, which was observed only when PhoE was overproduced, could not be suppressed by the prlA4 mutation, which has been shown to restore export defects caused by alterations in the hydrophobic core of the signal sequences of various exported proteins. In an in vitro translocation assay, the export defect was more pronounced. Replacement of both lysines by uncharged residues did not disturb the kinetics of protein export in vivo. In the in vitro assay, an extraordinarily efficient processing was detected upon incubation of this precursor with inverted cytoplasmic membrane vesicles. However, this efficient processing was not accompanied by more efficient translocation of the protein. We conclude that the positively charged residues at the N-terminus of the signal sequence are not essential for protein export, but contribute to the efficiency of the process.

Bacterial Outer Membrane Proteins↗

The role of the carboxy-terminal membrane-spanning fragment in the biogenesis of Escherichia coli K12 outer membrane protein PhoE.

PhoE protein of Escherichia coli K12 is an outer membrane protein which is supposed to span the membrane sixteen times. By creating a deletion which removes the last membrane-spanning fragment and studying the localization of the truncated PhoE, we show that this fragment is indispensable for trimerization and outer membrane localization. In addition, circumstantial evidence for the proposed topology model of the protein was obtained. An insertion mutation in a region supposed to be cell surface-exposed, interferes with the binding of a monoclonal antibody which recognizes a cell surface-exposed epitope of the protein.

Bacterial Outer Membrane Proteins↗

Involvement of membrane lipids in protein export in Escherichia coli.

Several models for the transport of proteins across membranes predict a role for lipids. If these models are correct, then alterations in lipid metabolism may affect protein export and vice versa. We are investigating this possibility by studying Escherichia coli K-12 mutants with defects in protein export or phospholipid metabolism. A temperature-sensitive secA mutant, which is defective in protein export at 42 degrees C, exhibited severe pleiotropic effects on membrane biogenesis. Incubation of this strain at 42 degrees C resulted in the appearance of intracytoplasmic membranes, in alterations in lipopolysaccharide structure and in decreased cardiolipin and C18:1 fatty acid content. On the other hand, a pgsA mutant which is defective in the synthesis of acidic phospholipids, exhibited a protein export defect when studied in vivo or in vitro. These results are in agreement with a postulated role of membrane lipids in protein export.

Bacterial Proteins↗

Home intravenous antibiotic therapy using a programmable infusion pump.

Several publications have demonstrated the efficacy, safety, and cost-effectiveness of home intravenous antibiotic therapy. The development of a computerized ambulatory infusion drug delivery pump has enabled us to treat patients previously considered ineligible for home intravenous antibiotic therapy. Seventeen patients were treated at home with the infusion pump for a range of 6 to 49 days. Selection of the infusion pump was made for a variety of reasons: the need for frequent intravenous drug administration (9 patients); impaired manual dexterity (5 patients) or cognitive function (3 patients); unwillingness to learn the necessary techniques (3 patients); and lack of support persons at home (3 patients). Of the 17 patients, 15 could not have been discharged from hospital to home without the use of the pump or a similar device.

Adolescent↗

Export and localization of N-terminally truncated derivatives of Escherichia coli K-12 outer membrane protein PhoE.

To identify export and sorting information in outer membrane protein PhoE of Escherichia coli K-12, a set of deletions was created, resulting in the removal of N-terminal amino acids of the mature protein. Pulse-chase experiments revealed that some mutant proteins were slowly or not at all processed, but there was not correlation between processing rate and the extent of the deletions. The unprocessed precursors were accessible to trypsin in the periplasm showing that processing by leader peptidase rather than translocation is affected by these deletions. The results show that no specific sequences in the N-terminal part of the mature PhoE protein are required for translocation through the inner membrane. The capability of the processed mutant proteins to assemble into the outer membrane was correlated to the exten of the deletions. Thus, mutants which lack up to amino acid residue 14 are normally incorporated into the outer membrane. Larger deletions which removed the first postulated membrane-spanning fragment of the protein affected the efficiency of assembly: in addition to trimers of the protein in the outer membrane, also monomers were detected in the periplasm. If the deletions extended C-terminally to residue 48, only monomeric forms of the proteins were found in the periplasm.

Bacterial Outer Membrane Proteins↗

Effects of linker insertions on the biogenesis and functioning of the Escherichia coli outer membrane pore protein PhoE.

To study the effects of small insertions on the biogenesis and functioning of outer membrane pore protein PhoE of Escherichia coli K12, oligonucleotides were inserted at five different sites in the phoE gene. The proteins encoded by the mutant alleles all appeared to be incorporated into the outer membrane since cells producing these proteins bound either phages specific for the PhoE protein or monoclonal antibodies or both. However, one mutant protein was apparently not incorporated normally since expression of this protein was lethal and the protein did not function as a pore. Amino acid residues 75 and 280 of the PhoE protein appear to be exposed on the cell surface because insertions at these sites interfere with the binding of PhoE-specific phages or monoclonal antibodies to whole cells, respectively.

Bacterial Outer Membrane Proteins↗

Periplasmic accumulation of truncated forms of outer-membrane PhoE protein of Escherichia coli K-12.

In order to localize the information within PhoE protein of Escherichia coli K-12 required for export of the protein to the outer membrane, we have generated deletions throughout the phoE gene. Immunocytochemical labelling on ultrathin cryosections revealed that the polypeptides encoded by the mutant alleles are transported to, and accumulate in, the periplasm. These results show that, except for the signal sequence, there is no specific sequence within the PhoE protein that is essential for transport through the cytoplasmic membrane. The overall structure of the protein, rather than a particular sequence of amino acids, seems to be important for assembly into the outer membrane.

Autoradiography↗