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Role of receptor interaction in the mode of action of insecticidal Cry and Cyt toxins produced by Bacillus thuringiensis.

Cry toxins from Bacillus thuringiensis are used for insect control. Their primary action is to lyse midgut epithelial cells. In this review we will summarize recent findings on the Cry toxin-receptor interaction and the role of receptor recognition in their mode of action. Cry toxins interact sequentially with multiple receptors. In lepidopteran insects, Cry1A monomeric toxins interact with the first receptor and this interaction triggers oligomerization of the toxins. The oligomer then interacts with second receptor inducing insertion into membrane microdomains and larval death. In the case of mosquitocidal toxins, Cry and Cyt toxins play a part. These toxins have a synergistic effect and Cyt1Aa overcomes Cry toxin resistance. Recently, it was proposed that Cyt1Aa synergizes or suppresses resistance to Cry toxins by functioning as a membrane-bound receptor for Cry toxin.

Bacillus thuringiensis↗

Manipulation of the phenolic chemistry of willows by gall-inducing sawflies.

The ability to induce galls on plants has evolved independently in many insect orders, but the adaptive significance and evolutionary consequences of gall induction are still largely unknown. We studied these questions by analyzing the concentrations of various plant defense compounds in willow leaves and sawfly galls. We found that the galls are probably nutritionally beneficial for the sawfly larvae, because the concentrations of most defensive phenolics are substantially lower in gall interiors than in leaves. More importantly, changes in chemistry occur in a similar coordinated pattern in all studied willow species, which suggests that the insects control the phenolic biosynthesis in their hosts. The resulting convergence of the chemical properties of the galls both within and between host species indicates that the role of plant chemistry in the evolution of host shifts may be fundamentally less significant in gallers than in other phytophagous insects.

Animals↗

Histopathological effects of tannic acid on the midgut epithelium of some aquatic Diptera larvae.

The impact of tannins on larval Nematocera was investigated by an extensive survey of the relative toxicity of tannic acid in Diptera larvae representative of mosquito communities from alpine hydrosystems (Culicidae, Chaoboridae, Chironomidae, and Simuliidae) together with a nonindigenous vector competent Culicidae species. Bioassays indicate that exposure to tannic acid at concentrations from 0.25 to 4 mM is deleterious for Culex pipiens, Simulium variegatum, and Chironomus annularius, but not for Aedes, Anopheles, Culiseta, and Chaoborus species. Histopathological observations reveal that, among the target organs of tannic acid, mainly the midgut epithelium is affected by treatment. However, the extent of degeneration varies according to the taxon, the duration of the treatment, and the concentrations assayed. The vulnerability of epithelial cells differs among cell types, clear cells of the anterior midgut showing symptoms of intoxication before dark cells of the posterior midgut. The toxic effects of tannic acid are discussed, particularly in comparison to those of insecticidal bacteria, in order to evaluate the potential for use of tannins in the regulation of larval populations of dipteran pests.

Animals↗

Pesticidal and receptor binding properties of Bacillus thuringiensis Cry1Ab and Cry1Ac delta-endotoxin mutants to Pectinophora gossypiella and Helicoverpa zea.

Bacillus thuringiensis produces several larvicidal crystalline inclusions during sporulation. An understanding of their mechanisms of action is commercially important. In this study, two toxins, Cry1Ab and Cry1Ac, were compared that showed 98% amino acid identity in domain I and II, but differed significantly in domain III. Using site-directed mutagenesis techniques, two conserved loop 2 Arg's ((368)RR(369)) of Cry1Ab and Cry1Ac toxins were replaced with Ala ((368)AR(369), (368)RA(369), (368)AA(369)), Glu ((368)EE(369)), Phe ((368)FF(369)), His ((368)HH(369)), and Lys ((368)KK(369)). The effect of these mutants on structural stability, larvicidal potency, receptor binding, and ionic permeability towards two important cotton pests, pink bollworm (Pectinophora gossypiella) and bollworm (Helicoverpa zea) were analyzed. All seven mutants of Cry1Ab, excluding (368)AR(369), produced a stable protoxin, whereas for Cry1Ac all seven mutants yielded stable protoxin. Results showed that all the stable mutants behaved similarly to the wild type on incubation with trypsin and gut extract of both insect larvae. The Cry1Ab mutants, (368)AR(369), (368)AA(369), (368)FF(369), and (368)HH(369), lost toxicity; (368)EE(369) had reduced toxicity; whereas the more conserved change (368)KK(369) retained the toxicity similar to the wild type towards P. gossypiella. Double mutants of Cry1Ac, (368)AA(369) and (368)FF(369), abolished the toxicity. Double mutant (368)KK(369) of Cry1Ac retained its toxicity against P. gossypiella, whereas single mutants (368)AR(369), (368)RA(369), and (368)HH(369) retained only reduced toxicity. All the mutants of Cry1Ab lost their toxicity against H. zea except (368)KK(369). In Cry1Ac single mutants, (368)AR(369) and (368)RA(369), reduction in the toxicity was observed. A double mutant of Cry1Ac, (368)KK(369), also retained reduced toxicity. All the other double mutants lost their toxicity. Voltage clamping experiments on H. zea midguts provided an additional evidence about the insecticidal property and inhibition of I(sc) across the transepithelial membrane of the insect midgut.

Animals↗

Protein-enriched pea flour extract protects stored milled rice against the rice weevil, Sitophilus oryzae.

Studies were conducted to evaluate the effect of a protein-enriched pea (Pisum sativum var. Bonneville) flour extract against the rice weevil, Sitophilus oryzae in its repellency, toxicity, effect on fecundity, stability and sensory properties. Milled rice admixed with pea flour extract at 1% concentration significantly repelled S. oryzae. Mortality of S. oryzae was found to increase and fecundity was markedly suppressed, in rice treated with 1% pea flour extract. The toxicity and reproductive effects of the pea protein-enriched rice were found to be stable for a period of 5 months. The sensory characteristics of stored rice when eaten were not affected by the treatment with pea flour extract. This study indicates that the protein-enriched flour extract obtained from the Bonneville pea may be feasible to protect stored milled rice from insect attack.

Animals↗

Isolation of genotypic variants of Autographa californica nuclear polyhedrosis virus.

A nuclear polyhedrosis virus (MNPV) isolated from a lepidopteran (Noctuidae) insect, Autographa californica, was cloned by successive plaque purification using virions containing only one nucleocapsid per envelope as inoculum. The ability to clone the virus by this method was demonstrated by the isolation of nondefective, genotypic variants of the virus with similar but not identical restriction endonuclease fragment patterns. Five distinct variants were identified by genotypic analysis with HindIII, EcoRI, SalI, and Bam HI restriction endonucleases. The characteristic genotype of each variant was maintained upon passage in insect larvae. The isolation of these virus variants demonstrates (i) the heterogeneity of the uncloned virus preparation and (ii) the ability to clone MNPVs by plaque purification of media-derived nonoccluded virions. The A. californica MNPV is being considered for commercial use as a pesticide in the United States, and the cloning of the virus, in view of the heterogeneity detected, may be advisable. The cloning and genotype analyses are also significant with regard to understanding the genetic nature of multiply embedded NPVs (those NPVs containing more than one nucleocapsid per envelope in the occluded form of the virus) and indicate that further genetic analysis of these viruses is possible.

Animals↗

Transition state analogs as ligands for affinity purification of juvenile hormone esterase.

Insect juvenile hormones are metabolized in numerous species of caterpillars by low abundance, highly specific esterases. Because of their role in regulating and possibly disrupting juvenile hormone titer and thus insect metamorphosis, they are of interest to developmental biologists as well as scientists interested in selective insect control. However, the enzymes have defied attempts to purify and characterize them. Juvenile hormone esterase activity can be inhibited by a variety of 3-substituted 1,1,1-trifluoropropanone sulfides. These apparent transition state analogs were used as ligands and eluting agents to purify juvenile hormone esterase from four insect species from 500-fold to over 1000-fold in high yield. After elution from the affinity column, the enzymes were radiolabeled with paraoxon and analyzed by electrophoresis, and the results demonstrate a high degree of purity. Transition state analogs may be useful for the affinity purification of other enzymes.

Acetone↗

Aspects of research on insect growth hormones.

Current research on insect growth hormones includes studies on the binding of hormones to receptor molecules, probably proteins. Evidence has been obtained that this process does in fact occur and may be the means whereby the hormones "recognize" target tissues. Other studies on the possibility of a feedback effect when growth hormones are used for insect control suggest that there is a positive feedback relationship between the hormone titre and the activity of prothoracic glands and corpora allata, but the details are not yet clear. Cyclic adenosine 3',5'-monophosphate has an important role as "second messenger" in vertebrate endocrinology and may also be important in insects. Studies have shown that adenyl cyclase is present in pupal epidermis and the preliminary results have shown that it can be stimulated by a steroid hormone.

Adenylyl Cyclases↗

Molecular characteristics of insect vitellogenins and vitellogenin receptors.

The recent cloning and sequencing of several insect vitellogenins (Vg), the major yolk protein precursor of most oviparous animals, and the mosquito Vg receptor (VgR) has brought the study of insect vitellogenesis to a new plane. Insect Vgs are homologous to nematode and vertebrate Vgs. All but one of the insect Vgs for which we know the primary structure are cleaved into two subunits at a site [(R/K)X(R/K)R or RXXR with an adjacent beta-turn] recognized by subtilisin-like proprotein convertases. In four of the Vgs, the cleavage site is near the N-terminus, but in one insect species, it is near the C-terminus of the Vg precursor. Multiple alignments of these Vg sequences indicate that the variation in cleavage location has not arisen through exon shuffling, but through local modifications of the amino acid sequences. A wasp Vg precursor is not cleaved, apparently because the sequence at the presumed ancestral cleavage site has been mutated from RXRR to LYRR and is no longer recognized by convertases. Some insect Vgs contain polyserine domains which are reminiscent of, but not homologous to, the phosvitin domain in vertebrate Vgs. The sequence of the mosquito VgR revealed that it is a member of the low-density lipoprotein receptor (LDLR) family. Though resembling chicken and frog VgRs, which are also members of the LDLR family, it is twice as big, carrying two clusters of cysteine-rich complement-type (Class A) repeats (implicated in ligand-binding) instead of one like vertebrate VgRs and LDLRs. It is very similar in sequence and domain arrangement to the Drosophila yolk protein receptor (YPR), despite a non-vitellogenin ligand for the latter. Though vertebrate VgRs, insect VgR/YPRs, and LDLR-related proteins/megalins all accommodate one cluster of eight Class A repeats, fingerprint analysis of the repeats in these clusters indicate they are not directly homologous with one another, but have undergone differing histories of duplications, deletions, and exon shuffling so that their apparent similarity is superficial. The so-called epidermal growth factor precursor region contains two types of motifs (cysteine-rich Class B repeats and YWXD repeats) which occur independently of one another in diverse proteins, and are often involved in protein-protein interactions, suggesting that they potentially are involved in dimerization of VgRs and other LDLR-family proteins. Like the LDLR, but unlike vertebrate VgRs and the Drosophila YPR, the mosquito VgR contains a putative O-linked sugar region on the extra-cellular side of the transmembrane domain. Its function is unclear, but may protect the receptor from membrane-bound proteases. The cytoplasmic tail of insect VgR/YPRs contains a di-leucine (or leucine-isoleucine) internalization signal, unlike the tight-turn tyrosine motif of other LDLR-family proteins. The importance of understanding the details of yolk protein uptake by oocytes lies in its potential for exploitation in novel insect control strategies, and the molecular characterization of the proteins involved has made the development of such strategies a realistic possibility.

Amino Acid Sequence↗