995 resultados para Agricultural pests


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Larven der Eulenfalter, Gattung Agrotis (Lepidoptera: Noctuidae), sind Schädlinge in der Landwirtschaft, welche gravierende Fraßschäden an bodennahen Pflanzenteilen verursachen. Häufig kommt es zum Absterben der noch jungen Pflanzen oder zu Beschädigungen der pflanzlichen Produkte, was zu finanziellen Ertragsverlusten führt. Zwei der wichtigsten landwirtschaftlichen Schädlinge der Gattung Agrotis sind die Larven der Saateule (Agrotis segetum) und der Ypsiloneule (Agrotis ipsilon), welche bisher überwiegend mittels chemischer Pestizide bekämpft werden. Als eine umweltfreundliche, nachhaltige und vielversprechende Alternative in der Bekämpfung wird der Einsatz von Baculoviren berücksichtigt. Baculoviren zeichnen sich durch eine hohe Virulenz und einem sehr engen Wirtsbereich aus. Häufig werden nur wenige nah verwandte Arten der gleichen Gattung infiziert. Aus der Gattung Agrotis wurden bisher mindestens vier Baculoviren isoliert und charakterisiert, welche als potentielle biologische Pflanzenschutzmittel in Frage kommen; sie gehören zu zwei Gattungen der Baculoviren: rnAlphabaculovirusrn(i) Agrotis segetum nucleopolyhedrovirus A (AgseNPV-A)rn(ii) Agrotis segetum nucleopolyhedrovirus B (AgseNPV-B)rn(iii) Agrotis ipsilon nucleopolyhedrovirus (AgipNPV)rnBetabaculovirusrn(i) Agrotis segetum granulovirus (AgseGV).rnDie Genome der AgseNPV-A, AgipNPV sowie des AgseGV wurden in vorherigen Studien bereits vollständig sequenziert und publiziert. In der vorgelegten Dissertation wurde das AgseNPV-B sequenziert und umfassend mit AgseNPV-A und AgipNPV verglichen. Das Genom von AgseNPV-B ist 148981 Kbp groß und kodiert ….. offene Leseraster. Phylogenetische Analysen zeigen eine enge Verwandtschaft dieser drei Viren und klassifizieren AgseNPV-B als eine neue Art innerhalb der Gattung Alphabaculovirus. Auf Basis der vorhandenen Genomsequenzen konnte eine PCR-basierende Methode zur Detektion und Quantifizierung on AgseNPV-A, AgseNPV-B, AgipNPV und AgseGV etabliert werden. Dises Verfahren ermöglichte die Quantifizierung von AgseNPV-B und AgseGV in Larven von A. segetum, die von beiden Viren zeitgleichinfiziert waren. Durch das gemeinsame Auftreten dieser beiden Wiren innerhalb eines Wirtsindividuums stellte sich die Frage, welche Art der Interaktion bei einer Ko-Infektion vorliegt. Durch Mischinfektionsversuche von AgseNPV-B und AgseGV konnte gezeigt werden, dass beide Viren um die Ressourcen der Larven konkurrieren. Eine für landwirtschaftliche Zwecke vorteilige Interaktion, wie das vorzeitige Verenden der Larven, das bereits für andere interagierende Baculoviren nachgewiesen wurde, konnte ausgeschlossen werden. Neben den Mischinfektionsversuchen wurden auch AgseGV und AgseNPV-B einzeln auf ihre Eignung als biologisches Pflanzenschutzmittel getestet. AgseGV zeigte in den Laborversuchen eine relativ langsame Wirkung, während AgseNPV-B durchaus Potential für ein rasche Abtötung besitzt. rnDie durchgeführten Aktivitätsstudien und die Charakterisierung von AgseNPV-B als neue Art erlauben ein vertieftes biologisches und molekulares Verständnis des Virus legen den Grundstein für und eine mögliche spätere Zulassung als Pflanzenschutzmittel. Die Methode zur Identifizierung und Quantifizierung der Agrotis-Baculoviren stellt ein wichtiges Instrument in der Qualitätskontrolle für Produzenten dar und ermöglicht zudem weitere Untersuchungen von Agrotis-Baculoviren in Mischinfektionen.

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Benzoxazinoids are chemical defenses against herbivores and are produced by many members of the grass family. These compounds are stored as stable glucosides in plant cells and require the activity of glucosidases to release the corresponding toxic aglucones. In maize leaves, the most abundant benzoxazinoid is (2R)-DIMBOA-Glc, which is converted into the toxic DIMBOA upon herbivory. The ways in which three Spodoptera species metabolize this toxin were investigated. (2S)-DIMBOA-Glc, an epimer of the initial plant compound, was observed in the insect frass, and the associated glucosyltransferase activity was detected in the insect gut tissue. The epimeric glucoside produced by the insect was found to be no longer reactive towards plant glucosidases and thus cannot be converted into a toxin. Stereoselective reglucosylation thus represents a detoxification strategy in Spodoptera species that might help to explain their success as agricultural pests on benzoxazinoid-containing crops.

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Root herbivores are important ecosystem drivers and agricultural pests, and, possibly as a consequence, plants protect their roots using a variety of defensive strategies. One aspect that distinguishes belowground from aboveground plant–insect interactions is that roots are constantly exposed to a set of soil-specific abiotic factors. These factors can profoundly influence root resistance, and, consequently, the outcome of the interaction with belowground feeders. In this review, we synthesize the current literature on the impact of soil moisture, nutrients, and texture on root–herbivore interactions. We show that soil abiotic factors influence the interaction by modulating herbivore abundance and behaviour, root growth and resistance, beneficial microorganisms, as well as natural enemies of the herbivores. We suggest that abiotic heterogeneity may explain the high variability that is often encountered in root–herbivore systems. We also propose that under abiotic stress, the relative fitness value of the roots and the potential negative impact of herbivory increases, which may lead to a higher defensive investment and an increased recruitment of beneficial microorganisms by the plant. At the same time, both root-feeding herbivores and natural enemies are likely to decrease in abundance under extreme environmental conditions, leading to a context- and species-specific impact on plant fitness. Only by using tightly controlled experiments that include soil abiotic heterogeneity will it be possible to understand the impact of root feeders on an ecosystem scale and to develop predictive models for pest occurrence and impact.

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Biodegradability is a desirable, if not a necessary characteristic of pesticides. Carbaryl, as Sevin, is one of the more widely used insecticides for the control of agricultural pests and has been reported to be readily degraded by microorganisms. Because of its broad application, the concentration of Sevin in surface waters has been reported to reach nearly four parts per million (PPM) in surface waters, where it has been reported to affect the growth and metabolic rates of aquatic bacterial populations. Following these reports, it is of public health importance to determine the effects of this insecticide on the growth and metabolic rates of bacteria used to indicate water pollution, and on pathogenic organisms which are found in polluted water.^ This study was conducted to determine the effect of carbaryl on the growth and metabolic rates of indicator and pathogenic organisms. Escherichia coli and Streptococcus faecalis were used as indicators, while Staphylococcus aureus and Salmonella typhimurium were the pathogens studied. Pure and mixed cultures of these organisms were exposed to two concentrations of carbaryl (Sevin).^ The study demonstrated that the fecal pollution indicator organisms, E. coli and S. faecalis respond differently to the presence of small concentrations of carbaryl in water as do the two pathogens tested, (S. typhimurium and S. aureus). The growth of all test organisms as measured by spread plate counts, was reduced by the presence of either one mg/l or five mg/l carbaryl within a period of eight days. Survival of the organisms in the presence of five mg/l carbaryl varied dependent upon whether the organism was in pure or mixed culture. In the presence of five mg/l carbaryl, both pure and mixed culture of E. coli showed longer survival. S. faecalis survived for more than eight days in pure culture, neither S. typhimurium nor S. aureus survived for eight days in pure culture.^ The metabolic rate of S. faecalis and S. aureus was reduced by both five mg/l and one mg/l Sevin concentrations, contrary to E. coli and S. typhimurium which had reduced metabolic rate with the introduction of five mg/l Sevin but showed an increase in the metabolic rate with one mg/l Sevin. There was no difference between the test and control when mixed populations were exposed to five mg/l Sevin and the metabolic rate tested. A mixture of E. coli and S. typhimurium populations showed a respiration increase over the control when exposed to one mg/l Sevin concentration. If similar effects occur in polluted surface waters, misleading results from bacteriological water quality testing may occur. ^

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A fundamental shift to a total system approach for crop protection is urgently needed to resolve escalating economic and environmental consequences of combating agricultural pests. Pest management strategies have long been dominated by quests for “silver bullet” products to control pest outbreaks. However, managing undesired variables in ecosystems is similar to that for other systems, including the human body and social orders. Experience in these fields substantiates the fact that therapeutic interventions into any system are effective only for short term relief because these externalities are soon “neutralized” by countermoves within the system. Long term resolutions can be achieved only by restructuring and managing these systems in ways that maximize the array of “built-in” preventive strengths, with therapeutic tactics serving strictly as backups to these natural regulators. To date, we have failed to incorporate this basic principle into the mainstream of pest management science and continue to regress into a foot race with nature. In this report, we establish why a total system approach is essential as the guiding premise of pest management and provide arguments as to how earlier attempts for change and current mainstream initiatives generally fail to follow this principle. We then draw on emerging knowledge about multitrophic level interactions and other specific findings about management of ecosystems to propose a pivotal redirection of pest management strategies that would honor this principle and, thus, be sustainable. Finally, we discuss the potential immense benefits of such a central shift in pest management philosophy.

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Volume I consists of 4 parts (I-III and V) (cf. CBI)

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Volume numbers assigned for convenience in cataloging.

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No. 1-8 issued as Dept. of Agriculture. Experimental Farms. Bulletin; no. 19- as Dept. of Agriculture. Bulletin, new ser.

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Mode of access: Internet.

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Description based on: FY 1992; title from cover.

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Mode of access: Internet.

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Mode of access: Internet.

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Mode of access: Internet.