998 resultados para herbicide resistance
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With the increasing pressure on crop production from the evolution of herbicide resistance, farmers are increasingly adopting Integrated Weed Management (IWM) strategies to augment their weed control. These include measures to increase the competitiveness of the crop canopy such as increased sowing rate and the use of more competitive cultivars. While there are data on the relative impact of these non-chemical weed control methods assessed in isolation, there is uncertainty about their combined contribution, which may be hindering their adoption. In this article, the INTERCOM simulation model of crop / weed competition was used to examine the combined impact of crop density, sowing date and cultivar choice on the outcomes of competition between wheat (Triticum aestivum) and Alopecurus myosuroides. Alopecurus myosuroides is a problematic weed of cereal crops in North-Western Europe and the primary target for IWM in the UK because it has evolved resistance to a range of herbicides. The model was parameterised for two cultivars with contrasting competitive ability, and simulations run across 10 years at different crop densities and two sowing dates. The results suggest that sowing date, sowing density and cultivar choice largely work in a complementary fashion, allowing enhanced competitive ability against weeds when used in combination. However, the relative benefit of choosing a more competitive cultivar decreases at later sowing dates and higher crop densities. Modelling approaches could be further employed to examine the effectiveness of IWM, reducing the need for more expensive and cumbersome long-term in situ experimentation.
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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)
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Amicarbazone is a new triazolinone herbicide with a broad spectrum of weed control. The phenotypic responses of sensitive plants exposed to amicarbazone include chlorosis, Stunted growth, tissue necrosis, and death. Its efficacy as both a foliar- and root-applied herbicide suggests that absorption and translocation of this compound is very rapid. This new herbicide is a potent inhibitor of photosynthetic electron transport, inducing chlorophyll fluorescence and interrupting oxygen evolution ostensibly via binding to the Q(B) domain of photosystem II (PSII) in a manner similar to the triazines and the triazinones classes of herbicides. As a result, its efficacy is susceptible to the most common form of resistance to PSII inhibitors. Nonetheless, amicarbazone has a good selectivity profile and is a more potent herbicide than atrazine, which enables its use at lower rates than those of traditional photosynthetic inhibitors.
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Pós-graduação em Agronomia (Genética e Melhoramento de Plantas) - FCAV
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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Muito se tem estudado sobre o potencial que algumas plantas têm de inibir o desenvolvimento de outras plantas. Em busca de alternativas para reduzir a dependência de herbicidas sintéticos, diminuindo os danos ambientais e prejuízos à saúde humana e procurando alternativas à resistência aos herbicidas do mercado, os compostos naturais oferecem excelentes perspectivas. Este trabalho isola, identifica as estruturas e caracteriza a atividade alelopática de duas substâncias químicas produzidas pela espécie Acacia mangium. Para isso, procede-se com solução hidroalcoólica (7:3) extração exaustiva das folhas secas caídas, folhas verdes, raízes e sementes dessa espécie, passando-se pela recuperação do etanol (evaporador rotativo) e liofilização dos extratos para a desidratação e obtenção do extrato bruto hidroalcoólico (EBHA). Para identificar qual parte da planta possui maior potencial alelopático, é preparado um bioensaio com a utilização de solução hidroalcoólica (7:1) de cada EBHA em concentração de 1%. É determinado o potencial inibitório sobre a germinação, desenvolvimento do hipocótilo e desenvolvimento da radícula das sementes das plantas daninhas malícia (Mimosa pudica), mata-pasto (Senna alata) e puerária (Pueraria phaseoloides). 10 g do EBHA das folhas caídas são submetidas à CCVU para separação das substâncias, a partir do qual são obtidas quatro reuniões de substâncias semelhantes. Três delas são refracionadas em colunas menores (R1’, R2- R3’, R4’) e da coluna R1’ são isoladas as substâncias Lupenona e Lupeol. Nos bioensaios com os extratos, o das folhas secas apresenta as inibições mais acentuadas, notadamente sobre a germinação (99%). Nesta característica, mata-pasto é a espécie de menor sensibilidade, com inibições abaixo de 12%. São realizados bioensaios com as substâncias isoladas e em par (solubilizadas em clorofórmio), na concentração de 140 ppm, sobre as sementes de Mimosa pudica e Senna obtusifolia. Para a germinação das sementes, as substâncias em todos os tratamentos não evidenciam qualquer efeito. Para o desenvolvimento da radícula, ambas as substâncias, isoladamente, promovem inibições em torno de 40% sobre duas espécies de plantas daninhas, enquanto que em par, observa-se que há antagonismo entre as substâncias, já que os resultados são inferiores, ficando ao redor de 30%. Com relação ao crescimento do hipocótilo a inibição em todos os tratamentos fica em torno de 15% e não há diferença significativa entre os resultados. É testado também o efeito do pH (3,0 e 9,0) na atividade alelopática das substâncias, isoladas e em par, sobre a germinação das sementes de malícia e observa-se que há interação para os fatores pH e germinação, havendo maior atividade inibitória da lupenona em condições ácidas e do lupeol em condições alcalinas. Não há efeito aditivo ou negativo quando da associação das substâncias. É realizada também análise por HPLC nos extratos brutos hidroalcoólicos de três partes da planta Acacia mangium para a detecção dos flavonóides catequina e epicatequina (substâncias com comprovado efeito alelopático), sendo que a epicatequina é a substância com absorção para os espetros selecionados, mostrando que esta substância pode ter contribuído para os resultados expressivos observados nos primeiros bioensaios com os extratos brutos das partes das plantas.
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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)
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Pós-graduação em Agronomia (Proteção de Plantas) - FCA
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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Pós-graduação em Agronomia (Proteção de Plantas) - FCA
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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Biochemically active wheat thioredoxin h has been overexpressed in the endosperm of transgenic barley grain. Two DNA constructs containing the wheat thioredoxin h gene (wtrxh) were used for transformation; each contained wtrxh fused to an endosperm-specific B1-hordein promoter either with or without a signal peptide sequence for targeting to the protein body. Twenty-two stable, independently transformed regenerable lines were obtained by selecting with the herbicide bialaphos to test for the presence of the bar herbicide resistance gene on a cotransformed plasmid; all were positive for this gene. The presence of wtrxh was confirmed in 20 lines by PCR analysis, and the identity and level of expression of wheat thioredoxin h was assessed by immunoblots. Although levels varied among the different transgenic events, wheat thioredoxin h was consistently highly expressed (up to 30-fold) in the transgenic grain. Transgenic lines transformed with the B1-hordein promoter with a signal peptide sequence produced a higher level of wheat thioredoxin h on average than those without a signal sequence. The overexpression of thioredoxin h in the endosperm of germinated grain effected up to a 4-fold increase in the activity of the starch debranching enzyme, pullulanase (limit dextrinase), the enzyme that specifically cleaves α-1,6 linkages in starch. These results raise the question of how thioredoxin h enhances the activity of pullulanase because it was found that the inhibitor had become inactive before the enzyme showed appreciable activity.
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Peroxidizing herbicides inhibit protoporphyrinogen oxidase (Protox), the last enzyme of the common branch of the chlorophyll- and heme-synthesis pathways. There are two isoenzymes of Protox, one of which is located in the plastid and the other in the mitochondria. Sequence analysis of the cloned Protox cDNAs showed that the deduced amino acid sequences of plastidial and mitochondrial Protox in wild-type cells and in herbicide-resistant YZI-1S cells are the same. The level of plastidial Protox mRNA was the same in both wild-type and YZI-1S cells, whereas the level of mitochondrial Protox mRNA YZI-1S cells was up to 10 times the level of wild-type cells. Wild-type cells were observed by fluorescence microscopy to emit strong autofluorescence from chlorophyll. Only a weak fluorescence signal was observed from chlorophyll in YZI-1S cells grown in the Protox inhibitor N-(4-chloro-2-fluoro-5-propagyloxy)-phenyl-3,4,5,6-tetrahydrophthalimide. Staining with DiOC6 showed no visible difference in the number or strength of fluorescence between wild-type and YZI-1S mitochondria. Electron micrography of YZI-1S cells showed that, in contrast to wild-type cells, the chloroplasts of YZI-1S cells grown in the presence of N-(4-chloro-2-fluoro-5-propagyloxy)-phenyl-3,4,5,6-tetrahydrophthalimide exhibited no grana stacking. These results suggest that the herbicide resistance of YZI-1S cells is due to the overproduction of mitochondrial Protox.
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Weed management has become increasingly challenging for cotton growers in Australia in the last decade. Glyphosate, the cornerstone of weed management in the industry, is waning in effectiveness as a result of the evolution of resistance in several species. One of these, awnless barnyard grass, is very common in Australian cotton fields, and is a prime example of the new difficulties facing growers in choosing effective and affordable management strategies. RIM (Ryegrass Integrated Management) is a computer-based decision support tool developed for the south-western Australian grains industry. It is commonly used there as a tool for grower engagement in weed management thinking and strategy development. We used RIM as the basis for a new tool that can fulfil the same types of functions for subtropical Australian cotton-grains farming systems. The new tool, BYGUM, provides growers with a robust means to evaluate five-year rotations including testing the economic value of fallows and fallow weed management, winter and summer cropping, cover crops, tillage, different herbicide options, herbicide resistance management, and more. The new model includes several northernregion- specific enhancements: winter and summer fallows, subtropical crop choices, barnyard grass seed bank, competition, and ecology parameters, and more freedom in weed control applications. We anticipate that BYGUM will become a key tool for teaching and driving the changes that will be needed to maintain sound weed management in cotton in the near future.
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Wheat occupies a principal place in the diet of humans globally, contributing more to our daily calorie and protein intake than any other crop. For this reason, preventing weed induced yield losses in wheat has high significance for world food sustainability. Herbicides and tillage play an important role in weed control, but their use has often unacceptable consequences for humans and the wider environment. Additionally, the range of herbicides effective on key weeds is dwindling due to the evolution of herbicide resistance. Elevating crop competitiveness against weeds, through a combination of wheat breeding and innovative planting design (planting density, row spacing and orientation), has strong potential to reduce weed-induced yield losses in wheat. The last decade of research has provided a solid foundation for the breeding of weed suppressive wheat cultivars, and continued research in this area should be a focus for the future. In the interim, there is cause for optimism that weeds can be effectively suppressed using existing wheat varieties, through careful cultivar selection and choice of planting design. Further research is required to define the nature of relationships between cultivar traits and competitive planting strategies, across diverse weed flora in multiple countries, sites and seasons. Investment in such innovation promises to produce benefits, not only in terms of sustained wheat yields, but also in terms of human and ecosystem health, through ameliorating chemical and sediment contamination, soil degradation, and CO2 pollution.