956 resultados para Wheat (Triticum aestivum. L.)


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Las variedades de trigo con hábito de crecimiento invernal requieren una prolongada exposición a bajas temperaturas para acelerar la floración. Este requerimiento se denomina 'vernalización' y la variación natural en los genes que controlan este proceso ha favorecido la adaptación del trigo a diferentes ambientes. Los principales loci que controlan el requerimiento de vernalización en trigo se denominan VRN1, VRN2, VRN3 y VRN-D4. Los primeros tres genes han sido aislados y caracterizados pero VRN-D4 no ha sido identificado aún a nivel molecular. El objetivo de esta tesis es la identificación de VRN-D4 mediante clonado posicional, lo que incluyó la construcción de un mapa genético de alta densidad, un mapa físico, el estudio de los genes candidatos y su validación. Usando esta estrategia se encontró que VRN-D4 está localizado en la región centromérica del brazo corto del cromosoma 5D. En esta región se identificó la inserción un fragmento cromosómico de ~290Kb del cromosoma 5A incluyendo una copia del gen de floración VRN-A1. Usando mutantes inducidos por EMS este estudio demuestra que esta segunda copia de VRN-A1 es VRN-D4. VRN-D4 fue encontrado en muy alta frecuencia en la sub-especie T. aestivum ssp. sphaerococcum predominante en el sur del continente Asiático. Esta sub-especie carece de otros genes para hábito de crecimiento primaveral, lo que sugiere que VRN-D4 jugó un rol importante en la adaptación del trigo a esta región. Este estudio también identificó mutaciones en una región regulatoria de VRN-D4 asociadas a su expresión temprana. Mutaciones similares identificadas en alelos de VRN-A1 también estuvieron asociadas con un reducido requerimiento de vernalización. Los alelos de VRN-A1 y VRN-D4 identificados en este estudio representan una herramienta útil para regular la fecha de floración de trigo. Este estudio contribuye también al conocimiento básico de los mecanismos moleculares involucrados en la respuesta a la vernalización.

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Arsenic (As) uptake and distribution in the roots, shoots, and grain of wheat (Triticum durum) grown in 2 As polluted soils (192 and 304 mg kg -1 respectively), and an uncontaminated soil (14 mg kg-1 ), collected from Scarlino plain (Tuscany, Italy), was investigated with respect with phosphorus fertilization. Three different level of phosphorus (P) fertilization: PO [0 kg ha-1], Pl [75 kg ha-1], and P2 [150 kg ha-1], as KH2PO4 of P, were applied. The presence of high concentrations of As in soils reduced plants growth, decreased grain yield and increased root, shoot and grain As concentrations, especially in the absence of P fertilization. The P fertilization decreased the As concentration in all the tissues as well as the translocation of As to the shoot and grain. This observation may be useful in certain areas of the world with high levels of As in soils, to reduce the potential risk posed to human health by As entering the food-chain. © by PSP.

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Here the mechanism of arsenite transport into paddy rice (Oryza sativa) roots, uptake of which is described by Michaelis-Menten kinetics, is reported. A recent study on yeast (Saccharomyces cerevisiae) showed that undissociated arsenite (its pKa is 9.2) was transported across the plasma membrane via a glycerol transporting channel. To investigate whether the same mechanism of transport was involved for rice, competitive studies with glycerol, which is transported into cells via aquaporins, were performed. Glycerol competed with arsenite for transport in a dose-dependent manner, indicating that arsenite and glycerol uptake mechanisms were the same. Arsenate transport was unaffected by glycerol, confirming that arsenate and arsenite are taken up into cells by different mechanisms. Antimonite, an arsenite analogue that is transported into S. cerevisiae cells by aquaporins, also competed with arsenite transport in a dose-dependent manner, providing further evidence that arsenite is transported into rice roots via glycerol transporting channels. Mercury (Hg2+) inhibited both arsenite and arsenate uptake, suggesting that inhibition of influx was due to general cellular stress rather than the specific action of Hg2+ on aquaporins. Arsenite uptake by pea (Pisum sativum) and wheat (Triticum aestivum) was also described by Michaelis-Menten kinetics.

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La seguridad agroalimentaria debe ser prioridad para los gobiernos de Brasil y Argentina, debido a que deben garantizar la producción y el abastecimiento de los alimentos básicos para las futuras generaciones, entendido como alimentos básicos aquellos que más se consumen, ya sea en su forma original o por medio de sus subproductos, estos productos son el trigo, el maíz y el arroz. El garantizar la producción y el abastecimiento de estos productos en el corto y largo plazo, implica entender cuáles de los procesos productivos aplicados en la realización de los productos base de alimentación no son compatibles con el medio ambiente, generando impactos negativos sobre este. Estos impactos ambientales generados a partir de la agricultura, son identificados como el uso excesivo de recursos naturales entre ellos el agua, así como su contaminación por agentes toxico como los agroquímicos y fertilizantes. Asimismo, el uso de estos agentes tóxicos, genera la infertilidad de los suelos afectando directamente la producción en el largo plazo. Entender los impactos ambientales, implica desarrollar estrategias transversales que le permitan a los garantizar un desarrollo sostenible a lo largo de todo el ciclo del producto; estas estrategias deben estar acompañadas por un rendimiento y eficiencia de los cultivos, de nada sirve implementar estrategias compatibles con el medio ambiente si no se cumple con el principal objetivo de la producción de estos producto, que es garantizar el abastecimiento y alimentación para las generaciones presentes y futuras.

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The indolines and thionins are basic, amphiphilic and cysteine-rich proteins found in cereals; puroindoline-a (Pin-a) and β-purothionin (β-Pth) are members of these families in wheat (Triticum aestivum). Pin-a and β-Pth have been suggested to play a significant role in seed defence against microbial pathogens, making the interaction of these proteins with model bacterial membranes an area of potential interest. We have examined the binding of these proteins to lipid monolayers composed of 1,2-dipalmitoyl-sn-glycero-3-phospho-(1'-rac-glycerol) (DPPG) using a combination of neutron reflectometry, Brewster angle microscopy, and infrared spectroscopy. Results showed that both Pin-a and β-Pth interact strongly with condensed phase DPPG monolayers, but the degree of penetration was different. β-Pth was shown to penetrate the lipid acyl chain region of the monolayer and remove lipids from the air/liquid interface during the adsorption process, suggesting this protein may be able to both form membrane spanning ion channels and remove membrane phospholipids in its lytic activity. Conversely, Pin-a was shown to interact mainly with the head-group region of the condensed phase DPPG monolayer and form a 33 Å thick layer below the lipid film. The differences between the interfacial structures formed by these two proteins may be related to the differing composition of the Pin-a and β-Pth hydrophobic regions.

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The transcriptome of the developing starchy endosperm of hexaploid wheat (Triticum aestivum) was determined using RNA-Seq isolated at five stages during grain fill. This resource represents an excellent way to identify candidate genes responsible for the starchy endosperm cell wall, which is dominated by arabinoxylan (AX), accounting for 70% of the cell wall polysaccharides, with 20% (1,3; 1,4)-beta-D-glucan, 7% glucomannan, and 4% cellulose. A complete inventory of transcripts of 124 glycosyltransferase (GT) and 72 glycosylhydrolase (GH) genes associated with cell walls is presented. The most highly expressed GT transcript (excluding those known to be involved in starch synthesis) was a GT47 family transcript similar to Arabidopsis (Arabidopsis thaliana) IRX10 involved in xylan extension, and the second most abundant was a GT61. Profiles for GT43 IRX9 and IRX14 putative orthologs were consistent with roles in AX synthesis. Low abundances were found for transcripts from genes in the acyl-coA transferase BAHD family, for which a role in AX feruloylation has been postulated. The relative expression of these was much greater in whole grain compared with starchy endosperm, correlating with the levels of bound ferulate. Transcripts associated with callose (GSL), cellulose (CESA), pectin (GAUT), and glucomannan (CSLA) synthesis were also abundant in starchy endosperm, while the corresponding cell wall polysaccharides were confirmed as low abundance (glucomannan and callose) or undetectable (pectin) in these samples. Abundant transcripts from GH families associated with the hydrolysis of these polysaccharides were also present, suggesting that they may be rapidly turned over. Abundant transcripts in the GT31 family may be responsible for the addition of Gal residues to arabinogalactan peptide.

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The plant defence proteins α1- and α2-purothionin (Pth) are type 1 thionins from common wheat (Triticum aestivum). These highly homologous proteins possess characteristics common amongst antimicrobial peptides and proteins, that is, cationic charge, amphiphilicity and hydrophobicity. Both α1- and α2-Pth possess the same net charge, but differ in relative hydrophobicity as determined by C18 reversed phase HPLC. Brewster angle microscopy, X-ray and neutron reflectometry, external reflection FTIR and associated surface pressure measurements demonstrated that α1 and α2-Pth interact strongly with condensed phase 1,2-dipalmitoyl-sn-glycero-3-phospho-(1'-rac-glycerol) (DPPG) monolayers at the air/liquid interface. Both thionins disrupted the in-plane structure of the anionic phospholipid monolayer, removing lipid during this process and both penetrated the lipid monolayer in addition to adsorbing as a single protein layer to the lipid head-group. However, analysis of the interfacial structures revealed that the α2-Pth showed faster disruption of the lipid film and removed more phospholipid (12%) from the interface than α1-Pth. Correlating the protein properties and lipid binding activity suggests that hydrophobicity plays a key role in the membrane lipid removal activity of thionins.

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We describe a simple, inexpensive, but remarkably versatile and controlled growth environment for the observation of plant germination and seedling root growth on a flat, horizontal surface over periods of weeks. The setup provides to each plant a controlled humidity (between 56% and 91% RH), and contact with both nutrients and atmosphere. The flat and horizontal geometry of the surface supporting the roots eliminates the gravitropic bias on their development and facilitates the imaging of the entire root system. Experiments can be setup under sterile conditions and then transferred to a non-sterile environment. The system can be assembled in 1-2 minutes, costs approximately 8.78$ per plant, is almost entirely reusable (0.43$ per experiment in disposables), and is easily scalable to a variety of plants. We demonstrate the performance of the system by germinating, growing, and imaging Wheat (Triticum aestivum), Corn (Zea mays), and Wisconsin Fast Plants (Brassica rapa). Germination rates were close to those expected for optimal conditions.

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Early establishment of endophytes can play a role in pathogen suppression and improve seedling development. One route for establishment of endophytes in seedlings is transmission of bacteria from the parent plant to the seedling via the seed. In wheat seeds, it is not clear whether this transmission route exists, and the identities and location of bacteria within wheat seeds are unknown. We identified bacteria in the wheat (Triticum aestivum) cv. Hereward seed environment using embryo excision to determine the location of the bacterial load. Axenic wheat seedlings obtained with this method were subsequently used to screen a putative endophyte bacterial isolate library for endophytic competency. This absence of bacteria recovered from seeds indicated low bacterial abundance and/or the presence of inhibitors. Diversity of readily culturable bacteria in seeds was low with 8 genera identified, dominated by Erwinia and Paenibacillus. We propose that anatomical restrictions in wheat limit embryo associated vertical transmission, and that bacterial load is carried in the seed coat, crease tissue and endosperm. This finding facilitates the creation of axenic wheat plants to test competency of putative endophytes and also provides a platform for endophyte competition, plant growth, and gene expression studies without an indigenous bacterial background.

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Zinc application methods can affect the nutrition and the initial development of the wheat. Thus, the aim of this work was to analyze the different ways of Zn application in the soil, on nutrition and on dry matter production. A completely randomized experimental design with four replications was used. The experiment was composed by the following Zn application treatments: control (no zinc application); soil incorporation, furrow located, seeds treatment and leaf pulverization. The experimental unit was composed of a pot filled with 7 L of soil. Morphological traits for each plant were determined on 52 days after emergence by the evaluations of plant height, internodes number, tillers number and aerial part dry matter. Still, the soil and plant chemical analysis was accomplished. The furrow located method provided larger concentrations of the micronutrient available. The zinc application methods did not influence the initial growth of the wheat plants. The zinc concentration in leaves was influenced by the different application methods, being the leaf pulverization the one that was caused the largest zinc accumulation on aerial part dry matter.

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A adubação nitrogenada é de suma importância para a cultura do trigo, já que o nitrogênio constitui um dos nutrientes mais exigidos por essa cultura e o rendimento desta é função direta da quantidade de nutrientes acumulados pela planta. Foram testados os adubos nitrogenados: sulfonitrato de amônio com inibidor de nitrificação, sulfato de amônio e uréia, na dose de 70 kg de N ha-1; em duas épocas de aplicação, na linha de semeadura ou em cobertura, a©m da testemunha que não recebeu nitrogênio como tratamento, em quatro cultivares de trigo irrigado: Empresa Brasileira de Pesquisa Agropecuária (EMBRAPA) 21, Empresa Brasileira de Pesquisa Agropecuária (EMBRAPA) 22, Empresa Brasileira de Pesquisa Agropecuária (EMBRAPA) 42 e IAC 370. O experimento foi conduzido sob irrigação por aspersão em dois anos (2005 e 2006) em área experimental pertencente à Faculdade de Engenharia de Ilha Solteira UNESP/São Paulo - Brasil. As fontes de nitrogênio sulfonitrato de amônio com inibidor de nitrificação, sulfato de amônio e uréia não diferiram entre si, porém foram superiores à testemunha, em relação à produtividade de grãos. A aplicação do N todo em cobertura proporcionou aumento na produtividade de grãos. O comportamento das cultivares quanto aos componentes de produção e produtividade foram dependentes do ano em estudo.

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O N é um nutriente de suma importância, tendo em vista sua dinâmica no solo e a exigência da cultura, todavia, em muitas situações, o solo é incapaz de suprir todo o requerimento de N das culturas, o que obriga o uso de fertilizantes para a obtenção de produtividade satisfatória. Desse modo, propôs-se este estudo com o objetivo de avaliar diferentes fontes e épocas de aplicação de N em trigo cultivado no sistema plantio direto. O delineamento experimental utilizado foi o de blocos ao acaso disposto em um esquema fatorial 2x6 com quatro repetições. Os tratamentos foram constituídos pela combinação de duas fontes de N: uréia e Entec e seis épocas de aplicação: testemunha (sem N); N na semeadura (S); N 15 dias após a emergência (DAE); N aos 30 DAE; 1/3 do N na S e 2/3 aos 15 DAE; e 1/3 do N na S e 2/3 aos 30 DAE. O experimento foi realizado na área experimental da UNESP - Campus de Ilha Solteira, localizada no município de Selvíria - MS, em solo anteriormente ocupado por vegetação de Cerrado. O N aplicado 30 dias após a emergência propiciou maior produtividade de grãos, entretanto não diferindo estatisticamente da aplicação com 1/3 do N na semeadura + 2/3 do N 30 dias após a emergência.