815 resultados para Triticum


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We have utilised polymorphic chloroplast microsatellites to analyse cytoplasmic relationships between accessions in the genera Triticum and Aegilops. Sequencing of PCR products revealed point mutations and insertions/deletions in addition to the standard repeat length expansion/contraction which most likely represent ancient synapomorphies. Phylogenetic analyses revealed three distinct groups of accessions. One of these contained all the non-Aegilops speltoides S-type cytoplasm species, another comprised almost exclusively A, C, D, M, N, T and U cytoplasm-type accessions and the third contained the polyploid Triticum species and all the Ae. speltoides accessions, further confirming that Ae. speltoides or a closely related but now extinct species was the original B-genome donor of cultivated polyploid wheat. Successive decreases in levels of genetic diversity due to domestication were also observed. Finally, we highlight the importance of elucidating longer-term evolutionary processes operating at microsatellite repeat loci.

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In conventional milling, the aleurone layer is combined with the bran fraction. Studies indicate that the bran fraction of wheat contains the majority of the phytonutrients betaine and choline, with relatively minor concentrations in the refined flour. This present study suggests that the wheat aleurone layer (Triticum aestivum L. cv. Tiger) contains the greatest concentration of both betaine and choline (1553.44 and 209.80 mg/100 g of sample, respectively). The bran fraction contained 866.94 and 101.95 mg/100 g of sample of betaine and choline, respectively, while the flour fraction contained 23.30 mg/100 g of sample (betaine) and 28.0 mg/100 g of sample (choline). The betaine content for
the bran was lower, and the choline content was higher compared to previous studies, although it is known that there is large variation in betaine and choline contents between wheat cultivars. The ratio of betaine/choline in the aleurone fraction was approximately 7:1; in the bran, the ratio was approximately 8:1; and in the flour fraction, the ratio was approximately 1:1. The study further
emphasizes the superior phytonutrient composition of the aleurone layer.
INTRODUCTION
Wheat is a valuable source of betaine, choline (1, 2), B
vitamins, vitamin E, and a number of minerals, including iron,
zinc, magnesium, and phosphorus (3). Epidemiological studies
indicate that whole-grain consumption is protective against
several chronic diseases (4-12). It has not been fully elucidated
how whole-grain cereals or specific fractions (13) exert their
protective effect, but it is thought to be due to their content of
several nutrients associated with the reduced risk of disease.
Conventionally, whole grain is separated during milling into
bran, germ, and flour (14). The nutrient composition of these
fractions differ markedly; refined wheat flour contains approximately
50% less vitamins and minerals than whole-grain
flour (

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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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In this study we have investigated the uptake and distribution of arsenic (As) and phosphate (Pi) in roots, shoots, and grain of wheat grown in an uncontaminated soil irrigated with solutions containing As at three different concentrations (0.5, 1 and 2 mg l-1) and in the presence or in the absence of P fertilization. Arsenic in irrigation water reduced plants growth and decreased grain yield. When Pi was not added (P-), plants were more greatly impacted compared to the plus Pi (P+) treatments. The differences in mean biomass between P- and P+ treatments at the higher As concentrations demonstrated the role of Pi in preventing As toxicity and growth inhibition. Arsenic concentrations in root, shoot and grain increased with increasing As concentration in irrigation water. It appears that P fertilization minimizes the translocation of As to the shoots and grain whilst enhancing P status of plant. The observation that P fertilization minimises the translocation of arsenic to the shoots and grain is interesting and may be useful for certain regions of the world that has high levels of As in groundwater or soils. © 2008 Springer Science+Business Media B.V.

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Tesis (Maestría en Ciencias Especialista en Producción Agrícola) UANL

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Tesis (Maestría en Ciencias Especialidad en Producción Agrícola) UANL

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Somatic embryos were induced from scutellar callus of immature zygotic embryos of T aestivum cv. Chinese Spring. Observations on precociously germinating somatic embryos revealed that: (i) In the initial stages the coleoptile is split, exposes the shoot apex and forms a green trichomatous leafy structure. In the germinating zygotic embryo, the coleoptile is tubular, (ii) Unlike what has been inferred earlier the leafy structure is the coleoptile and not the scutellum, (iii) Bipolarity of the embryoid is established later when root develops at the basal end.

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Little is known about the diversity of wheat (Triticum spp.) in Oman. Results of a survey conducted in two remote mountain oases of northern Oman indicate that there exists considerable morphological variation within and among the five traditional landraces of wheat cultivated. Within two of the landraces grown on irrigated terraces, 2 sized between 2 and 100 m , two new botanical wheat varieties (Triticum aestivum var. baladseetense and var. maqtaense) were identified of which the agronomic properties, in particular tolerance to drought and heat, and the nutritional value require further investigation.

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Die vielfältigen Funktionen der sekundären Pflanzenstoffe sowohl im Organismus der Pflanze, als auch im Körper des Menschen bieten der Wissenschaft ein weites Betätigungsfeld. Die Carotinoide findet man in fast allen Plastiden der Pflanze und sie erfüllen dort Aufgaben in Form von Pigmenten, Antioxidantien, Hormonen und zählen außerdem zu den wichtigsten Bestandteilen des Photosyntheseapparates. Im menschlichen Organismus hingegen wirken sie als Provitamin A und in den Endverästelungen der Blutgefäße bei niedrigem Sauerstoffpartialdruck. Des Weiteren besitzen sie die Fähigkeiten freie Radikale unschädlich zu machen und wirken in vitro als Fänger von energiereichem Singulettsauerstoff. Die Polyphenole, die man zu der Stoffgruppe der Phenole zählt, befinden sich in den Randschichten von Obst, Gemüse, Getreide und anderen Samen. Ihnen obliegt die Aufgabe die darunter befindlichen Gewebe vor antioxidativem Verderb zu schützen. Im Körper des Menschen dagegen besitzen sie eine gerinnungshemmende Wirkung, schützen die Zellen vor Oxidation und üben Fähigkeiten aus, die Krebs vorbeugen können. Im Zuge dieser Literaturarbeit werden endogene und exogene Faktoren beschrieben, die auf Pflanzen allgemein und auf die Fokusprodukte Möhre (Daucus carota L.) und Weizen (Triticum aestivum L.) speziell einwirken. Die pflanzenphysiologische Herkunft und Bedeutung der sekundären Pflanzenstoffgruppen Carotinoide und Polyphenole wird dargestellt. Schließlich wird die vorhandene Literatur ausgewertet, die sich mit der Beeinflussung des Gehaltes der genannten sekundären Pflanzenstoffe in den gewählten Fokusprodukten durch exogene und endogene Faktoren beschäftigt. Die Beeinflussung des Polyphenolgehaltes in Möhre und des Carotinoid- und Polyphenolgehaltes in Weizen ist nur wenig untersucht. Dagegen ist die Beeinflussung des Carotinoidgehaltes in Möhren durch exogene und endogene Faktoren gut beschrieben. Der Faktor „Sorte“ spielt aufgrund der vorhandenen genetischen Anlagen (carotinoidreich / carotinoidarm) eine wesentliche Rolle bei der späteren Ausbildung des Carotinoidgehaltes in der Möhre. Die Reife der Möhre, die u.a. das Ergebnis des Einwirkens exogener Faktoren, wie Temperatur, Wuchsraum, verfügbare Wassermenge im Boden sowie der Niederschläge ist, beeinflusst maßgeblich den späteren Gehalt an Carotinoiden. Des Weiteren üben noch anbautechnische Maßnahmen (z.B. Düngung, Herbizidbehandlungen, Produktionstechnik) einen Einfluss auf den Carotinoidgehalt der Möhre aus. Der Phenolgehalt in Möhren wurde bisher ausschließlich auf Sortenebene verglichen. In einer Studie von Zhang & Hamauzu (2004) fand man heraus, dass der Phenol-Gehalt in den verschiedenen Geweben der Möhre von der Schale in Richtung Phloem und Xylem anstieg, während sich die antioxidantischen und radical scavening Aktivitäten auf gleiche Weise, wie der Phenol-Gehalt erhöhten und wiederum mit dem totalen Phenol-Gehalt korrelierten. Die phenolischen Extrakte verfügten über stärkere radical scavening Fähigkeiten, als die zum Vergleich herangezogenen Reinsubstanzen Chlorogensäure, Vitamin C und β-Carotin. Insgesamt wurde aufgrund dieser Studie vermutet, dass sich der höchste Gehalt an Phenolen in der Schale der Möhre befindet. Das geringe Vorliegen von Studien bezüglich des Carotinoid- und Phenolgehaltes in Weizen kann man darauf zurückführen, dass die sekundären Pflanzenstoffe im Vergleich zum Proteingehalt keine wesentliche Rolle als Qualitätsmerkmal beim Fokusprodukt Weizen spielen. Der Gehalt an Phenolen und Carotinoiden wurde bisher ausschließlich auf Sortenebene untersucht. Die Untersuchungen ergaben, dass der Gehalt an sekundären Pflanzenstoffen (Phenole, Tocopherole, Carotinoide) stark durch die Sorte beeinflusst wird.

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Emmer (Triticum dicoccon ) was collected recently in northern Oman. The material was analyzed morphologically and phenologically. It belongs to the Asiatic emmers (subsp. asiaticum) and not to the Ethiopian ones (subsp. abyssinicum), distributed in Ethiopia and Yemen, as originally expected. The determination of the material resulted in var. haussknechtianum and var. aeruginosum.

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One of the major factors contributing to the failure of new wheat varieties is seasonal variability in end-use quality. Consequently, it is important to produce varieties which are robust and stable over a range of environmental conditions. Recently developed sample preparation methods have allowed the application of FT-IR spectroscopic imaging methods to the analysis of wheat endosperm cell wall composition, allowing the spatial distribution of structural components to be determined without the limitations of conventional chemical analysis. The advantages of the methods, described in this paper, are that they determine the composition of endosperm cell walls in situ and with minimal modification during preparation. Two bread-making wheat cultivars, Spark and Rialto, were selected to determine the impact of environmental conditions on the cell-wall composition of the starchy endosperm of the developing and mature grain, focusing on the period of grain filling (starting at about 14 days after anthesis). Studies carried out over two successive seasons show that the structure of the arabinoxylans in the endosperm cell walls changes from a highly branched form to a less branched form. Furthermore, during development the rate of restructuring was faster when the plants were grown at higher temperature with restricted water availability from 14 days after anthesis with differences in the rate of restructuring occurring between the two cultivars.