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  • Chemistry  (2)
  • 374-U1524; Antarctica; Barium; Barium, limit of detection; Barium, standard deviation; Beryllium; Beryllium, limit of detection; Beryllium, standard deviation; Caesium; Caesium, limit of detection; Caesium, standard deviation; Calcium; Calcium, limit of detection; Calcium, standard deviation; Cerium; Cerium, limit of detection; Cerium, standard deviation; COMPCORE; Composite Core; Copper; Copper, limit of detection; Copper, standard deviation; DATE/TIME; Depth, bottom/max; Depth, top/min; Dysprosium; Dysprosium, limit of detection; Dysprosium, standard deviation; Erbium; Erbium, limit of detection; Erbium, standard deviation; Europium; Europium, limit of detection; Europium, standard deviation; Exp374; Expedition 374; Gadolinium; Gadolinium, limit of detection; Gadolinium, standard deviation; Gallium; Gallium, limit of detection; Gallium, standard deviation; Hafnium; Hafnium, limit of detection; Hafnium, standard deviation; Holmium; Holmium, limit of detection; Holmium, standard deviation; Integrated Ocean Drilling Program / International Ocean Discovery Program; International Ocean Discovery Program (IODP); IODP; Joides Resolution; LA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer; Lanthanum; Lanthanum, limit of detection; Lanthanum, standard deviation; Lead; Lead, limit of detection; Lead, standard deviation; Lithium; Lithium, limit of detection; Lithium, standard deviation; Lutetium; Lutetium, limit of detection; Lutetium, standard deviation; Manganese; Manganese, limit of detection; Manganese, standard deviation; Neodymium; Neodymium, limit of detection; Neodymium, standard deviation; Niobium; Niobium, limit of detection; Niobium, standard deviation; Praseodymium; Praseodymium, limit of detection; Praseodymium, standard deviation; Ross Sea; Rubidium; Rubidium, limit of detection; Rubidium, standard deviation; Samarium; Samarium, limit of detection; Samarium, standard deviation; Sample code/label; Scandium; Scandium, limit of detection; Scandium, standard deviation; Size; Strontium; Strontium, limit of detection; Strontium, standard deviation; Tantalum; Tantalum, limit of detection; Tantalum, standard deviation; Tephra; tephrochronology; Terbium; Terbium, limit of detection; Terbium, standard deviation; Thorium; Thorium, limit of detection; Thorium, standard deviation; Thulium; Thulium, limit of detection; Thulium, standard deviation; Titanium; Titanium, limit of detection; Titanium, standard deviation; Uranium; Uranium, limit of detection; Uranium, standard deviation; Ytterbium; Ytterbium, limit of detection; Ytterbium, standard deviation; Yttrium; Yttrium, limit of detection; Yttrium, standard deviation; Zirconium; Zirconium, limit of detection; Zirconium, standard deviation  (1)
  • Manganese efficiency
Collection
Keywords
Publisher
Years
  • 1
    Electronic Resource
    Electronic Resource
    Springer
    Theoretical and applied genetics 101 (2000), S. 1100-1108 
    ISSN: 1432-2242
    Keywords: Key words Barley ; Manganese efficiency ; RFLP mapping ; Marker-assisted Selection ; Plant nutrition ; 4HS
    Source: Springer Online Journal Archives 1860-2000
    Topics: Biology
    Notes: Abstract  In many cropping regions of the world, yield is limited by the availability of micronutrients, and micronutrient-efficient cultivars provide a yield advantage. Traditional methods of testing cultivars for micronutrient efficiency are time-consuming and laborious. Molecular markers linked to loci controlling micronutrient efficiency will allow more rapid and efficient selection and introgression of these traits than is currently possible. Using a pot-based bioassay and bulked segregant analysis of an F2 population, we have identified several RFLPs (grouped distally on chromosome 4HS) linked to a locus for manganese efficiency in barley. This manganese efficiency locus has been designated Mel1. Pot bioassay analysis of intercrosses suggests that three useful sources of manganese efficiency are likely to be allelic at the Mel1 locus. Field evaluation of marker selected F4 progeny supports the major role of Mel1 in the genetic control of manganese efficiency. Adoption of marker assisted selection for this trait in the Southern Australian barley breeding program has occurred. This has been facilitated by the demonstration that the Mel1 allele of Amagi Nijo can be distinguished from 95 other locally useful varieties and breeder’s lines on the basis of RFLPs identified by just two molecular markers.
    Type of Medium: Electronic Resource
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  • 2
    ISSN: 1052-9306
    Keywords: Chemistry ; Analytical Chemistry and Spectroscopy
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Chemistry and Pharmacology
    Notes: Instrumental parameters and possible correction procedures for hydrogen-transfer phenomena are studied, with emphasis on the improvement of quantitative measurements in selected ion monitoring mass spectrometry. The intensity ratio of the m/z 387 and 386 ions, derived from cholesterol, are measured by an HP-5995 mass spectrometer using different parameters, including calibration peak width, mass filter window size and ion monitoring dwell time. The intrinsic ratio of these two ions is calculated with a correction procedure accounting for the [M—H]+ and [M—2H]+ hydrogen-transfer phenomena.
    Additional Material: 2 Ill.
    Type of Medium: Electronic Resource
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  • 3
    Electronic Resource
    Electronic Resource
    New York, NY [u.a.] : Wiley-Blackwell
    Biotechnology and Bioengineering 27 (1985), S. 1717-1720 
    ISSN: 0006-3592
    Keywords: Chemistry ; Biochemistry and Biotechnology
    Source: Wiley InterScience Backfile Collection 1832-2000
    Topics: Biology , Process Engineering, Biotechnology, Nutrition Technology
    Notes: The chromogenic tripeptide substrate, benzyloxycarbonylglycyl-L-prolyl-L-citrulline p-nitroanilide, is proposed for the assay of the high-alkaline proteinase, HAP-PB92, from an alkalophilic Bacillus. The assay method is sensitive, reproducible, and may be adapted for an automatic system.
    Additional Material: 1 Ill.
    Type of Medium: Electronic Resource
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  • 4
    Publication Date: 2023-07-10
    Keywords: 374-U1524; Antarctica; Barium; Barium, limit of detection; Barium, standard deviation; Beryllium; Beryllium, limit of detection; Beryllium, standard deviation; Caesium; Caesium, limit of detection; Caesium, standard deviation; Calcium; Calcium, limit of detection; Calcium, standard deviation; Cerium; Cerium, limit of detection; Cerium, standard deviation; COMPCORE; Composite Core; Copper; Copper, limit of detection; Copper, standard deviation; DATE/TIME; Depth, bottom/max; Depth, top/min; Dysprosium; Dysprosium, limit of detection; Dysprosium, standard deviation; Erbium; Erbium, limit of detection; Erbium, standard deviation; Europium; Europium, limit of detection; Europium, standard deviation; Exp374; Expedition 374; Gadolinium; Gadolinium, limit of detection; Gadolinium, standard deviation; Gallium; Gallium, limit of detection; Gallium, standard deviation; Hafnium; Hafnium, limit of detection; Hafnium, standard deviation; Holmium; Holmium, limit of detection; Holmium, standard deviation; Integrated Ocean Drilling Program / International Ocean Discovery Program; International Ocean Discovery Program (IODP); IODP; Joides Resolution; LA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer; Lanthanum; Lanthanum, limit of detection; Lanthanum, standard deviation; Lead; Lead, limit of detection; Lead, standard deviation; Lithium; Lithium, limit of detection; Lithium, standard deviation; Lutetium; Lutetium, limit of detection; Lutetium, standard deviation; Manganese; Manganese, limit of detection; Manganese, standard deviation; Neodymium; Neodymium, limit of detection; Neodymium, standard deviation; Niobium; Niobium, limit of detection; Niobium, standard deviation; Praseodymium; Praseodymium, limit of detection; Praseodymium, standard deviation; Ross Sea; Rubidium; Rubidium, limit of detection; Rubidium, standard deviation; Samarium; Samarium, limit of detection; Samarium, standard deviation; Sample code/label; Scandium; Scandium, limit of detection; Scandium, standard deviation; Size; Strontium; Strontium, limit of detection; Strontium, standard deviation; Tantalum; Tantalum, limit of detection; Tantalum, standard deviation; Tephra; tephrochronology; Terbium; Terbium, limit of detection; Terbium, standard deviation; Thorium; Thorium, limit of detection; Thorium, standard deviation; Thulium; Thulium, limit of detection; Thulium, standard deviation; Titanium; Titanium, limit of detection; Titanium, standard deviation; Uranium; Uranium, limit of detection; Uranium, standard deviation; Ytterbium; Ytterbium, limit of detection; Ytterbium, standard deviation; Yttrium; Yttrium, limit of detection; Yttrium, standard deviation; Zirconium; Zirconium, limit of detection; Zirconium, standard deviation
    Type: Dataset
    Format: text/tab-separated-values, 856 data points
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