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Selection of biochemical characters in the breeding for pest and disease resistance: A method based on analogy analysis of chromatographic separation patterns for emitted plant substances

机译:病虫害抗性育种中生化特性的选择:一种基于类比分析法分析排放植物物质的方法

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Chromatographic separation patterns of emitted substances are proposed to be used as fingerprints of the defence chemistry in plants. The goal is to recognize the patterns of resistance agents in the chromatograms and to use these patterns for guidance in resistance breeding. This can be done by comparing a reference set of resistant plants with a reference set of nonresistant plants. One problem is the great number of data. A capillary gas chromatogram from a wounded leaf, e.g., may contain more than a hundred component peaks. Such multidimensional comparisons can only be made by a computer. The literature has been searched for computer programs suited for this purpose. The Statistical Isolinear Multiple Component Analysis method (SIMCA) is found to be best suited. It is theoretically estimated that the processing of chromatographic data by the SIMCA-method can enable the resistance breeder to classify unknown plants as resistant or nonresistant; to discern nonrelevant peaks in the chromatograms; to grade the importance of the resistance variables; and to predict the optimal levels for the different resistance agents. The results indicate that capillary gas chromatography and high pressure liquid chromatography can be adapted to handle the great number of samples needed in a breeding program. These methods together cover the molecular range of importance for resistance.
机译:建议将排放物质的色谱分离模式用作植物防御化学的指纹。目的是识别色谱图中的抗药性模式,并将这些模式用于抗性育种的指导。这可以通过将抗性植物的参考集与非抗性植物的参考集进行比较来完成。一个问题是大量数据。来自受伤叶子的毛细管气相色谱图可能包含100多个组分峰。这样的多维比较只能由计算机进行。已在文献中搜索了适合此目的的计算机程序。统计等线性多分量分析方法(SIMCA)被发现是最合适的。从理论上估计,通过SIMCA方法处理色谱数据可以使抗性育种者将未知植物分类为抗性或非抗性。识别色谱图中无关峰;评估阻力变量的重要性;并预测不同抵抗剂的最佳水平。结果表明,毛细管气相色谱法和高压液相色谱法可适合处理繁育程序中所需的大量样品。这些方法共同涵盖了重要的抗药性分子范围。

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