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Rapid and Efficient Estimation of Pea Resistance to the Soil-Borne Pathogen Fusarium oxysporum by Infrared Imaging

机译:通过红外成像快速有效地估计豌豆对土壤致病性尖孢镰刀菌的抗性

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摘要

Fusarium wilts are widespread diseases affecting most agricultural crops. In absence of efficient alternatives, sowing resistant cultivars is the preferred approach to control this disease. However, actual resistance sources are often overcome by new pathogenic races, forcing breeders to continuously search for novel resistance sources. Selection of resistant accessions, mainly based on the evaluation of symptoms at timely intervals, is highly time-consuming. Thus, we tested the potential of an infra-red imaging system in plant breeding to speed up this process. For this, we monitored the changes in surface leaf temperature upon infection by F. oxysporum f. sp. pisi in several pea accessions with contrasting response to Fusarium wilt under a controlled environment. Using a portable infra-red imaging system we detected a significant temperature increase of at least 0.5 °C after 10 days post-inoculation in the susceptible accessions, while the resistant accession temperature remained at control level. The increase in leaf temperature at 10 days post-inoculation was positively correlated with the AUDPC calculated over a 30 days period. Thus, this approach allowed the early discrimination between resistant and susceptible accessions. As such, applying infra-red imaging system in breeding for Fusarium wilt resistance would contribute to considerably shorten the process of selection of novel resistant sources.
机译:枯萎病是影响大多数农作物的广泛疾病。在没有有效的替代品的情况下,播种抗性品种是控制该病的首选方法。但是,新的病原体往往会克服实际的抗药性,迫使育种者不断寻找新的抗药性。主要基于及时评估症状来选择抗性种质非常耗时。因此,我们测试了红外成像系统在植物育种中的潜力,以加快该过程。为此,我们监测了F. oxysporum f。感染后表面叶温度的变化。 sp。在可控环境下,几种豌豆品种中的豌豆对枯萎病的响应不同。使用便携式红外成像系统,我们在易感种质接种后10天检测到至少0.5°C的显着温度升高,而抗性种质温度保持在对照水平。接种后10天的叶片温度升高与30天的AUDPC呈正相关。因此,这种方法可以早期区分抗性和易感种质。因此,将红外成像系统应用于枯萎病抗性育种将有助于大大缩短新型抗性来源的选择过程。

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