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Effects of Temperature Stresses on the Resistance of Chickpea Genotypes and Aggressiveness of Didymella rabiei Isolates

机译:温度胁迫对鹰嘴豆基因型和狂犬病菌株侵略性的影响。

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摘要

Chickpea (Cicer arietinum L.) is an important food and rotation crop in many parts of the world. Cold (freezing and chilling temperatures) and Ascochyta blight (Didymella rabiei) are the major constraints in chickpea production. The effects of temperature stresses on chickpea susceptibility and pathogen aggressiveness are not well documented in the Cicer-Didymella pathosystem. Two experiments were conducted under controlled conditions using chickpea genotypes and pathogen isolates in 2011 and 2012. In Experiment 1, four isolates of D. rabiei (AR-01, AR-02, AR-03 and AR-04), six chickpea genotypes (Ghab-1, Ghab-2, Ghab-3, Ghab-4, Ghab-5 and ICC-12004) and four temperature regimes (10, 15, 20, and 25°C) were studied using 10 day-old seedlings. In Experiment 2, three chickpea genotypes (Ghab-1, Ghab-2, and ICC-12004) were exposed to 5 and 10 days of chilling temperature exposure at 5°C and non-exposed seedlings were used as controls. Seedlings of the three chickpea genotypes were inoculated with the four pathogen isolates used in Experiment 1. Three disease parameters (incubation period, latent period and disease severity) were measured to evaluate treatment effects. In Experiment 1, highly significant interactions between genotypes and isolates; genotypes and temperature; and isolate and temperature were observed for incubation and latent periods. Genotype x isolate and temperature x isolate interactions also significantly affected disease severity. The resistant genotype ICC-12004 showed long incubation and latent periods and low disease severity at all temperatures. The highly aggressive isolate AR-04 caused symptoms, produced pycnidia in short duration as well as high disease severity across temperature regimes, which indicated it is adapted to a wide range of temperatures. Short incubation and latent periods and high disease severity were observed on genotypes exposed to chilling temperature. Our findings showed that the significant interactions of genotypes and isolates with temperature did not cause changes in the rank orders of the resistance of chickpea genotypes and aggressiveness of pathogen isolates. Moreover, chilling temperature predisposed chickpea genotypes to D. rabiei infection; developing multiple stress resistance is thus a pre-requisite for the expansion of winter-sown chickpea in West Asia and North Africa.
机译:鹰嘴豆(Cicer arietinum L.)是世界许多地区重要的粮食和轮作作物。寒冷(冷冻和低温温度)和枯萎病(Didymella rabiei)是鹰嘴豆生产的主要限制因素。温度应激对鹰嘴豆易感性和病原体侵略性的影响在Cicer-Didymella病理系统中没有得到充分的记录。在2011年和2012年,在受控条件下使用鹰嘴豆基因型和病原体分离物进行了两个实验。在实验1中,狂犬病D.狂犬病的四个分离物(AR-01,AR-02,AR-03和AR-04),六个鹰嘴豆基因型(使用10天大的幼苗研究了Ghab-1,Ghab-2,Ghab-3,Ghab-4,Ghab-5和ICC-12004)和四种温度模式(10、15、20和25°C)。在实验2中,将三种鹰嘴豆基因型(Ghab-1,Ghab-2和ICC-12004)暴露于5°C下5和10天的低温下暴露,未暴露的幼苗用作对照。对三种鹰嘴豆基因型的幼苗接种实验1中使用的四种病原体。测量了三种疾病参数(潜伏期,潜伏期和疾病严重程度)以评估治疗效果。在实验1中,基因型和分离株之间的相互作用非常显着;基因型和温度;观察分离物和温度的潜伏期和潜伏期。基因型x分离株和温度x分离株的相互作用也显着影响疾病的严重程度。抗药性ICC-12004基因型在所有温度下均具有较长的潜伏期和潜伏期,且疾病严重程度较低。高度侵袭性的分离物AR-04引起症状,在较短的时间内会产生孢子虫,并且在整个温度范围内都具有很高的疾病严重性,这表明它可以适应多种温度。在暴露于低温的基因型上,观察到潜伏期短,潜伏期长,疾病严重度高。我们的发现表明,基因型和分离株与温度之间的显着相互作用不会引起鹰嘴豆基因型的抗性和病原分离株的侵袭性的等级变化。而且,低温使鹰嘴豆基因型容易感染狂犬病。因此,发展多重抗逆性是在西亚和北非扩大冬季播种鹰嘴豆的先决条件。

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