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Physiological, biochemical and molecular characterization of an induced mutation conferring imidazolinone resistance in wheat

机译:小麦赋予咪唑啉酮抗性的诱导突变的生理,生化和分子表征

摘要

The Clearfield® wheat cultivars possessing imidazolinone (IMI)-resistant traits provide an efficient option for controlling weeds. The imazamox-resistant cultivar Pantera (Clearfield®) was compared with a susceptible cultivar (Gazul). Target and non-target mechanisms of resistance were studied to characterize the resistance of Pantera and to identify the importance of each mechanism involved in this resistance. Pantera is resistant to imazamox as was determined in previous experiments. The molecular study confirmed that it carries a mutation Ser-Asn627 conferring resistance to imazamox in two out of three acetolactate synthase (ALS) genes (imi1 and imi2), located in wheat on chromosomes 6B and 6D, respectively. However, the last gene (imi3) located on chromosome 6A does not carry any mutation conferring resistance. As a result, photosynthetic activity and chlorophyll content were reduced after imazamox treatment. Detoxification was higher in the resistant biotype as shown by metabolomic study while imazamox translocation was higher in the susceptible cultivar. Interestingly, imazamox metabolism was higher at higher doses of herbicide, which suggests that the detoxification process is an inducible mechanism in which the upregulation of key gene coding for detoxification enzymes could play an important role. Thus, the identification of cultivars with a higher detoxification potential would allow the development of more resistant varieties.
机译:具有咪唑啉酮(IMI)抗性的Clearfield®小麦品种为控制杂草提供了有效的选择。将对耐Imoxamox的品种Pantera(Clearfield?)与易感品种(Gazul)进行了比较。研究了抗药性的靶标和非靶标机制,以表征Pantera的抗药性,并确定参与该抗药性的每种机制的重要性。如先前实验中所确定的,Pantera对Imazamox具有抗性。分子研究证实,该突变体带有Ser-Asn627突变,赋予小麦中6个染色体6B和6D上的三个乙酰乳酸合酶(ALS)基因(imi1和imi2)中的两个基因赋予的对Imazamox的抗性。但是,位于6A号染色体上的最后一个基因(imi3)没有携带任何赋予抗性的突变。结果,在用Imaxamox处理后光合活性和叶绿素含量降低。代谢组学研究显示,抗性生物型的排毒率较高,而易感品种的玉米毒菌易位性较高。有趣的是,在高剂量的除草剂下,Izamox的代谢较高,这表明解毒过程是一种诱导机制,其中编码解毒酶的关键基因的上调可能起重要作用。因此,鉴定具有较高解毒潜能的品种将允许开发更具抗性的品种。

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