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miR397/Laccase Gene Mediated Network Improves Tolerance to Fenoxaprop-P-ethyl in Beckmannia syzigachne and Oryza sativa

机译:miR397 / Laccase基因介导的网络提高了对德国白菜和稻米中苯氧丙酸-P-乙基的耐受性

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摘要

Herbicide resistance can be either target-site or non-target-site based. The molecular mechanisms underlying non-target-site resistance (NTSR) are poorly understood, especially at the level of gene expression regulation. MicroRNAs (miRNAs) represent key post-transcriptional regulators of eukaryotic gene expression and play important roles in stress responses. In this study, the miR397 gene from Beckmannia syzigachne (referred to as bsy-miR397) was functionally characterized to determine its role in regulating fenoxaprop-P-ethyl resistance. We showed that (1) bsy-miR397 transcript level is constitutively higher in resistant than in sensitive B. syzigachne plants, whereas bsy-Laccase expression and activity show the opposite trend, and (2) bsy-miR397 suppresses the expression of bsy-Laccase in tobacco, indicating that it negatively regulates bsy-Laccase at the transcriptional level. We found evidences that miR397/laccase regulation might be involved in fenoxaprop-P-ethyl NTSR. First, the rice transgenic line overexpressing OXmiR397 showed improved fenoxaprop-P-ethyl tolerance. Second, following activation of bsy-Laccase gene expression by CuSO4 treatment, fenoxaprop resistance in B. syzigachne tended to decrease. Therefore, we suggest that bsy-miR397 might play a role in fenoxaprop-P-ethyl NTSR in B. syzigachne by down-regulating laccase expression, potentially leading to the enhanced expression of three oxidases/peroxidases genes to introduce an active moiety into herbicide molecules in Phase-2 metabolism. Bsy-miR397, bsy-Laccase, and other regulatory components might form a regulatory network to detoxify fenoxaprop-P-ethyl in B. syzigachne, supported by the differential expression of transcription factors and oxidases/peroxidases in the rice transgenic line overexpressing OXmiR397. This implies how down-regulation of a gene (laccase) can enhance NTSR. Our findings shed light on the daunting task of understanding and managing complex NTSR in weedy plant species.
机译:除草剂抗性可以基于目标位点,也可以基于非目标位点。对非靶位抗性(NTSR)的分子机制了解甚少,尤其是在基因表达调控的水平上。 MicroRNA(miRNA)代表了真核基因表达的关键转录后调节因子,并在应激反应中发挥重要作用。在这项研究中,来自贝克曼氏菌(Beckmannia syzigachne)的miR397基因(称为bsy-miR397)在功能上得到了表征,以确定其在调节非诺沙普-P-乙基抗性中的作用。我们表明(1)bsy-miR397转录水平在组成上比敏感的B.syzigachne植物高,而bsy-Laccase的表达和活性显示相反的趋势,(2)bsy-miR397抑制bsy-Laccase的表达。在烟草中的表达,表明它在转录水平上对bsy-Laccase具有负调控作用。我们发现有证据表明miR397 /漆酶调控可能与fenoxaprop-P-ethyl NTSR有关。首先,过表达OXmiR397的水稻转基因品系显示出改善的非诺沙丙-P-乙基耐受性。第二,在通过CuSO4处理激活bsy-Laccase基因表达后,sy.b.syzigachne中的fenoxaprop耐药性趋于下降。因此,我们建议bsy-miR397可能在 B中的fenoxaprop-P-ethyl NTSR中起作用。 syzigachne 可以通过下调漆酶的表达来潜在地导致三种氧化酶/过氧化物酶基因的表达增强,从而在第二阶段的代谢过程中将活性成分引入除草剂分子中。 Bsy-miR397 bsy-Laccase 和其他调节成分可能形成调节网络,以使 B中的非诺沙普- P -乙基解毒。 syzigachne ,在过表达OXmiR397的水稻转基因品系中转录因子和氧化酶/过氧化物酶的差异表达得到支持。这暗示着基因(漆酶)的下调可以增强NTSR。我们的发现揭示了了解和管理杂草植物物种中复杂的NTSR的艰巨任务。

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