首页> 美国卫生研究院文献>Frontiers in Physiology >Study on the Effect of Wing Bud Chitin Metabolism and Its Developmental Network Genes in the Brown Planthopper Nilaparvata lugens by Knockdown of TRE Gene
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Study on the Effect of Wing Bud Chitin Metabolism and Its Developmental Network Genes in the Brown Planthopper Nilaparvata lugens by Knockdown of TRE Gene

机译:通过敲除TRE基因研究褐飞虱Nilparvata lugens中翼芽甲壳质的代谢及其发育网络基因的作用

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摘要

The brown planthopper, Nilaparvata lugens is one of the most serious pests of rice, and there is so far no effective way to manage this pest. However, RNA interference not only can be used to study gene function, but also provide potential opportunities for novel pest management. The development of wing plays a key role in insect physiological activities and mainly involves chitin. Hence, the regulating role of trehalase (TRE) genes on wing bud formation has been studied by RNAi. In this paper, the activity levels of TRE and the contents of the two sugars trehalose and glucose were negatively correlated indicating the potential role of TRE in the molting process. In addition, NlTRE1-1 and NlTRE2 were expressed at higher levels in wing bud tissue than in other tissues, and abnormal molting and wing deformity or curling were noted 48 h after the insect was injected with any double-stranded TRE (dsTRE), even though different TREs have compensatory functions. The expression levels of NlCHS1b, NlCht1, NlCht2, NlCht6, NlCht7, NlCht8, NlCht10, NlIDGF, and NlENGase decreased significantly 48 h after the insect was injected with a mixture of three kinds of dsTREs. Similarly, the TRE inhibitor validamycin can inhibit NlCHS1 and NlCht gene expression. However, the wing deformity was the result of the NlIDGF, NlENGase, NlAP, and NlTSH genes being inhibited when a single dsTRE was injected. These results demonstrate that silencing of TRE gene expression can lead to wing deformities due to the down-regulation of the AP and TSH genes involved in wing development and that the TRE inhibitor validamycin can co-regulate chitin metabolism and the expression of wing development-related genes in wing bud tissue. The results provide a new approach for the prevention and management of N. lugens.
机译:褐飞虱Nilaparvata lugens是水稻中最严重的害虫之一,到目前为止,尚无有效的方法来处理这种害虫。然而,RNA干扰不仅可以用于研究基因功能,而且还为新型有害生物管理提供了潜在的机会。机翼的发育在昆虫的生理活动中起关键作用,主要涉及几丁质。因此,RNAi已研究了海藻糖酶(TRE)基因对翼芽形成的调控作用。本文中,TRE的活性水平与两种糖类海藻糖和葡萄糖的含量呈负相关,表明TRE在蜕皮过程中的潜在作用。此外,在昆虫芽中注射双链TRE(dsTRE)48小时后,在翼芽组织中NlTRE1-1和NlTRE2的表达水平高于其他组织,并且观察到异常蜕皮和翅膀畸变或卷曲。尽管不同的TRE具有补偿功能。在昆虫中注射了三种dsTRE的混合物后48小时,NlCHS1b,NlCht1,NlCht2,NlCht6,NlCht7,NlCht8,NlCht10,NlIDGF和NlENGase的表达水平显着下降。类似地,TRE抑制剂有效霉素可以抑制NlCHS1和NlCht基因表达。然而,机翼畸形是注射单个dsTRE时NlIDGF,NlENGase,NlAP和NlTSH基因被抑制的结果。这些结果表明,TRE基因表达的沉默可由于机翼发育中涉及的AP和TSH基因的下调而导致机翼畸形,并且TRE抑制剂有效霉素可共同调节甲壳质的代谢以及与机翼发育相关的表达翼芽组织中的基因。结果提供了一种新的预防和管理光合作用的方法。

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