Kuwayama Hisashi, Gotoh Hiroki, Konishi Yusuke, Nishikawa Hideto, Yaginuma Toshinobu, Niimi Teruyuki
Graduate School of Bioagricultural Sciences, Nagoya University, Chikusa, Nagoya, Japan.
Graduate School of Bioagricultural Sciences, Nagoya University, Chikusa, Nagoya, Japan; Department of Entomology, Washington State University, Pullman, Washington, United States of America.
PLoS One. 2014 Jun 24;9(6):e100804. doi: 10.1371/journal.pone.0100804. eCollection 2014.
In this post-genomic era, genome-wide functional analysis is indispensable. The recent development of RNA interference techniques has enabled researchers to easily analyze gene function even in non-model organisms. On the other hand, little progress has been made in the identification and functional analyses of cis-regulatory elements in non-model organisms. In order to develop experimental platform for identification and analyses of cis-regulatory elements in a non-model organism, in this case, the ladybird beetle, Harmonia axyridis, we established transgenic transposon-tagged lines using a novel composite vector. This vector enables the generation of two types of insertion products (jumpstarter and mutator). The jumpstarter portion carries a transposase gene, while the mutator segment carries a reporter gene for detecting enhancers. The full-composite element is flanked by functional termini (required for movement); however, the mutator region has an extra terminus making it possible for the mutator to remobilize on its own, thus leaving an immobile jumpstarter element behind. Each insertion type is stable on its own, but once crossed, jumpstarters can remobilize mutators. After crossing a jumpstarter and mutator line, all tested G2 females gave rise to at least one new insertion line in the next generation. This jumping rate is equivalent to the P-element-mediated jumpstarter method in Drosophila. These established transgenic lines will offer us the ideal experimental materials for the effective screening and identification of enhancers in this species. In addition, this jumpstarter method has the potential to be as effective in other non-model insect species and thus applicable to any organism.
在这个后基因组时代,全基因组功能分析不可或缺。RNA干扰技术的最新发展使研究人员即使在非模式生物中也能轻松分析基因功能。另一方面,在非模式生物顺式调控元件的鉴定和功能分析方面进展甚微。为了开发一个用于鉴定和分析非模式生物(在此为瓢虫,异色瓢虫)顺式调控元件的实验平台,我们使用一种新型复合载体建立了转基因转座子标签系。该载体能够产生两种类型的插入产物(启动子和诱变子)。启动子部分携带一个转座酶基因,而诱变子片段携带一个用于检测增强子的报告基因。完整的复合元件两侧是功能性末端(移动所需);然而,诱变子区域有一个额外的末端,使得诱变子能够自行重新移动,从而留下一个固定的启动子元件。每种插入类型本身都是稳定的,但一旦杂交,启动子可以使诱变子重新移动。在将启动子系和诱变子系杂交后,所有测试的G2代雌性在下一代中至少产生了一个新的插入系。这个跳跃率与果蝇中P元件介导的启动子方法相当。这些建立的转基因系将为我们提供理想的实验材料,用于有效筛选和鉴定该物种中的增强子。此外,这种启动子方法有可能在其他非模式昆虫物种中同样有效,因此适用于任何生物。