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入侵农业害虫——樱桃实蝇的遗传工程改良。

Improvement on the genetic engineering of an invasive agricultural pest insect, the cherry vinegar fly, Drosophila suzukii.

机构信息

Department of Developmental Biology, Johann-Friedrich-Blumenbach-Institute of Zoology and Anthropology, Göttingen Center for Molecular Biosciences, Georg-August-University Göttingen, 37077, Göttingen, Germany.

Department of Crop Protection, Faculty of Agriculture-University of Khartoum, P.O. Box 32, 13314, Khartoum North, Khartoum, Sudan.

出版信息

BMC Genet. 2020 Dec 18;21(Suppl 2):139. doi: 10.1186/s12863-020-00940-5.

Abstract

BACKGROUND

The invasive fly Drosophila suzukii has become an established fruit pest in Europe, the USA, and South America with no effective and safe pest management. Genetic engineering enables the development of transgene-based novel genetic control strategies against insect pests and disease vectors. This, however, requires the establishment of reliable germline transformation techniques. Previous studies have shown that D. suzukii is amenable to transgenesis using the transposon-based vectors piggyBac and Minos, site-specific recombination (lox/Cre), and CRISPR/Cas9 genome editing.

RESULTS

We experienced differences in the usability of piggyBac-based germline transformation in different strains of D. suzukii: we obtained no transgenic lines in a US strain, a single rare transgenic line in an Italian strain, but observed a reliable transformation rate of 2.5 to 11% in a strain from the French Alps. This difference in efficiency was confirmed by comparative examination of these three strains. In addition, we used an attP landing site line to successfully established φC31-integrase-mediated plasmid integration at a rate of 10% and generated landing site lines with two attP sequences to effectively perform φC31-Recombinase Mediated Cassette Exchange (φC31-RMCE) with 11% efficiency. Moreover, we isolated and used the endogenous regulatory regions of Ds nanos to express φC31 integrase maternally to generate self-docking lines for φC31-RMCE. Besides, we isolated the promoter/enhancer of Ds serendipity α to drive the heterologous tetracycline-controlled transactivator (tTA) during early embryonic development and generated a testes-specific tTA driver line using the endogenous beta-2-tubulin (β2t) promoter/enhancer.

CONCLUSION

Our results provide evidence that the D. suzukii strain AM derived from the French Alps is more suitable for piggyBac germline transformation than other strains. We demonstrated the feasibility of using φC31-RMCE in the cherry vinegar fly and generated a set of lines that can be used for highly efficient integration of larger constructs. The φC31-based integration will facilitate modification and stabilization of previously generated transgenic lines that carry at least one attP site in the transgene construction. An early embryo-specific and a spermatogenesis-specific driver line were generated for future use of the binary expression system tet-off to engineer tissue- and stage-specific effector gene expression for genetic pest control strategies.

摘要

背景

入侵性果蝇 Drosophilazukii 已成为欧洲、美国和南美洲的一种固定的水果害虫,目前尚无有效的安全虫害管理方法。基因工程使基于转基因的新型遗传控制策略的开发成为可能,以对抗昆虫害虫和疾病载体。然而,这需要建立可靠的种系转化技术。以前的研究表明,Drosophilazukii 可以通过转座子为基础的载体 piggyBac 和 Minos、位点特异性重组(lox/Cre)和 CRISPR/Cas9 基因组编辑进行转基因。

结果

我们在不同的 Drosophilazukii 品系中发现了基于 piggyBac 的种系转化的可用性差异:我们在美国品系中没有获得转基因品系,在意大利品系中只有一个罕见的转基因品系,但在法国阿尔卑斯山的品系中观察到了可靠的转化率为 2.5%至 11%。通过对这三个品系的比较研究,证实了这种效率差异。此外,我们使用一个 attP 着陆位点系成功地实现了φC31-整合酶介导的质粒整合,效率为 10%,并生成了带有两个 attP 序列的着陆位点系,有效地进行了φC31-重组酶介导的盒交换(φC31-RMCE),效率为 11%。此外,我们分离并使用了 Dsnanos 的内源性调节区,使其在母系中表达φC31 整合酶,从而生成用于φC31-RMCE 的自对接系。此外,我们分离了 Ds serendipityα的启动子/增强子,以在早期胚胎发育过程中驱动异源四环素控制的转录激活剂(tTA),并使用内源性β-2-微管蛋白(β2t)启动子/增强子生成了一个睾丸特异性 tTA 驱动系。

结论

我们的结果表明,来源于法国阿尔卑斯山的 D. suzukii 菌株 AM 比其他菌株更适合 piggyBac 种系转化。我们证明了在樱桃醋蝇中使用φC31-RMCE 的可行性,并生成了一组可用于高效整合更大构建体的系。基于φC31 的整合将促进对至少携带一个 attP 位点的转基因构建体的先前生成的转基因系的修饰和稳定。生成了一个早期胚胎特异性和一个精子发生特异性的驱动系,以便将来使用二元表达系统 tet-off 来设计组织和阶段特异性效应基因表达,以用于遗传害虫控制策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2283/7747376/7480d0bd53aa/12863_2020_940_Fig1_HTML.jpg

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