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通过 mariner Mos1 转座和 ΦC31 位点定向重组在埃及伊蚊中产生的转基因表达的比较。

Comparison of transgene expression in Aedes aegypti generated by mariner Mos1 transposition and ΦC31 site-directed recombination.

机构信息

Arthropod-borne and Infectious Diseases Laboratory, Department of Microbiology, Immunology, and Pathology, Colorado State University, Fort Collins, CO 80523, USA.

出版信息

Insect Mol Biol. 2011 Oct;20(5):587-98. doi: 10.1111/j.1365-2583.2011.01089.x. Epub 2011 Jun 24.

Abstract

Transgenic mosquitoes generated by transposable elements (TEs) often poorly express transgenes owing to position effects. To avoid these effects, the ΦC31 site-directed recombination system was used to insert transgenes into a locus favourable for gene expression in Aedes aegypti. We describe phenotypes of mariner Mos1 TE and ΦC31 transgenic mosquitoes expressing the enhanced green fluorescent protein (EGFP) reporter in midguts of blood-fed females. Mosquitoes of nine TE-generated lines [estimated transformation frequency (TF): 9.3%] clearly expressed the eye-specific selection marker but only 2/9 lines robustly expressed the EGFP reporter. The piggyBac TE-generated ΦC31 docking strain, attP26, supported recombination with attB site containing donors at an estimated TF of 1.7-4.9%. Using a codon-optimized ΦC31 integrase mutant instead of the 'wild-type' enzyme did not affect TF. Site-directed recombination of line attP26 with an attB-containing donor expressing EGFP from the Ae. aegypti carboxypeptidase promoter produced one transgenic line with blood-fed females expressing the reporter in midgut tissue. Docking strain attP26 also supported robust expression of Flock House virus B2 from the Ae. aegypti polyubiquitin promoter. Our data confirm that eye-specific selection marker expression alone is not a reliable indicator for robust gene-of-interest expression in Ae. aegypti and that the ΦC31 system can ensure predictable transgene expression in this mosquito species.

摘要

转座元件 (TEs) 产生的转基因蚊子由于位置效应往往不能很好地表达转基因。为了避免这些影响,使用 ΦC31 位点定向重组系统将转基因插入到 Aedes aegypti 中有利于基因表达的基因座。我们描述了转座酶 Mos1 TE 和 ΦC31 转基因蚊子在吸食血液的雌性中表达增强型绿色荧光蛋白 (EGFP) 报告基因的表型。九条 TE 产生的线[估计转化频率 (TF):9.3%]的蚊子清楚地表达了眼特异性选择标记,但只有 2/9 条线强烈表达 EGFP 报告基因。piggyBac TE 产生的 ΦC31 对接株 attP26 支持与 attB 位点含有供体的重组,估计 TF 为 1.7-4.9%。使用密码子优化的 ΦC31 整合酶突变体而不是“野生型”酶不会影响 TF。与含有 attB 的供体进行的定向重组 attP26 与表达来自埃及伊蚊羧肽酶启动子的 EGFP 的供体一起产生了一条具有转基因的线,在吸食血液的雌性中,报告基因在中肠组织中表达。对接株 attP26 还支持 Flock House 病毒 B2 从埃及伊蚊多泛素启动子的强烈表达。我们的数据证实,仅眼特异性选择标记的表达不能可靠地指示埃及伊蚊中感兴趣基因的强大表达,并且 ΦC31 系统可以确保在该蚊种中可预测的转基因表达。

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