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一种快速的体外方法,可翻转质粒中双 floxed 反向开放阅读框。

A rapid in vitro method to flip back the double-floxed inverted open reading frame in a plasmid.

机构信息

Department of Ophthalmology, Northwestern University Feinberg School of Medicine, 303 E Chicago Ave, Tarry 5-723, Chicago, IL, 60611, USA.

出版信息

BMC Biotechnol. 2018 Aug 31;18(1):52. doi: 10.1186/s12896-018-0462-x.

Abstract

BACKGROUND

The LoxP site based genetic switch, the FLEX, also known as DIO (Double-Floxed Inverted Open reading frame), was invented to turn on gene expression via Cre-mediated recombination. Since its first publication, numerous FLEX switch plasmids have been generated. These plasmids are designed to only work in combination with Cre. However on many occasions it is necessary to covert these FLEX plasmids back into constitutive expression plasmids so that they can also be used in non-Cre-expressing cells and in non-genetically modified animal models. Therefore developing a universal protocol for this purpose is useful as it could save a lot of valuable time and lab resources.

RESULT

Here we report a simple, quick, and cost-efficient protocol to invert the orientation of the open reading frame (ORF) within FLEX switch containing plasmids using commercial Cre recombinase. This protocol, requiring as little as 30 min and 50 ng of plasmid, has a cloning efficiency of 40-50%. To our surprise, single step recombination efficiency between the two mutant Lox2272 sites turned out very low. To understand this, we performed in vitro recombination assays. These assays revealed, significant impairment in recombination between Lox2272 sites as compared wild type LoxP sites in the FLEX plasmids.

CONCLUSION

We have presented an in vitro protocol to invert the ORF in FLEX based plasmids. This protocol is simple and highly efficient. Thus this method expends current molecular biology toolbox. We also demonstrate that the recombination between Lox2272 sites is much less efficient than wild type LoxP sites. This result has important implication for evaluating the efficacy of FLEX switch in biological systems and provides a rationale for future development of higher efficiency LoxP mutants.

摘要

背景

基于 LoxP 位点的遗传开关 FLEX,也称为 DIO(双 FLEX 倒置开放阅读框),是为了通过 Cre 介导的重组来开启基因表达而发明的。自首次发表以来,已经产生了许多 FLEX 开关质粒。这些质粒的设计仅与 Cre 一起使用。然而,在许多情况下,需要将这些 FLEX 质粒转换回组成型表达质粒,以便它们也可以用于非 Cre 表达的细胞和非基因修饰的动物模型中。因此,开发一种通用的方案是很有用的,因为它可以节省大量宝贵的时间和实验室资源。

结果

在这里,我们报告了一种简单、快速且具有成本效益的方案,使用商业 Cre 重组酶来反转 FLEX 开关中包含的质粒中的开放阅读框(ORF)的方向。该方案仅需 30 分钟和 50ng 的质粒,克隆效率为 40-50%。令我们惊讶的是,两个突变的 Lox2272 位点之间的单步重组效率非常低。为了了解这一点,我们进行了体外重组实验。这些实验表明,与野生型 LoxP 位点相比,FLEX 质粒中 Lox2272 位点之间的重组受到严重损害。

结论

我们提出了一种在 FLEX 质粒中反转 ORF 的体外方案。该方案简单高效。因此,这种方法扩展了当前的分子生物学工具包。我们还证明,Lox2272 位点之间的重组效率远低于野生型 LoxP 位点。这一结果对评估 FLEX 开关在生物系统中的效果具有重要意义,并为未来开发更高效率的 LoxP 突变体提供了依据。

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