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重新设计多克隆位点以实现功能和便利。

Re-engineering multicloning sites for function and convenience.

机构信息

Department of Chemical Engineering, The University of Texas at Austin, 1 University Station, C0400 Austin, TX 78712, USA.

出版信息

Nucleic Acids Res. 2011 Aug;39(14):e92. doi: 10.1093/nar/gkr346. Epub 2011 May 17.

Abstract

Multicloning sites (MCSs) in standard expression vectors are widely used and thought to be benign, non-interacting elements that exist for mere convenience. However, MCSs impose a necessary distance between promoter elements and genes of interest. As a result, the choice of cloning site defines the genetic context and may introduce significant mRNA secondary structure in the 5'-untranslated region leading to strong translation inhibition. Here, we demonstrate the first performance-based assessment of MCSs in yeast, showing that commonly used MCSs can induce dramatic reductions in protein expression, and that this inhibition is highly promoter and gene dependent. In response, we develop and apply a novel predictive model of structure-based translation inhibition to design improved MCSs for significantly higher and more consistent protein expression. In doing so, we were able to minimize the inhibitory effects of MCSs with the yeast TEF, CYC and GPD promoters. These results highlight the non-interchangeable nature of biological parts and represent the first complete, global redesign of a genetic circuit of such widespread importance as a multicloning site. The improved translational control offered by these designed MCSs is paramount to obtaining high titers of heterologous proteins in eukaryotes and to enabling precise control of genetic circuits.

摘要

多克隆位点(MCS)广泛应用于标准表达载体中,被认为是良性的、非相互作用的元件,仅为方便而存在。然而,MCS 在启动子元件和感兴趣的基因之间施加了必要的距离。因此,克隆位点的选择决定了遗传背景,并可能在 5'非翻译区引入显著的 mRNA 二级结构,导致强烈的翻译抑制。在这里,我们首次在酵母中对 MCS 进行了基于性能的评估,表明常用的 MCS 可显著降低蛋白质表达,并且这种抑制作用高度依赖于启动子和基因。作为回应,我们开发并应用了一种新的基于结构的翻译抑制预测模型,以设计改进的 MCS,从而实现更高和更一致的蛋白质表达。通过这样做,我们能够最小化酵母 TEF、CYC 和 GPD 启动子的 MCS 的抑制作用。这些结果强调了生物部件的不可互换性,并代表了第一个对如此广泛应用的多克隆位点进行完整的、全局重新设计的遗传电路。这些设计的 MCS 提供的改进的翻译控制对于在真核生物中获得高浓度的异源蛋白质以及实现遗传电路的精确控制至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0be0/3152365/af0a38d52cc4/gkr346f1.jpg

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