Peyret Hadrien, Brown James K M, Lomonossoff George P
1Department of Biological Chemistry, John Innes Centre, Norwich Research Park, Norwich, NR4 7UH UK.
2Department of Crop Genetics, John Innes Centre, Norwich Research Park, Norwich, NR4 7UH UK.
Plant Methods. 2019 Sep 18;15:108. doi: 10.1186/s13007-019-0494-9. eCollection 2019.
The growing field of plant molecular farming relies on expression vectors that allow high yields of recombinant proteins to be produced through transient gene expression. While numerous expression vectors currently exist for this purpose, there are very few examples of systematic efforts to improve upon these. Moreover, the current generation of expression systems makes use of naturally-occurring regulatory elements, typically selected from plant viruses, to maximise yields. This study aims to use rational design to generate synthetic sequences that can rival existing ones.
In this work, we present the rational design of novel synthetic 5' and 3' untranslated regions (UTRs) which can be used in various combinations to modulate accumulation levels of transiently-expressed recombinant proteins. Using the pEAQ- expression vector as a point of comparison, we show that pre-existing expression systems can be improved by the deployment of rationally designed synthetic UTRs. Notably, we show that a suite of short, synthetic 5'UTRs behave as expression enhancers that outperform the 5'UTR present in the CPMV- expression system. Furthermore, we confirm the critical role played by the 3'UTR of cowpea mosaic virus RNA-2 in the performance of the CPMV- system. Finally, we use the knowledge obtained from these results to develop novel expression vectors (named pHRE and pHREAC) that equal or outperform pEAQ- in terms of recombinant protein yield. These new vectors are also domesticated for the use of certain Type IIS restriction enzymes, which allows for quicker cloning and straightforward assessment of different combinations of UTRs.
We have shown that it is possible to rationally design a suite of expression modulators in the form of synthetic UTRs. We have created novel expression vectors that allow very high levels of recombinant protein expression in a transient expression context. This will have important consequences for future efforts to develop ever-better plant transient overexpression vectors for research or industrial applications.
植物分子农业这一不断发展的领域依赖于表达载体,这些载体能够通过瞬时基因表达实现重组蛋白的高产。虽然目前有许多用于此目的的表达载体,但对其进行改进的系统性努力却很少。此外,当前一代的表达系统利用天然存在的调控元件(通常从植物病毒中选择)来最大化产量。本研究旨在通过合理设计生成能与现有序列相媲美的合成序列。
在这项工作中,我们展示了新型合成5'和3'非翻译区(UTR)的合理设计,这些UTR可通过各种组合用于调节瞬时表达的重组蛋白的积累水平。以pEAQ - 表达载体作为比较对象,我们表明通过部署合理设计的合成UTR可以改进现有的表达系统。值得注意的是,我们发现一组短的合成5'UTR表现为表达增强子,其性能优于CPMV - 表达系统中的5'UTR。此外,我们证实了豇豆花叶病毒RNA - 2的3'UTR在CPMV - 系统性能中所起的关键作用。最后,我们利用从这些结果中获得的知识开发了新型表达载体(命名为pHRE和pHREAC),其在重组蛋白产量方面与pEAQ - 相当或更优。这些新载体还经过改造以便使用某些IIS型限制酶,这使得克隆更快,并且可以直接评估UTR的不同组合。
我们已经表明,可以以合成UTR的形式合理设计一套表达调节剂。我们创建了新型表达载体,其在瞬时表达环境中能够实现非常高水平的重组蛋白表达。这将对未来为研究或工业应用开发更好的植物瞬时过表达载体的努力产生重要影响。