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首页> 外文期刊>Molecular BioSystems >A red light-controlled synthetic gene expression switch for plant systems
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A red light-controlled synthetic gene expression switch for plant systems

机译:用于植物系统的红光控制合成基因表达开关

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摘要

On command control of gene expression in time and space is required for the comprehensive analysis of key plant cellular processes. Even though some chemical inducible systems showing satisfactory induction features have been developed, they are inherently limited in terms of spatiotemporal resolution and may be associated with toxic effects. We describe here the first synthetic light-inducible system for the targeted control of gene expression in plants. For this purpose, we applied an interdisciplinary synthetic biology approach comprising mammalian and plant cell systems to customize and optimize a split transcription factor based on the plant photoreceptor phytochrome B and one of its interacting factors (PIF6). Implementation of the system in transient assays in tobacco protoplasts resulted in strong (95-fold) induction in red light (660 nm) and could be instantaneously returned to the OFF state by subsequent illumination with far-red light (740 nm). Capitalizing on this toggle switch-like characteristic, we demonstrate that the system can be kept in the OFF state in the presence of 740 nm-supplemented white light, opening up perspectives for future application of the system in whole plants. Finally we demonstrate the system's applicability in basic research, by the light-controlled tuning of auxin signalling networks in N. tabacum protoplasts, as well as its biotechnological potential for the chemical-inducer free production of therapeutic proteins in the moss P. patens.
机译:对关键植物细胞过程的全面分析需要在时间和空间上控制基因表达。即使已经开发出一些显示出令人满意的诱导特征的化学诱导系统,但是它们在时空分辨率方面固有地受到限制,并且可能与毒性作用有关。我们在这里描述了第一个合成的光诱导系统,用于植物中基因表达的靶向控制。为此,我们应用了跨学科的合成生物学方法,该方法包括哺乳动物和植物细胞系统,以基于植物光感受器植物色素B及其相互作用因子之一(PIF6)定制和优化分裂转录因子。该系统在烟草原生质体的瞬时测定中的实施导致在红光(660 nm)中产生强(95倍)诱导,并且可以通过随后用远红光(740 nm)照射而立即返回到OFF状态。利用这种类似拨动开关的特性,我们证明了在存在740 nm补充白光的情况下,系统可以保持在OFF状态,从而为系统在整个工厂中的未来应用开辟了前景。最后,我们通过对烟草N. tabacum原生质体中生长素信号网络的光控调节,证明了该系统在基础研究中的适用性,以及其在苔藓假单胞菌中无化学诱导物产生治疗性蛋白质的生物技术潜力。

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  • 来源
    《Molecular BioSystems》 |2014年第7期|1679-1688|共10页
  • 作者单位

    Faculty of Biology, University of Freiburg, Schaenzlestrasse 1, 79104 Freiburg,Germany;

    Faculty of Biology, University of Freiburg, Schaenzlestrasse 1, 79104 Freiburg,Germany;

    Faculty of Biology, University of Freiburg, Schaenzlestrasse 1, 79104 Freiburg,Germany,SGBM-Spemann Graduate School of Biology and Medicine,University of Freiburg, Albertstrasse 19A, 79104 Freiburg, Germany;

    Faculty of Biology, University of Freiburg, Schaenzlestrasse 1, 79104 Freiburg,Germany;

    Faculty of Biology, University of Freiburg, Schaenzlestrasse 1, 79104 Freiburg,Germany,SGBM-Spemann Graduate School of Biology and Medicine,University of Freiburg, Albertstrasse 19A, 79104 Freiburg, Germany;

    Faculty of Biology, University of Freiburg, Schaenzlestrasse 1, 79104 Freiburg,Germany;

    Faculty of Biology, University of Freiburg, Schaenzlestrasse 1, 79104 Freiburg,Germany,SGBM-Spemann Graduate School of Biology and Medicine,University of Freiburg, Albertstrasse 19A, 79104 Freiburg, Germany,BIOSS Centre for Biological Signalling Studies, University of Freiburg,Schaenzlestrasse 18, 79104 Freiburg, Germany,Freiburg Institute for Advanced Studies (FRIAS), University of Freiburg,Albertstrasse 19, 79104 Freiburg, Germany;

    Faculty of Biology, University of Freiburg, Schaenzlestrasse 1, 79104 Freiburg,Germany,SGBM-Spemann Graduate School of Biology and Medicine,University of Freiburg, Albertstrasse 19A, 79104 Freiburg, Germany,BIOSS Centre for Biological Signalling Studies, University of Freiburg,Schaenzlestrasse 18, 79104 Freiburg, Germany,Freiburg Centre for Biosystems Analysis (ZBSA), University of Freiburg,Habsburgerstrasse 49, 79104 Freiburg, Germany;

    Faculty of Biology, University of Freiburg, Schaenzlestrasse 1, 79104 Freiburg,Germany,BIOSS Centre for Biological Signalling Studies, University of Freiburg,Schaenzlestrasse 18, 79104 Freiburg, Germany;

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