Feedstocks Division, Joint BioEnergy Institute, Emeryville, CA, USA.
Department of Plant and Microbial Biology, University of California, Berkeley, Berkeley, CA, USA.
Nat Chem Biol. 2020 Aug;16(8):857-865. doi: 10.1038/s41589-020-0547-4. Epub 2020 May 18.
Agricultural biotechnology strategies often require the precise regulation of multiple genes to effectively modify complex plant traits. However, most efforts are hindered by a lack of characterized tools that allow for reliable and targeted expression of transgenes. We have successfully engineered a library of synthetic transcriptional regulators that modulate expression strength in planta. By leveraging orthogonal regulatory systems from Saccharomyces spp., we have developed a strategy for the design of synthetic activators, synthetic repressors, and synthetic promoters and have validated their use in Nicotiana benthamiana and Arabidopsis thaliana. This characterization of contributing genetic elements that dictate gene expression represents a foundation for the rational design of refined synthetic regulators. Our findings demonstrate that these tools provide variation in transcriptional output while enabling the concerted expression of multiple genes in a tissue-specific and environmentally responsive manner, providing a basis for generating complex genetic circuits that process endogenous and environmental stimuli.
农业生物技术策略通常需要精确调控多个基因,以有效修饰复杂的植物性状。然而,大多数努力都受到缺乏可靠和靶向表达转基因的特征工具的阻碍。我们已经成功地构建了一个合成转录调节剂文库,这些调节剂可以在植物体内调节表达强度。通过利用酿酒酵母属的正交调控系统,我们开发了一种用于设计合成激活子、合成抑制剂和合成启动子的策略,并在黄花烟和拟南芥中验证了它们的用途。这些决定基因表达的遗传元件的特性描述为合理设计精细合成调节剂奠定了基础。我们的研究结果表明,这些工具在提供转录输出变异性的同时,还能够以组织特异性和环境响应的方式协调表达多个基因,为生成处理内源性和环境刺激的复杂遗传电路提供了基础。