Xie Mingqi, Ye Haifeng, Hamri Ghislaine Charpin-El, Fussenegger Martin
Department of Biosystems Science and Engineering, ETH Zurich, Mattenstrasse 26, CH-4058 Basel, Switzerland.
Département Génie Biologique, Institut Universitaire de Technologie, F-69622 Villeurbanne Cedex, France.
Nucleic Acids Res. 2014 Aug;42(14):e116. doi: 10.1093/nar/gku545. Epub 2014 Jul 16.
Synthetic biology has significantly advanced the design of mammalian trigger-inducible transgene-control devices that are able to programme complex cellular behaviour. Fruit-based benzoate derivatives licensed as food additives, such as flavours (e.g. vanillate) and preservatives (e.g. benzoate), are a particularly attractive class of trigger compounds for orthogonal mammalian transgene control devices because of their innocuousness, physiological compatibility and simple oral administration. Capitalizing on the genetic componentry of the soil bacterium Comamonas testosteroni, which has evolved to catabolize a variety of aromatic compounds, we have designed different mammalian gene expression systems that could be induced and repressed by the food additives benzoate and vanillate. When implanting designer cells engineered for gene switch-driven expression of the human placental secreted alkaline phosphatase (SEAP) into mice, blood SEAP levels of treated animals directly correlated with a benzoate-enriched drinking programme. Additionally, the benzoate-/vanillate-responsive device was compatible with other transgene control systems and could be assembled into higher-order control networks providing expression dynamics reminiscent of a lap-timing stopwatch. Designer gene switches using licensed food additives as trigger compounds to achieve antagonistic dual-input expression profiles and provide novel control topologies and regulation dynamics may advance future gene- and cell-based therapies.
合成生物学极大地推动了哺乳动物触发诱导型转基因控制装置的设计,这类装置能够对复杂的细胞行为进行编程。作为食品添加剂获得许可的基于水果的苯甲酸盐衍生物,如调味剂(如香草酸盐)和防腐剂(如苯甲酸盐),因其无毒、生理相容性好且口服简便,是用于正交哺乳动物转基因控制装置的一类特别有吸引力的触发化合物。利用已进化到能分解多种芳香化合物的土壤细菌睾丸酮丛毛单胞菌的遗传元件,我们设计了不同的哺乳动物基因表达系统,这些系统可由食品添加剂苯甲酸盐和香草酸盐诱导和抑制。当将经过基因开关驱动人胎盘分泌性碱性磷酸酶(SEAP)表达工程改造的设计细胞植入小鼠体内时,经处理动物的血液SEAP水平与富含苯甲酸盐的饮水方案直接相关。此外,苯甲酸盐/香草酸盐响应装置与其他转基因控制系统兼容,可组装成高阶控制网络,提供类似于计时秒表的表达动态。使用获得许可的食品添加剂作为触发化合物来实现拮抗双输入表达谱并提供新型控制拓扑结构和调控动态的设计基因开关,可能会推动未来基于基因和细胞的治疗。