Pang Xueqing, Zhu Jingyuan, Li Yuqing, Xiao Jing, Zhang Xinyu, Ren Depeng, Zhou Pingping
College of Bioscience and Biotechnology, Yangzhou University, Yangzhou, 225009, PR China.
Synth Syst Biotechnol. 2025 Jul 22;10(4):1284-1293. doi: 10.1016/j.synbio.2025.07.007. eCollection 2025 Dec.
Developing biosensors to monitor and regulate intracellular biosynthesis pathways can significantly enhance natural product yields in microbial cell factories. This study created a novel biosensor in to respond to -coumaric acid, a critical precursor in the biosynthesis of polyphenols and flavonoids. This biosensor was constructed by expressing the BsPadR repressor from and engineering hybrid promoters. Notably, the P hybrid promoter exhibited tight regulation by BsPadR and enhanced activity in response to -coumaric acid. However, excessive BsPadR expression negatively impacted yeast growth, which was mitigated by using weaker promoters, P and P . Furthermore, the impact of nuclear localization signal (SV40-NLS) positioning on BsPadR functionality was explored, revealing that fusion of an SV40-NLS at the C-terminus of BsPadR enhanced the biosensor's performance. To validate its utility, we applied this system to dynamically regulate (geranylgeranyl pyrophosphate synthase), a key enzyme in lycopene biosynthesis. By coupling -coumaric acid production with lycopene biosynthesis, we enabled high-throughput colorimetric screening for enzyme evolution and strain selection. This novel biosensor serves as a valuable tool for future studies aimed at optimizing the production of -coumaric acid and its derivatives in , thereby advancing the efficiency of biosynthetic processes in microbial cell factories.
开发用于监测和调节细胞内生物合成途径的生物传感器,可以显著提高微生物细胞工厂中天然产物的产量。本研究构建了一种新型生物传感器,用于响应对香豆酸,它是多酚和黄酮类生物合成中的关键前体。该生物传感器通过表达来自[具体来源]的BsPadR阻遏蛋白和工程化杂交启动子构建而成。值得注意的是,P[具体名称]杂交启动子受到BsPadR的严格调控,并在响应对香豆酸时增强活性。然而,过量的BsPadR表达对酵母生长产生负面影响,通过使用较弱的启动子P[具体名称]和P[具体名称]得以缓解。此外,还探索了核定位信号(SV40-NLS)定位对BsPadR功能的影响,结果表明在BsPadR的C末端融合SV40-NLS可增强生物传感器的性能。为了验证其效用,我们将该系统应用于动态调节[具体酶名称](香叶基香叶基焦磷酸合酶),它是番茄红素生物合成中的关键酶。通过将对香豆酸的产生与番茄红素生物合成相结合,我们实现了用于酶进化和菌株筛选的高通量比色筛选。这种新型生物传感器是未来旨在优化[具体微生物名称]中对香豆酸及其衍生物生产的研究的宝贵工具,从而提高微生物细胞工厂中生物合成过程的效率。