State Key Laboratory of Biocatalysis and Enzyme Engineering, and School of Life Sciences, Hubei University, Wuhan 430062, China.
Beijing Tsingke Biotechnology Co., Ltd., Beijing 101111, China.
ACS Synth Biol. 2022 Aug 19;11(8):2811-2819. doi: 10.1021/acssynbio.2c00187. Epub 2022 Jun 30.
A promoter plays a crucial role in controlling the expression of the target gene in cells, thus being one of the key biological parts for synthetic biology practices. Although significant efforts have been made to identify and characterize promoters with different strengths in various microorganisms, the compatibility of promoters within different hosts still lacks investigation. In this study, we chose the native P promoter of to investigate nucleotide sequences within promoter regions affecting promoter compatibility between and . P is one of the strongest promotors in that has many excellent characteristics to be developed as microbial cell factories. Using EGFP as a reporter, a -derived P mutant library was constructed and sorted in , with candidate promoters exhibiting high fluorescence intensity collected. A total of 53 variants were finally selected and sequenced by Sanger sequencing. The sequencing results grouped these variants into 12 different P variant types, among which seven types presented higher promoter strength than native P in . The next-generation sequencing technique was then employed to identify key mutations within the P promoter region that affect the promoter compatibility. Finally, six important sites were identified and confirmed to help increase P strength in while keeping similar strength of native P in . Compared to native P, synthetic promoters combining these sites had enhanced strength; especially, P-6M combining all six sites exhibited 20-fold greater strength than native P in . This study thus not only determined six important sites affecting promoter compatibility but also confirmed a series of P promoter variants with strong promoter activity in both and . In addition, a strategy was established in this study to investigate and determine nucleotide sequences in promoter regions affecting promoter compatibility, which can be applied in other microorganisms to help reveal universal factors affecting promoter compatibility and design promoters with desired strengths among different microbial cell factories.
启动子在控制细胞中靶基因的表达方面起着至关重要的作用,因此是合成生物学实践的关键生物部件之一。尽管已经做出了巨大努力来识别和表征在各种微生物中具有不同强度的启动子,但不同宿主之间的启动子兼容性仍缺乏研究。在本研究中,我们选择了 的天然 P 启动子来研究影响 和 之间启动子兼容性的启动子区域内的核苷酸序列。P 是 中最强的启动子之一,具有许多优异的特性,可以开发为微生物细胞工厂。使用 EGFP 作为报告基因,构建了一个衍生自 P 的突变文库,并在 中进行了分选,收集了候选启动子表现出高荧光强度的文库。最终共选择了 53 个变体,并通过 Sanger 测序进行了测序。测序结果将这些变体分为 12 种不同的 P 变体类型,其中 7 种类型在 中的启动子强度高于天然 P。然后,采用下一代测序技术来鉴定影响启动子兼容性的 P 启动子区域内的关键突变。最终,确定并验证了六个重要的位点有助于提高 P 在 中的强度,同时保持天然 P 在 中的强度相似。与天然 P 相比,组合这些位点的合成启动子在 中具有增强的强度;特别是,组合了所有六个位点的 P-6M 在 中比天然 P 强 20 倍。因此,本研究不仅确定了影响启动子兼容性的六个重要位点,而且还证实了一系列在 和 中均具有强启动子活性的 P 启动子变体。此外,本研究建立了一种策略来研究和确定影响启动子兼容性的启动子区域内的核苷酸序列,该策略可应用于其他微生物,以帮助揭示影响启动子兼容性的通用因素,并设计在不同微生物细胞工厂中具有所需强度的启动子。