Department of Microbiology, University of Wisconsin-La Crosse, La Crosse, WI, United States.
PeerJ. 2022 Jul 19;10:e13639. doi: 10.7717/peerj.13639. eCollection 2022.
Acetic acid bacteria are well-known for their ability to incompletely oxidize their carbon sources. Many of the products of these oxidations find industrial uses. Metabolic engineering of acetic acid bacteria would improve production efficiency and yield by allowing controllable gene expression. However, the molecular tools necessary for regulating gene expression have only recently started being explored. To this end the ability of the activation-dependent P system and two constitutive repression P systems were examined for their ability to modulate gene expression in . The activation-dependent P system increased gene expression approximately 5-fold regardless of the strength of the constitutive promoter used to express the transcriptional activator. The P system was tunable and had a nearly 20-fold induction when the gene was expressed from the strong constitutive promoters P and P, but only had a 4-fold induction when a weak constitutive promoter (P) was used for expression. However, the P system was somewhat leaky when uninduced. To mitigate this background activity, a bicistronic TetR expression system was constructed. Based on molecular modeling, this system is predicted to have low background activity when not induced with anhydrotetracycline. The bicistronic system was inducible up to >3,000-fold and was highly tunable with almost no background expression when uninduced, making this bicistronic system potentially useful for engineering and possibly other acetic acid bacteria. These expression systems add to the newly growing repertoire of suitable regulatable promoter systems in acetic acid bacteria.
醋酸菌以其不完全氧化碳源的能力而闻名。这些氧化作用的许多产物在工业上都有应用。通过可控的基因表达,对醋酸菌进行代谢工程改造可以提高生产效率和产量。然而,用于调控基因表达的分子工具直到最近才开始被探索。为此,研究了依赖激活的 P 系统和两种组成型抑制 P 系统在醋酸菌中调节基因表达的能力。依赖激活的 P 系统无论使用何种组成型启动子表达转录激活剂,都能将基因表达提高约 5 倍。P 系统是可调的,当基因从强组成型启动子 P 和 P 表达时,诱导倍数接近 20 倍,但当使用弱组成型启动子(P)表达时,诱导倍数仅为 4 倍。然而,当未诱导时,P 系统有点渗漏。为了减轻这种背景活性,构建了一个双顺反子 TetR 表达系统。基于分子建模,当不使用脱羟四环素诱导时,该系统预计具有低背景活性。双顺反子系统可诱导超过 3000 倍,在未诱导时具有高度可调性,几乎没有背景表达,因此该双顺反子系统可能对工程化和可能的其他醋酸菌很有用。这些表达系统增加了新出现的可调节启动子系统在醋酸菌中的应用。