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通过稳定的 L-鼠李糖诱导型质粒系统扩展 Cupriavidus necator 的遗传工具盒。

Expanding the genetic tool box for Cupriavidus necator by a stabilized L-rhamnose inducible plasmid system.

机构信息

DECHEMA-Research Institute, Industrial Biotechnology, Theodor-Heuss-Allee 25, 60486, Frankfurt, Germany.

LISBP, Université de Toulouse, CNRS, INRA, INSA,135 avenue de Rangueil, 31077, Toulouse, CEDEX 04, France.

出版信息

J Biotechnol. 2017 Dec 10;263:1-10. doi: 10.1016/j.jbiotec.2017.10.002. Epub 2017 Oct 4.

Abstract

The Gram negative bacterium Cupriavidus necator is well known for the accumulation of poly(3-hydroxybutyrate) and its fast lithoautotrophic growth, leading in high cell densities. Although the host was engineered for the heterologous production of diverse chemicals and biopolymers in recent years, tool box of stabilized inducible expression systems is still limited. To avoid plasmid loss during fermentation processes and to allow expression of complex proteins, a tunable L-rhamnose inducible system was established and characterized using enhanced green fluorescent protein (eGFP). The construct was stabilized by a previously established partitioning system. An increase of fluorescence signal intensity in different media was shown with inducer concentrations up to 11mM L-rhamnose. The strongest effects were measured at quite low concentrations - high tunability was observed between 0 and 0.4-1mM (depending on the medium used). Expression is tightly regulated and could be increased over 140-fold in complex medium and approximately 60-fold in minimal medium due to induction with 11mM L-rhamnose. Varying induction times were characterized regarding growth behavior and expression pattern, taking into consideration problems that may arise during expression of toxic proteins. The novel plasmid expands the tool box for engineering the highly flexible production host C. necator.

摘要

革兰氏阴性菌中铜绿假单胞菌以积累聚(3-羟基丁酸酯)及其快速的自养生长而闻名,可导致高密度细胞。尽管近年来该宿主已被用于异源生产各种化学品和生物聚合物,但稳定的可诱导表达系统的工具盒仍然有限。为了避免在发酵过程中丢失质粒,并允许表达复杂的蛋白质,建立并表征了一种可调节的 L-鼠李糖诱导系统,使用增强型绿色荧光蛋白(eGFP)。该构建体通过先前建立的分配系统进行了稳定化。在不同的培养基中,随着诱导剂浓度高达 11mM L-鼠李糖,荧光信号强度增加。在相当低的浓度下(取决于所用的培养基)观察到最强的效果 - 在 0 和 0.4-1mM 之间观察到高的可调性。由于用 11mM L-鼠李糖诱导,在复杂培养基中表达可增加 140 多倍,在基础培养基中可增加约 60 倍,因此表达受到严格调控。不同的诱导时间与生长行为和表达模式有关,同时考虑到表达毒性蛋白时可能出现的问题。新型质粒扩展了工程高度灵活的生产宿主铜绿假单胞菌的工具盒。

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