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Functional heterologous expression of an engineered full length CipA from Clostridium thermocellum in Thermoanaerobacterium saccharolyticum

机译:糖热厌氧杆菌中热纤梭菌全长工程CipA的功能异源表达

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Background Cellulose is highly recalcitrant and thus requires a specialized suite of enzymes to solubilize it into fermentable sugars. In C. thermocellum, these extracellular enzymes are present as a highly active multi-component system known as the cellulosome. This study explores the expression of a critical C. thermocellum cellulosomal component in T. saccharolyticum as a step toward creating a thermophilic bacterium capable of consolidated bioprocessing by employing heterologously expressed cellulosomes. Results We developed an inducible promoter system based on the native T. saccharolyticum xynA promoter, which was shown to be induced by xylan and xylose. The promoter was used to express the cellulosomal component cipA*, an engineered form of the wild-type cipA from C. thermocellum. Expression and localization to the supernatant were both verified for CipA*. When a ΔcipA mutant C. thermocellum strain was cultured with a CipA*-expressing T. saccharolyticum strain, hydrolysis and fermentation of 10 grams per liter SigmaCell 101, a highly crystalline cellulose, were observed. This trans-species complementation of a cipA deletion demonstrated the ability for CipA* to assemble a functional cellulosome. Conclusion This study is the first example of an engineered thermophile heterologously expressing a structural component of a cellulosome. To achieve this goal we developed and tested an inducible promoter for controlled expression in T. saccharolyticum as well as a synthetic cipA. In addition, we demonstrate a high degree of hydrolysis (up to 93%) on microcrystalline cellulose.
机译:背景纤维素是高度难降解的,因此需要一套专门的酶将其溶解为可发酵的糖。在热纤梭菌中,这些细胞外酶以称为纤维素体的高活性多组分系统存在。这项研究探索了关键的热纤梭菌纤维素酶成分在糖酵母中的表达,以此作为创建能够利用异源表达的纤维素体进行整合生物处理的嗜热细菌的一步。结果我们开发了基于天然解糖糖衣杆菌xynA启动子的诱导型启动子系统,该系统被证明由木聚糖和木糖诱导。该启动子用于表达纤维素组分cipA *,这是来自热纤梭菌的野生型cipA的工程化形式。验证了CipA *的表达和在上清液中的定位。当用表达CipA *的解糖丁酸梭菌菌株培养ΔcipA突变体热纤梭菌菌株时,观察到10克/升的SigmaCell 101(一种高度结晶的纤维素)的水解和发酵。 cipA缺失的这种跨物种互补证明了CipA *组装功能性纤维素小体的能力。结论本研究是异源表达纤维素体结构成分的工程嗜热菌的第一个实例。为实现这一目标,我们开发并测试了可诱导的启动子,用于在解糖丁酸球中的受控表达以及合成的cipA。此外,我们证明了微晶纤维素具有高度的水解度(高达93%)。

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