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首页> 外文期刊>Applied and Environmental Microbiology >Improved Production of l-Threonine in Escherichia coli by Use of a DNA Scaffold System
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Improved Production of l-Threonine in Escherichia coli by Use of a DNA Scaffold System

机译:通过使用DNA支架系统提高大肠杆菌中l-苏氨酸的产量

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Despite numerous approaches for the development of l-threonine-producing strains, strain development is still hampered by the intrinsic inefficiency of metabolic reactions caused by simple diffusion and random collisions of enzymes and metabolites. A scaffold system, which can promote the proximity of metabolic enzymes and increase the local concentration of intermediates, was reported to be one of the most promising solutions. Here, we report an improvement in l-threonine production in Escherichia coli using a DNA scaffold system, in which a zinc finger protein serves as an adapter for the site-specific binding of each enzyme involved in l-threonine production to a precisely ordered location on a DNA double helix to increase the proximity of enzymes and the local concentration of metabolites to maximize production. The optimized DNA scaffold system for l-threonine production significantly increased the efficiency of the threonine biosynthetic pathway in E. coli, substantially reducing the production time for l-threonine (by over 50%). In addition, this DNA scaffold system enhanced the growth rate of the host strain by reducing the intracellular concentration of toxic intermediates, such as homoserine. Our DNA scaffold system can be used as a platform technology for the construction and optimization of artificial metabolic pathways as well as for the production of many useful biomaterials.
机译:尽管开发用于生产L-苏氨酸的菌株的方法很多,但是由于酶和代谢物的简单扩散和随机碰撞导致的代谢反应的固有效率低下,菌株的开发仍然受到阻碍。据报道,可以促进代谢酶的接近并增加中间体的局部浓度的支架系统是最有希望的解决方案之一。在这里,我们报告了使用DNA支架系统在大肠杆菌中生产L-苏氨酸的情况的改善,其中锌指蛋白充当衔接子,用于将参与L-苏氨酸生产的每种酶的位点特异性结合到精确有序的位置在DNA双螺旋结构上加成,以增加酶的亲和力和代谢物的局部浓度,以最大化产量。用于L-苏氨酸生产的优化的DNA支架系统显着提高了大肠杆菌中苏氨酸生物合成途径的效率,从而大大减少了L-苏氨酸的生产时间(减少了50%以上)。另外,该DNA支架系统通过降低毒性中间体例如高丝氨酸的细胞内浓度来提高宿主菌株的生长速率。我们的DNA支架系统可以用作构建和优化人工代谢途径以及生产许多有用生物材料的平台技术。

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