首页> 外文期刊>Metabolic engineering >Identification and inactivation of pleiotropic regulator CcpA to eliminate glucose repression of xylose utilization in Clostridium acetobutylicum.
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Identification and inactivation of pleiotropic regulator CcpA to eliminate glucose repression of xylose utilization in Clostridium acetobutylicum.

机译:鉴定和灭活多效性调节剂CcpA,以消除丙酮丁醇梭菌中木糖利用的葡萄糖抑制。

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摘要

D-xylose utilization is a key issue for lignocellulosic biomass fermentation, and a major problem in this process is carbon catabolite repression (CCR). In this investigation, solvent-producing bacterium Clostridium acetobutylicum ATCC 824 was metabolically engineered to eliminate D-glucose repression of d-xylose utilization. The ccpA gene, encoding the pleiotropic regulator CcpA, was experimentally characterized and then disrupted. Under pH-controlled conditions, the ccpA-disrupted mutant (824ccpA) can use a mixture of D-xylose and D-glucose simultaneously without CCR. Moreover, this engineered strain produced acetone, butanol and ethanol (ABE) at a maximal titer of 4.94, 12.05 and 1.04 g/L, respectively, which was close to the solvent level of maize- or molasses-based fermentation by wild type C. acetobutylicum. Molar balance analysis for improved process of mixed sugars utilization also revealed less acid accumulation and more butanol yield by the engineered strain as compared to the wild type. This study offers a genetic modification strategy for improving simultaneous utilization of mixed sugars by Clostridium, which is essential for commercial exploitation of lignocellulose for the production of solvents and biofuels.
机译:D-木糖的利用是木质纤维素生物质发酵的关键问题,该过程中的主要问题是碳分解代谢物阻抑(CCR)。在这项研究中,产生溶剂的细菌丙酮丁醇梭菌ATCC 824经过代谢工程处理,以消除D-葡萄糖对D-木糖利用的抑制作用。编码多效性调节剂CcpA的ccpA基因经过实验表征,然后被破坏。在pH控制的条件下,破坏了ccpA的突变体(824ccpA)可以同时使用D-木糖和D-葡萄糖的混合物,而无需CCR。此外,该工程菌株产生的丙酮,丁醇和乙醇(ABE)的最大滴度分别为4.94、12.05和1.04 g / L,接近于野生型C基于玉米或糖蜜发酵的溶剂水平。乙酰丁醇。与野生型相比,经过改良的混合糖利用过程的摩尔平衡分析还显示,工程菌株减少了酸积累,并提高了丁醇收率。这项研究提供了一种遗传修饰策略,可提高梭菌对混合糖的同时利用,这对于木质纤维素的商业开发以生产溶剂和生物燃料至关重要。

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