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Metabolome analysis-based design and engineering of a metabolic pathway in Corynebacterium glutamicum to match rates of simultaneous utilization of d-glucose and l-arabinose

机译:基于代谢分析的基于代谢分析的谷氨酸中代谢途径的设计和工程,以匹配D-葡萄糖和L-Arabinose的同时使用速率

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摘要

Abstract Background l-Arabinose is the second most abundant component of hemicellulose in lignocellulosic biomass, next to d-xylose. However, few microorganisms are capable of utilizing pentoses, and catabolic genes and operons enabling bacterial utilization of pentoses are typically subject to carbon catabolite repression by more-preferred carbon sources, such as d-glucose, leading to a preferential utilization of d-glucose over pentoses. In order to simultaneously utilize both d-glucose and l-arabinose at the same rate, a modified metabolic pathway was rationally designed based on metabolome analysis. Results Corynebacterium glutamicum ATCC 31831 utilized d-glucose and l-arabinose simultaneously at a low concentration (3.6 g/L each) but preferentially utilized d-glucose over l-arabinose at a high concentration (15 g/L each), although l-arabinose and d-glucose were consumed at comparable rates in the absence of the second carbon source. Metabolome analysis revealed that phosphofructokinase and pyruvate kinase were major bottlenecks for d-glucose and l-arabinose metabolism, respectively. Based on the results of metabolome analysis, a metabolic pathway was engineered by overexpressing pyruvate kinase in combination with deletion of araR, which encodes a repressor of l-arabinose uptake and catabolism. The recombinant strain utilized high concentrations of d-glucose and l-arabinose (15 g/L each) at the same consumption rate. During simultaneous utilization of both carbon sources at high concentrations, intracellular levels of phosphoenolpyruvate declined and acetyl-CoA levels increased significantly as compared with the wild-type strain that preferentially utilized d-glucose. These results suggest that overexpression of pyruvate kinase in the araR deletion strain increased the specific consumption rate of l-arabinose and that citrate synthase activity becomes a new bottleneck in the engineered pathway during the simultaneous utilization of d-glucose and l-arabinose. Conclusions Metabolome analysis identified potential bottlenecks in d-glucose and l-arabinose metabolism and was then applied to the following rational metabolic engineering. Manipulation of only two genes enabled simultaneous utilization of d-glucose and l-arabinose at the same rate in metabolically engineered C. glutamicum. This is the first report of rational metabolic design and engineering for simultaneous hexose and pentose utilization without inactivating the phosphotransferase system.
机译:摘要背景L-Arabinose是木质纤维素生物量的二次半纤维素中最丰富的组分,旁边的D-木糖。然而,很少有微生物能够利用pentosaps,并且可以通过更优选的碳源(例如D-葡萄糖)的分解代谢基因和调味物利用的调味基因和调味术通常受碳分解代谢物抑制,导致D-葡萄糖的优先使用pentose。为了以相同的速率同时使用D-葡萄糖和L-阿拉伯糖,基于代谢物分析合理设计改性代谢途径。结果谷氨酸杆菌ATCC 31831以低浓度(每次3.6克/升)同时使用D-葡萄糖和L-阿拉伯糖,但优先利用在高浓度(每次15克/升)上的L-阿拉伯糖上的D-葡萄糖。虽然L-在没有第二碳源的比较速率下消耗阿拉伯糖和D-葡萄糖。代谢物分析表明,磷质子油酶和丙酮酸激酶分别是D-葡萄糖和L-阿拉伯糖代谢的主要瓶颈。基于代谢物分析的结果,通过将丙酮酸激酶与缺失的缺失过度表达丙酮酸激酶来设计代谢途径,其编码L-阿拉伯糖摄取和分解代谢的阻遏物。重组菌株以相同的消耗率利用高浓度的D-葡萄糖和L-阿拉伯糖(每次15g / L)。在高浓度下同时利用两种碳源时,与优先利用D-葡萄糖的野生型菌株相比,磷酸丙酮醇的细胞内水平下降和乙酰-CoA水平显着增加。这些结果表明,Arar缺失菌株中丙酮酸激酶的过度表达增加了L-阿拉伯糖的特异性消耗率,并且在同时使用D-葡萄糖和L-阿拉伯糖期间,柠檬酸合酶活性成为工程途径的新瓶颈。结论代谢分析确定了D-葡萄糖和L-阿拉伯糖代谢的潜在瓶颈,然后应用于以下合理代谢工程。仅在代谢工程化C.谷氨酰胺中以相同的速率同时使用两种基因的操作仅使D-葡萄糖和L- Arabinose同时使用。这是合理代谢设计和工程的第一报告,用于同时己糖和戊糖利用而不灭活磷酸转移酶系统。

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