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Specific features of l-histidine production by Escherichia coli concerned with feedback control of AICAR formation and inorganic phosphate/metal transport

机译:大肠杆菌的L-组氨酸产生的特异性特征与AICAR形成和无机磷酸盐/金属运输反馈控制

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摘要

Abstract Background In the l-histidine (His) biosynthetic pathway of Escherichia coli, the first key enzyme, ATP-phosphoribosyltransferase (ATP-PRT, HisG), is subject to different types of inhibition. Eliminating the feedback inhibition of HisG by the His end product is an important step that enables the oversynthesis of His in breeding strains. However, the previously reported feedback inhibition-resistant mutant enzyme from E. coli, HisGE271K, is inhibited by purine nucleotides, particularly ADP and AMP, via competitive inhibition with its ATP substrate. 5-Aminoimidazole-4-carboxamide ribonucleotide (AICAR), which is formed not only during His biosynthesis but also during de novo purine biosynthesis, acts as a natural analog of AMP and substitutes for it in some enzymatic reactions. We hypothesized that AICAR could control its own formation, particularly through the His biosynthetic pathway, by negatively influencing HisG enzymatic activity, which would make preventing ATP-PRT transferase inhibition by AICAR crucial for His overproduction. Results For the first time, both the native E. coli HisG and the previously described feedback-resistant mutant HisGE271K enzymes were shown to be sensitive to inhibition by AICAR, a structural analog of AMP. To circumvent the negative effect that AICAR has on His synthesis, we constructed the new His-producing strain EA83 and demonstrated its improved histidine production. This increased production was particularly associated with the improved conversion of AICAR to ATP due to purH and purA gene overexpression; additionally, the PitA-dependent phosphate/metal (Me2+-Pi) transport system was modified by a pitA gene deletion. This His-producing strain unexpectedly exhibited decreased alkaline phosphatase activity at low Pi concentrations. AICAR was consequently hypothesized inhibit the two-component PhoBR system, which controls Pho regulon gene expression. Conclusions Inhibition of a key enzyme in the His biosynthetic pathway, HisG, by AICAR, which is formed in this pathway, generates a serious bottleneck during His production. The constructed His-producing strain demonstrated the enhanced expression of genes that encode enzymes involved in the metabolism of AICAR to ATP, which is a substrate of HisG, and thus led to improved His accumulation.
机译:摘要背景下的L-组氨酸(他)大肠杆菌的生物合成途径,第一关键酶,ATP磷酰基转移酶(ATP-PRT,HISG)受到不同类型的抑制作用。通过他的最终产品消除对HISG的反馈抑制是一种重要的一步,使他在繁殖菌株中的过混件能够。然而,先前报道的反馈抑制抗突变体酶来自大肠杆菌Hisge271K,通过竞争性抑制与其ATP衬底具有竞争性抑制来抑制来自大肠杆菌的抗损伤突变体酶。 5-氨基咪唑-4-甲酰胺核糖核糖核苷酸(AICAR),其不仅在他的生物合成期间形成,而且在脱诺嘌呤生物合成期间形成,作为AMP的天然类似物,在一些酶促反应中替代物。我们假设AICAR可以通过对HISG酶活性产生负面影响,因此AICAR可以控制自己的形成,特别是通过他的生物合成途径,这将使AICAR对他过量生产的AICAR至关重要的ATP-PRT转移酶抑制。结果首次,本地大肠杆菌Hisg和先前描述的反馈抗突变体Hisge271K酶被显示为AICAR的抑制敏感,AMP的结构类似物。为了规避AICAR对其合成的负面影响,我们构建了新的产出菌株EA83,并证明了其改进的组氨酸产生。由于PurH和Pura基因过表达,这种增加的产量与AICAR转化为ATP的改善;另外,通过皮塔塔基因缺失修饰了依赖于依赖性磷酸盐/金属(ME2 + -PI)传输系统。其产生的菌株意外地表现出低PI浓度下碱性磷酸酶活性降低。因此,AICAR假设抑制了控制PHO调节基因表达的双组分PHOBR系统。结论在该途径中形成的AICAR中,他在其生物合成途径中抑制键,HISG,其在该途径中形成,在其生产中产生严重的瓶颈。制备的其产生的菌株证明了编码参与AICAR代谢的基因的增强表达,其是HISG的基材,因此导致他的积累提高。

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