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Modular engineering to increase intracellular NAD(H/+) promotes rate of extracellular electron transfer of Shewanella oneidensis

机译:增加细胞内NAD(H / +)的模块化工程提高了拟南芥(Shewanella oneidensis)的细胞外电子转移速率

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摘要

The slow rate of extracellular electron transfer (EET) of electroactive microorganisms remains a primary bottleneck that restricts the practical applications of bioelectrochemical systems. Intracellular NAD(H/+) (i.e., the total level of NADH and NAD+) is a crucial source of the intracellular electron pool from which intracellular electrons are transferred to extracellular electron acceptors via EET pathways. However, how the total level of intracellular NAD(H/+) impacts the EET rate in Shewanella oneidensis has not been established. Here, we use a modular synthetic biology strategy to redirect metabolic flux towards NAD+ biosynthesis via three modules: de novo, salvage, and universal biosynthesis modules in S. oneidensis MR-1. The results demonstrate that an increase in intracellular NAD(H/+) results in the transfer of more electrons from the increased oxidation of the electron donor to the EET pathways of S. oneidensis, thereby enhancing intracellular electron flux and the EET rate.
机译:电活性微生物的胞外电子转移(EET)速度缓慢仍然是限制生物电化学系统实际应用的主要瓶颈。细胞内NAD(H / + )(即NADH和NAD + 的总水平)是细胞内电子池的重要来源,细胞内电子从该池转移到细胞外通过EET途径的电子受体。然而,尚不清楚细胞内NAD(H / + )的总水平如何影响沙瓦氏菌(Shewanella oneidensis)的EET率。在这里,我们采用模块化的合成生物学策略,将代谢通量通过三个模块重定向到NAD + 生物合成:从头到尾,拯救和通用生物合成模块MR-1。结果表明,细胞内NAD(H / + )的增加导致更多电子从电子供体氧化的增加转移到拟南芥的EET途径,从而增强了细胞内电子通量和EET率。

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