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Enforcing energy consumption promotes microbial extracellular respiration for xenobiotic bioconversion
Authors:Zi-Han Liang  Hong Sun  Yang Li  Anyi Hu  Qiang Tang  Han-Qing Yu
Affiliation:1. Department of Environmental Science and Technology, University of Science and Technology of China, Hefei, China

Contribution: Data curation (lead), Formal analysis (lead), ​Investigation (equal), Methodology (lead);2. CAS Key Laboratory of Urban Pollutant Conversion, School of Life Sciences, University of Science and Technology of China, Hefei, China

Contribution: Formal analysis (supporting), Methodology (supporting), Resources (supporting);3. CAS Key Laboratory of Urban Pollutant Conversion, Institute of Urban Environment, Chinese Academy of Sciences, Xiamen, China

Contribution: Data curation (supporting), Methodology (supporting), Resources (supporting);4. Department of Environmental Science and Technology, University of Science and Technology of China, Hefei, China

Abstract:Extracellular electron transfer (EET) empowers electrogens to catalyse the bioconversion of a wide range of xenobiotics in the environment. Synthetic bioengineering has proven effective in promoting EET output. However, conventional strategies mainly focus on modifications of EET-related genes or pathways, which leads to a bottleneck due to the intricate nature of electrogenic metabolic properties and intricate pathway regulation that remain unelucidated. Herein, we propose a novel EET pathway-independent approach, from an energy manipulation perspective, to enhance microbial EET output. The Controlled Hydrolyzation of ATP to Enhance Extracellular Respiration (CHEER) strategy promotes energy utilization and persistently reduces the intracellular ATP level in Shewanella oneidensis, a representative electrogenic microbe. This approach leads to the accelerated consumption of carbon substrate, increased biomass accumulation and an expanded intracellular NADH pool. Both microbial electrolysis cell and microbial fuel cell tests exhibit that the CHEER strain substantially enhances EET capability. Analysis of transcriptome profiles reveals that the CHEER strain considerably bolsters biomass synthesis and metabolic activity. When applied to the bioconversion of model xenobiotics including methyl orange, Cr(VI) and U(VI), the CHEER strain consistently exhibits enhanced removal efficiencies. This work provides a new perspective and a feasible strategy to enhance microbial EET for efficient xenobiotic conversion.
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