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April 25, 2026Journal of the American Chemical Society3 citations

Electroenzymatic C1 Fixation to Glycine via Dithiothreitol Regeneration on Functionalized 1T′-MoS 2

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ZZZixiao ZhaoJLJianming LiuJCJunxiang Chen

Key Points

  • This research aims to develop an efficient electroenzymatic synthesis route for glycine from C1 feedstock.
  • Developed an electroenzymatic platform utilizing 1T'-MoS2 as an electrocatalyst.
  • Covalent functionalization of the catalyst enhanced performance for DTT regeneration.
  • Integrated the system with a downstream chemoenzymatic cascade for glycine synthesis.
  • Achieved a 2-fold enhancement in glycine production, reaching 12.2 mM over 9 hours.
  • Demonstrated fully biocompatible electrochemical regeneration of DTT.
  • Established a sustainable approach for C1 valorization through electrocatalytic and chemoenzymatic processes.

Abstract

Electroenzymatic synthesis, merges the versatility of electrocatalysis with the specificity of enzymology, offering a sustainable strategy for chemical manufacturing. However, the practical application of this approach is often limited by inefficient and incompatible electron transfer between the electrode and enzymes. Here, we present an integrated electroenzymatic platform for the efficient synthesis of glycine from C1 feedstock by establishing an efficient and biocompatible route for electrochemical regeneration of dithiothreitol (DTT) as a redox mediator. We identify 1T'-MoS2 as a highly active electrocatalyst for the reduction of disulfide bonds, specifically regenerating DTT via a potential-dependent dual-pathway mechanism. Covalent functionalization of the 1T'-MoS2 catalyst further enhances its performance through precise interfacial microenvironment engineering. Critically, this electrochemical regeneration system is fully biocompatible, enabling its seamless integration with a downstream chemoenzymatic cascade for glycine synthesis. The mild operating conditions preserve enzyme integrity, ensuring sustained high catalytic activity and achieving a 2-fold enhancement in glycine production up to 12.2 mM over 9 h. This work establishes a sustainable platform for C1 valorization by synergistically coupling electrocatalytic and chemoenzymatic processes, providing a generalizable platform for renewable energy-driven biomanufacturing.

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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/69ec598788ba6daa22dab5a1https://doi.org/10.1021/jacs.6c03530
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