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February 2, 2026Nature Communications8 citationsOpen Access

Discover the maze-like network for glabridin biosynthesis

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ZZZhen ZhangWLWenqiang LiFMFanze Meng

Key Points

  • The aim is to identify and reconstruct the glabridin biosynthetic pathway to enable its production in yeast.
  • Combined chromosome-scale genome assembly with large-scale transcriptome analysis.
  • Analyzed 183 licorice transcriptomes to identify enzyme classes.
  • Validated six functional pathways from 13 theoretical routes.
  • Discovered a ladder-like, multi-route tailoring network for glabridin synthesis.
  • Identified a dynamic methylation-demethylation cycle that regulates pathway efficiency.
  • Showed increased robustness and yield in yeast compared to single-route designs.

Abstract

Flavonoid diversity arises from modifications of a few precursors by tailored enzymes, yet the complexity of their evolved metabolic networks complicates pathway elucidation and design. Here, by combining chromosome-scale genome assembly with large-scale transcriptome analysis, we identify and reconstruct the glabridin biosynthetic pathway in yeast, enabling de novo production of this antioxidant flavonoid from Glycyrrhiza glabra L. By analyzing 183 licorice transcriptomes, we discover four classes of enzymes capable of modify isoflavan scaffolds. Among 13 theoretical routes, we validate six functional pathways, revealing a ladder-like, multi-route tailoring network. This network features a multi-step "protection-deprotection" mechanism driven by a dynamic methylation-demethylation cycle that regulate intermediate hydrophilicity and enzyme affinity, thereby enabling species-specific glabridin synthesis. Reconstruction of this network in yeast shows that metabolic redundancy and interconnectivity enhance robustness and yield compared to single-route designs. These results establish a biosynthetic paradigm with broad implications for natural product discovery and biomanufacturing.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/6980fff5c1c9540dea812f11https://doi.org/10.1038/s41467-026-68881-8
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