2026· The Innovation Life· pp. 100242· 0 citations· 59 references
TL;DR
A growth-phase-dependent dual-dynamic regulation circuit is developed that gradually activates serA expression and progressively represses serB expression as cells enter the stationary phase, thereby reducing 2-HG accumulation and alleviating L-serine auxotrophy.
Abstract
Construction of microbial cell factories often requires extensive reconfiguration of metabolic networks, which frequently compromises cell growth. Here, we engineered E. coli to produce dencichine (β-ODAP), a plant-derived hemostatic agent. Knocking out serB blocks the competing L-serine pathway, causing L-serine auxotrophy and severely impairing cell growth. This growth defect was only partially restored by supplementation with L-serine or L-glycine, suggesting the presence of additional growth-limiting factors. Through adaptive laboratory evolution and reverse engineering, we further uncovered that overexpression of serA to enhance the supply of the precursor L-2,3-diaminopropionate led to accumulation of the toxic byproduct 2-hydroxyglutarate (2-HG) from α-ketoglutarate. To resolve these two growth constraints, we developed a growth-phase-dependent dual-dynamic regulation circuit. This circuit gradually activates serA expression and progressively represses serB expression as cells enter the stationary phase, thereby reducing 2-HG accumulation and alleviating L-serine auxotrophy. Combined with pathway balancing and cofactor optimization, the final engineered strain produced 13.46 g L-1 of β-ODAP with a yield of 0.32 g g-1 in 3-L bioreactors. This study reveals a toxicity mechanism in serine-pathway engineering and provides a dynamic regulation strategy applicable to the biosynthesis of serine-pathway-derived metabolites.
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