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De novo L-(+)-tartaric acid biosynthesis in multi-modular engineered yeasts
L-(+)-tartaric acid (L-TA) is a high-value chiral organic acid essential for food and pharmaceuticals. Despite its industrial importance, sustainable green production is constrained by the lack of a fully defined biosynthetic pathway. Here, we report the de novo biosynthesis of L-TA in Saccharomyces cerevisiae through reaction-guided enzyme mining, experimental validation, and Enzyme Commission-specific Catalytic Hybrid Optimizer (ECHO)-assisted enzyme prioritization. We first elucidate the elusive two-step conversion from precursor 5-keto-D-gluconic acid (5-KGA) to L-TA, catalyzed by transketolase (TK) and succinate semialdehyde dehydrogenase (SSDH). To optimize this critical step, we develop the ECHO. This multimodal framework integrates sequence, substrate, and pocket-aware structural information to identify high-performance TK-SSDH pairs. By integrating this pathway with de novo precursor synthesis, cofactor engineering, and semi-rational protein engineering, a final L-TA titer of 6.59 mg L−1 was achieved in a 5-L bioreactor. By connecting computational mining and metabolic assembly through a multi-module engineering strategy, our study establishes a green platform for L-TA production and demonstrates an effective workflow for synthetic pathway design. L-(+)-tartaric acid (L-TA) is a high-value chiral organic acid for food and pharmaceuticals. Here the authors produce L-TA in S. cerevisiae through reaction-guided enzyme mining and Enzyme Commission-specific Catalytic Hybrid Optimizer (ECHO)-assisted enzyme prioritization.
Computationally Guided Engineering of Multi-Enzyme Cascades Enables Efficient Trehalose Biosynthesis.
Trehalose is a nonreducing disaccharide widely used for its biomolecule-protective properties. However, multienzyme cascade production remains limited by low enzyme expression and suboptimal catalytic performance. To address this, thermostable maltooligosyltrehalose synthase (TreY) and trehalohydrolase (TreZ) from Arthrobacter ramosus were individually expressed intracellularly in Bacillus subtilis, and the crude lysates were combined for trehalose biosynthesis, achieving 281.4 g/L trehalose and a yield of 0.7 g trehalose/g maltodextrin. Integrated computational screening identified MalQ-3 from Cyanobacterium stanieri as a suitable 4-α-glucanotransferase for soluble expression. Subsequent semirational engineering generated MalQ-3-M2 (S54P/V472F), with enhanced activity and stability associated with improved substrate-pocket dynamics, thereby facilitating glucan-chain rearrangement and short-chain reutilization. MalQ-3-M2 was separately expressed in B. subtilis and incorporated into the crude-lysate cascade, increasing the trehalose titer to 338 g/L and the yield to 0.85 g trehalose/g maltodextrin. Overall, this work establishes a scalable B. subtilis platform for efficient trehalose production.
Mechanism-Guided Synergistic Engineering of Substrate Access and Catalytic Microenvironment in Oxidosqualene Cyclase for Enhanced Amyrin Biosynthesis.
Oxidosqualene cyclases (OSCs) catalyze the cyclization of 2,3-oxidosqualene into diverse triterpenoids, yet their intrinsically low catalytic efficiency restricts biosynthetic productivity. Here, we establish a mechanism-guided synergistic engineering strategy that extends beyond conventional active-site engineering by integrating distal substrate access regulation with catalytic microenvironment optimization to enhance the catalytic performance of CrAS from Catharanthus roseus. Structural modeling and mechanistic analyses revealed a conserved catalytic framework involving carbocation-mediated polycyclization and identified a surface-exposed constriction region that regulates substrate access. Guided by these insights, distal surface engineering of the constriction region was synergistically combined with active pocket optimization. The resulting combinatorial mutant, M3 (L323A/T327K/N565I), exhibited a 95.2% increase in catalytic efficiency and enhanced α-amyrin and β-amyrin by 53.2% and 49.7%, reaching 158 mg/L and 63 mg/L, respectively. Multi-scale analyses combining molecular dynamics (MD) and quantum mechanics/molecular mechanics (QM/MM) calculations revealed that the enhanced catalytic performance is attributable to increased flexibility of the substrate access pathway, reinforced electrostatic and cation-π interactions, and reduced reaction energy barriers. Notably, distal mutation T327K improved substrate ingress through dynamic modulation of the protein surface, while N565I optimized the catalytic microenvironment by enhancing hydrophobic packing and stabilizing key intermediates. Overall, our findings establish a generalizable framework for engineering complex cyclases and provide a foundation for the sustainable microbial production of high-value triterpenoids.