Balancing Precursor Supply and Enhancing Enzyme Solubility for Efficient Production of ( S )-Reticuline in Escherichia coli
Xiaxia Zhang, Muhammad Hassan Butt, Wen Zhang, Yuan Gao, Shibo Guo, Jianfeng Fang, Xiaolin Shen, Jia Wang, Xinxiao Sun, Qipeng YuanAbstract
Benzylisoquinoline alkaloids (BIAs) are pharmacologically valuable natural products, yet their microbial production in Escherichia coli is hindered by two major bottlenecks: (1) imbalanced metabolic flux between the two upstream precursors, 3,4-dihydroxyphenylacetaldehyde (3,4-DHPAA) and dopamine, and (2) poor soluble expression of plant-derived enzymes, particularly norcoclaurine synthase (NCS) and the methyltransferase Ps4′OMT2. To address these challenges, we systematically engineered E. coli for efficient synthesis of (S)-reticuline, the universal precursor to diverse BIAs. First, to resolve the flux imbalance, we introduced a heterologous ω-transaminase (ω-TA) that dynamically interconverts 3,4-DHPAA and dopamine, thereby coordinating precursor supply without tedious tuning of branch pathways. Second, to overcome enzyme insolubility, we combined solubility-enhancing strategiesincluding SUMO fusion, ProteinMPNN-guided design, and N-terminal truncationwhich markedly improved the soluble expression of CjNCS and Ps4′OMT2. Furthermore, strengthening the S-adenosylmethionine (SAM) regeneration cycle through integration of luxS, mtn, and metF genes enhanced the efficiency of the three sequential methylation reactions. The final engineered strain achieved a (S)-reticuline titer of 347 mg/L in shake-flask fermentation. Overall, this work establishes an efficient E. coli chassis for sustainable BIAs production by systematically tackling flux imbalance and enzyme solubility.