Methanol is a promising renewable C1 feedstock for sustainable single‐cell protein (SCP) production. However, its inherent cytotoxicity and metabolic trade‐offs between cell growth and protein synthesis remain significant bottlenecks. Here, we established an “evolutionary‐rational” dual‐driven paradigm to construct a high‐yield Pichia pastoris chassis. Through UV mutagenesis and adaptive laboratory evolution, we developed a highly tolerant strain A40, capable of growing in 70 g/L methanol. Notably, at 30 g/L methanol, A40 achieved a 3.4‐fold higher maximum biomass than the wild‐type. Whole‐genome resequencing and reverse genetics revealed that this superior performance stems from a multi‐gene synergistic network rather than a single dominant mutation. To further optimize SCP production, we rationally co‐overexpressed nitrogen assimilation genes (GLN1, GDH1) and a translation elongation factor (PpeEF3) in the A40 background. This targeted metabolic engineering effectively redirected carbon flux toward protein biosynthesis. The engineered strain A40‐2Ge3 achieved a peak intracellular crude protein content of 67.9% and a 51.3 g/L total titer in a 5‐L bioreactor, representing a 23.1% increase over the wild‐type strain. Collectively, this study provides deep insights into the synergistic mechanisms of methanol adaptation and establishes an efficient, scalable strategy for sustainable SCP production from C1 feedstocks.
Chong Xie, Cheng-Chao Zhu, Jun-Ze Liu et al.· Biotechnology Journal· 0 citations
Daphnetin is a clinically established coumarin, but its native biosynthetic pathway remains elusive. In this study, a 2-oxoglutarate-dependent dioxygenase (2OGD), AtS8H, was identified that hydroxylates umbelliferone (UMB) to daphnetin , enabling the design of an artificial biosynthetic pathway. However, the pathway efficiency was constrained by the poor solubility of AtS8H and the low catalytic activity of the upstream 2OGD enzyme IbC2'H. To enhance AtS8H solubility, we developed an integrated strategy combining ProteinMPNN-guided sequence redesign with surface charge engineering. The obtained quintuple mutant S8H 2-6 exhibited significantly improved solubility and a 7.2-fold increase in catalytic efficiency. For IbC2'H, we developed a fluorescence-based high-throughput screening method, and a quadruple mutant C6 was obtained by directed evolution, which displayed a 2.7-fold higher kcat and a 3.2 °C improvement in thermal stability. Implementing both engineered enzymes into an optimized Escherichia coli strain enabled the de novo production of daphnetin at a titer of 46 mg/L. This work reports, to the best of our knowledge, the first microbial de novo production of daphnetin from a simple carbon source and demonstrates an integrated enzyme engineering approach that synergistically refines biosynthetic pathways for efficient microbial production.
Shunmin Ji, Chong Xie, Yanyan Wang et al.· ACS Synthetic Biology· 0 citations
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