Shuo Pang, Yuxing Hao, Jiarong Mo, Yingying He, Yinglu Cui, Bian Wu, Xinya Hemu
Peptide asparaginyl ligases (PALs) hold great promise for peptide macrocyclization and protein bioconjugation, yet their broader application is limited by insufficient thermal stability and low recombinant expression. Here, we report FortiPAL-1, a diffusion-enabled PAL developed through an integrated computational-experimental strategy that couples de novo sequence generation with multi-model-guided mutagenesis and PAL-specific functional refinements. Compared with natural PALs, FortiPAL-1 exhibits markedly enhanced thermal stability (T m = 69 °C versus ∼50 °C for typical PALs) and achieves a soluble zymogen expression level of 64 mg L-1 in E. coli, substantially exceeding reported expression levels for natural PALs, while maintaining catalytic efficiency comparable to the fastest known natural PAL, butelase-1 (k cat/K m = 1.3 × 106 M-1 s-1). Notably, the enhanced structural stability does not translate into a corresponding shift in the optimal reaction temperature, highlighting a decoupling between global folding stability and catalytic performance. Together, these results demonstrate how a constrained, diffusion-enabled engineering workflow can transform fragile enzyme scaffolds into robust, application-ready biocatalysts and highlight the importance of integrating generative protein design with experimental optimization to translate in silico designs into high-performance dynamic enzymes.