单加氧酶
发散合成
羟基化
毕赤酵母
细胞色素P450
化学
计算生物学
定向进化
底物特异性
类固醇
生物化学
生物
毕赤酵母
基质(水族馆)
真菌蛋白
组合化学
蛋白质工程
亲缘关系
酶
钥匙(锁)
生物催化
分子进化
结合亲和力
基因
加氧酶
生物转化
作者
Ling Wang,Ying Wang,Xiaogang Peng,Chenghua Gao,Xinfang Wei,Peng Chen,Pan Xiao,Qian Li,Aitao Li
标识
DOI:10.1038/s41467-025-65736-6
摘要
Steroidal C12β/15α-hydroxylation are pivotal in synthesizing steroid drugs but remain challenging via chemical and biological methods. To address this, structure-guided divergent evolution is applied to the fungal P450 monooxygenase CYP68J5_fg. Two optimized variants, W12M5 (F107S/Q112R/N295T/V299T/R368K) and W15M4 (Q112C/D126V/V299L/A362M) are created, achieving high selectivity (97.7% for C12β- and 99.6% for C15α-hydroxylation of progesterone) alongside enhanced catalytic efficiency, effectively overcoming the classic activity-selectivity trade-off. Molecular dynamics simulations reveal that key mutations reorient the substrate by reshaping the binding pocket's polarity and hydrogen-bonding network, enabling hydroxylation at distinct positions. High-density fermentation with engineered Pichia pastoris yields titers of 4.6 g/L 12β-OH progesterone, 10.9 g/L 15α-OH progesterone and 14.1 g/L 15α-OH androstenedione. These products serve as key intermediates for streamlined synthesis of C12-/C15-functionalized steroids such as drospirenone and C-nor-D-homo derivatives. Collectively, this study demonstrates the successful divergent evolution of a fungal P450, a strategy which has so far not been reported in the literature, highlights its broad applicability for the scalable synthesis of complex bioactive molecules.
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