Computational Redesign and Mechanistic Insights into P450BM3 Enable Regioselective C–H Hydroxylation of Structurally Diverse Steroids

区域选择性 羟基化 化学 类固醇 细胞色素P450 组合化学 生物催化 生物转化 立体选择性 合理设计 基质(水族馆) 立体化学 选择性 立体异构 门控 芳香化酶 细胞色素 生物化学 定向进化 活动站点 蛋白质工程 催化作用 酶催化 单加氧酶 雄烯二酮 结合位点 质子化
作者
Qi Ye,Li Zl,Ying Cui,Hongjia Wei,Y. Victoria Zhang,Fan Zhao,Fuju Wang,Yongbo Song,Weizhuo Xu,Jinghai Zhang
出处
期刊:ACS Catalysis [American Chemical Society]
卷期号:16 (3): 2745-2760
标识
DOI:10.1021/acscatal.5c08382
摘要

Cytochrome P450BM3 (CYP102A1) is a versatile biocatalyst capable of selective C–H hydroxylation, yet achieving precise regio- and stereoselectivity toward steroid substrates remains challenging. Here, an integrated computational–experimental framework combining Rosetta-based enzyme design, molecular dynamics (MD) simulations, and QM/MM analysis has been developed to rationally reprogram P450BM3 for site-selective steroid hydroxylation. Using LG23 as the parental enzyme, targeted mutations at key sites were introduced to reshape the substrate channel and modulate active-site polarity, improving catalytic activity and selectivity for six structurally diverse substrates, including testosterone (1), nandrolone (2), androstenedione (3), androsta-1,4-diene-3,17-dione (4), 22-hydroxy-23,24-bisnorchol-4-ene-3-one (5), and progesterone (6). The resulting variants, particularly S88T/Q188L and G87A/S88L/W330L, achieved near-quantitative conversions (>95%) and >90% 7β-selectivity toward compact steroids 1–4. For bulky C17-substituted steroids 5 and 6, the L82T/S88L/W330L variant enhanced conversion from <6% to >80% with strict 15β-selectivity. Under optimized biotransformation conditions (20 °C, pH 8.0) with hydroxypropyl-β-cyclodextrin (HP-β-CD), the titer of 7β-hydroxylated 4 reached 645.4 mg/L, which is among the highest reported titers for this transformation to date. Mechanistic analyses revealed that S88 remotely controls regioselectivity via a structurally conserved water-mediated hydrogen-bond network, confirmed by QM/MM calculations, whereas W330L modulates channel gating to accommodate bulky C17 substituents. This work establishes a potentially generalizable paradigm for the rational engineering of regioselectivity in P450 enzymes, enabling high-yield production of hydroxylated steroids and providing transferable design principles for selective C–H hydroxylation of complex steroidal scaffolds.
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