Changli Che, , , Wenhe Zhang, , , Xiao Qiu, , , Qingyu Wang, , , Lichun Tang, , , Bin Qin*, , , Xian Jia*, , and , Song You*,
{"title":"工程细菌孕酮5β-还原酶:可调底物偏好和5β-二氢类固醇的合成","authors":"Changli Che, , , Wenhe Zhang, , , Xiao Qiu, , , Qingyu Wang, , , Lichun Tang, , , Bin Qin*, , , Xian Jia*, , and , Song You*, ","doi":"10.1021/acscatal.5c04685","DOIUrl":null,"url":null,"abstract":"<p >The stereoselective hydrogenation of steroids at the 5β position is a crucial step in the synthesis of steroid drugs. Nevertheless, the suboptimal catalytic efficiency and poor heterologous expression levels of existing plant progesterone 5β-reductases (P5βRs) and animal-derived steroid 5β-reductases hinder their practical application. To expand the enzymatic synthesis pathway of 5β-dihydrosteroids, bacterial P5βRs were mined and their catalytic activities against progesterone and 8-oxogeranial were investigated. Similar to plant-derived PRISEs (progesterone 5β-reductase and/or iridoid synthase-like 1,4-enone reductases), bacterial P5βRs also exhibit divergent substrate preferences despite maintaining highly conserved protein sequences and structural architectures. Through integrated sequence-structure comparative analysis, a conformational switch controlling substrate selectivity was identified, which allows precise tuning of substrate preference in bacterial P5βR. Molecular dynamics (MD) simulation results indicate that the mutant M1 can open the cavity B within the substrate binding pocket, allowing the linear substrate 8-oxogeranial to stably bind. Furthermore, a substrate characteristics-oriented rational strategy was proposed to further enhance the catalytic activity of bacterial P5βR toward steroids. The progesterone catalytic efficiency of the optimal mutant <i>Lp</i>P5βR-M5 was increased by more than 700-fold compared with the wild type. The gram-level preparation of 5β-pregnane-3,20-dione showed that <i>Lp</i>P5βR-M5 could almost completely convert 28 g/L progesterone within 2 h (conv. >98%), and the space-time yield (STY) was as high as 330 g/L·d. In addition, the structural basis for the improved catalytic activity of <i>Lp</i>P5βR-M5 was explored employing MD simulation and caver analysis. This study not only elucidates the structure–function relationship of bacterial P5βR but also pioneers an environmentally friendly biocatalytic pathway for 5β-dihydrosteroid synthesis.</p>","PeriodicalId":9,"journal":{"name":"ACS Catalysis ","volume":"15 19","pages":"16560–16573"},"PeriodicalIF":13.1000,"publicationDate":"2025-09-16","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Engineered Bacterial Progesterone 5β-Reductase: Tunable Substrate Preference and Synthesis of 5β-Dihydrosteroids\",\"authors\":\"Changli Che, , , Wenhe Zhang, , , Xiao Qiu, , , Qingyu Wang, , , Lichun Tang, , , Bin Qin*, , , Xian Jia*, , and , Song You*, \",\"doi\":\"10.1021/acscatal.5c04685\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >The stereoselective hydrogenation of steroids at the 5β position is a crucial step in the synthesis of steroid drugs. Nevertheless, the suboptimal catalytic efficiency and poor heterologous expression levels of existing plant progesterone 5β-reductases (P5βRs) and animal-derived steroid 5β-reductases hinder their practical application. To expand the enzymatic synthesis pathway of 5β-dihydrosteroids, bacterial P5βRs were mined and their catalytic activities against progesterone and 8-oxogeranial were investigated. Similar to plant-derived PRISEs (progesterone 5β-reductase and/or iridoid synthase-like 1,4-enone reductases), bacterial P5βRs also exhibit divergent substrate preferences despite maintaining highly conserved protein sequences and structural architectures. Through integrated sequence-structure comparative analysis, a conformational switch controlling substrate selectivity was identified, which allows precise tuning of substrate preference in bacterial P5βR. Molecular dynamics (MD) simulation results indicate that the mutant M1 can open the cavity B within the substrate binding pocket, allowing the linear substrate 8-oxogeranial to stably bind. Furthermore, a substrate characteristics-oriented rational strategy was proposed to further enhance the catalytic activity of bacterial P5βR toward steroids. The progesterone catalytic efficiency of the optimal mutant <i>Lp</i>P5βR-M5 was increased by more than 700-fold compared with the wild type. The gram-level preparation of 5β-pregnane-3,20-dione showed that <i>Lp</i>P5βR-M5 could almost completely convert 28 g/L progesterone within 2 h (conv. >98%), and the space-time yield (STY) was as high as 330 g/L·d. In addition, the structural basis for the improved catalytic activity of <i>Lp</i>P5βR-M5 was explored employing MD simulation and caver analysis. 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Engineered Bacterial Progesterone 5β-Reductase: Tunable Substrate Preference and Synthesis of 5β-Dihydrosteroids
The stereoselective hydrogenation of steroids at the 5β position is a crucial step in the synthesis of steroid drugs. Nevertheless, the suboptimal catalytic efficiency and poor heterologous expression levels of existing plant progesterone 5β-reductases (P5βRs) and animal-derived steroid 5β-reductases hinder their practical application. To expand the enzymatic synthesis pathway of 5β-dihydrosteroids, bacterial P5βRs were mined and their catalytic activities against progesterone and 8-oxogeranial were investigated. Similar to plant-derived PRISEs (progesterone 5β-reductase and/or iridoid synthase-like 1,4-enone reductases), bacterial P5βRs also exhibit divergent substrate preferences despite maintaining highly conserved protein sequences and structural architectures. Through integrated sequence-structure comparative analysis, a conformational switch controlling substrate selectivity was identified, which allows precise tuning of substrate preference in bacterial P5βR. Molecular dynamics (MD) simulation results indicate that the mutant M1 can open the cavity B within the substrate binding pocket, allowing the linear substrate 8-oxogeranial to stably bind. Furthermore, a substrate characteristics-oriented rational strategy was proposed to further enhance the catalytic activity of bacterial P5βR toward steroids. The progesterone catalytic efficiency of the optimal mutant LpP5βR-M5 was increased by more than 700-fold compared with the wild type. The gram-level preparation of 5β-pregnane-3,20-dione showed that LpP5βR-M5 could almost completely convert 28 g/L progesterone within 2 h (conv. >98%), and the space-time yield (STY) was as high as 330 g/L·d. In addition, the structural basis for the improved catalytic activity of LpP5βR-M5 was explored employing MD simulation and caver analysis. This study not only elucidates the structure–function relationship of bacterial P5βR but also pioneers an environmentally friendly biocatalytic pathway for 5β-dihydrosteroid synthesis.
期刊介绍:
ACS Catalysis is an esteemed journal that publishes original research in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. It offers broad coverage across diverse areas such as life sciences, organometallics and synthesis, photochemistry and electrochemistry, drug discovery and synthesis, materials science, environmental protection, polymer discovery and synthesis, and energy and fuels.
The scope of the journal is to showcase innovative work in various aspects of catalysis. This includes new reactions and novel synthetic approaches utilizing known catalysts, the discovery or modification of new catalysts, elucidation of catalytic mechanisms through cutting-edge investigations, practical enhancements of existing processes, as well as conceptual advances in the field. Contributions to ACS Catalysis can encompass both experimental and theoretical research focused on catalytic molecules, macromolecules, and materials that exhibit catalytic turnover.