Oleic acid based experimental evolution of Bacillus megaterium yielding an enhanced P450 BM3 variant

被引:2
作者
Vincent, Thierry [1 ]
Gaillet, Bruno [1 ]
Garnier, Alain [1 ]
机构
[1] Univ Laval, Dept Chem Engn, Quebec City, PQ G1V 0A6, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
BM3; Experimental evolution; Biocatalysis; Enzyme engineering; p450; FATTY-ACIDS; CYTOCHROME-P450; ENZYMES; PERFLUOROCARBOXYLIC ACIDS; HYDROXYLATION; MONOOXYGENASE; OXIDATION; FUNCTIONALIZATION; BIOTECHNOLOGY; CHEMISTRY; HISTORY;
D O I
10.1186/s12896-022-00750-w
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Background Unlike most other P450 cytochrome monooxygenases, CYP102A1 from Bacillus megaterium (BM3) is both soluble and fused to its redox partner forming a single polypeptide chain. Like other monooxygenases, it can catalyze the insertion of oxygen unto the carbon-hydrogen bond which can result in a wide variety of commercially relevant products for pharmaceutical and fine chemical industries. However, the instability of the enzyme holds back the implementation of a BM3-based biocatalytic industrial processes due to the important enzyme cost it would prompt. Results In this work, we sought to enhance BM3's total specific product output by using experimental evolution, an approach not yet reported to improve this enzyme. By exploiting B. megaterium's own oleic acid metabolism, we pressed the evolution of a new variant of BM3, harbouring 34 new amino acid substitutions. The resulting variant, dubbed DE, increased the conversion of the substrate 10-pNCA to its product p-nitrophenolate 1.23 and 1.76-fold when using respectively NADPH or NADH as a cofactor, compared to wild type BM3. Conclusions This new DE variant, showed increased organic cosolvent tolerance, increased product output and increased versatility in the use of either nicotinamide cofactors NADPH and NADH. Experimental evolution can be used to evolve or to create libraries of evolved BM3 variants with increased productivity and cosolvent tolerance. Such libraries could in turn be used in bioinformatics to further evolve BM3 more precisely. The experimental evolution results also supports the hypothesis which surmises that one of the roles of BM3 in Bacillus megaterium is to protect it from exogenous unsaturated fatty acids by breaking them down.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Epoxidation of perillyl alcohol by engineered bacterial cytochrome P450 BM3
    Park, Chan Mi
    Cha, Gun Su
    Jeong, Hae Chan
    Lee, Yu-jin
    Kim, Jeong-Hoon
    Chung, Moon-Soo
    Lee, Sungbeom
    Yun, Chul-Ho
    ENZYME AND MICROBIAL TECHNOLOGY, 2024, 180
  • [22] Artificial Fusions between P450 BM3 and an Alcohol Dehydrogenase for Efficient (+)-Nootkatone Production
    Kokorin, Arsenij
    Urlacher, Vlada B.
    CHEMBIOCHEM, 2022, 23 (12)
  • [23] Flavocytochrome P450 BM3 mutant W1046A is a NADH-dependent fatty acid hydroxylase: Implications for the mechanism of electron transfer in the P450 BM3 dimer
    Girvan, Hazel M.
    Dunford, Adrian J.
    Neeli, Rajasekhar
    Ekanem, Idorenyin S.
    Waltham, Timothy N.
    Joyce, M. Gordon
    Leys, David
    Curtis, Robin A.
    Williams, Paul
    Fisher, Karl
    Voice, Michael W.
    Munro, Andrew W.
    ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2011, 507 (01) : 75 - 85
  • [24] Mechanisms of Electron Transfer Rate Modulations in Cytochrome P450 BM3
    Dixit, Vaibhav A.
    Murty, Upadhyayula Suryanarayana
    Bajaj, Priyanka
    Blumberger, Jochen
    de Visser, Sam P.
    JOURNAL OF PHYSICAL CHEMISTRY B, 2022, 126 (47) : 9737 - 9747
  • [25] An Enzymatic Route to α-Tocopherol Synthons: Aromatic Hydroxylation of Pseudocumene and Mesitylene with P450 BM3
    Dennig, Alexander
    Weingartner, Alexandra Maria
    Kardashliev, Tsvetan
    Mueller, Christina Andrea
    Tassano, Erika
    Schuermann, Martin
    Ruff, Anna Joelle
    Schwaneberg, Ulrich
    CHEMISTRY-A EUROPEAN JOURNAL, 2017, 23 (71) : 17981 - 17991
  • [26] A 96-multiplex capillary electrophoresis screening platform for product based evolution of P450 BM3
    Gaertner, Anna
    Ruff, Anna Joelle
    Schwaneberg, Ulrich
    SCIENTIFIC REPORTS, 2019, 9 (1)
  • [27] Regio- and stereoselective hydroxylation of 10-undecenoic acid with a light-driven P450 BM3 biocatalyst yielding a valuable synthon for natural product synthesis
    Kato, Mallory
    Nguyen, Daniel
    Gonzalez, Melissa
    Cortez, Alejandro
    Mullen, Sarah E.
    Cheruzel, Lionel E.
    BIOORGANIC & MEDICINAL CHEMISTRY, 2014, 22 (20) : 5687 - 5691
  • [28] Engineering the biomimetic cofactors of NMNH for cytochrome P450 BM3 based on binding conformation refinement
    Liu, Yao
    Cong, Yalong
    Zhang, Chuanxi
    Fang, Bohuan
    Pan, Yue
    Li, Qiangzi
    You, Chun
    Gao, Bei
    Zhang, John Z. H.
    Zhu, Tong
    Zhang, Lujia
    RSC ADVANCES, 2021, 11 (20) : 12036 - 12042
  • [29] Biosynthesis of a steroid metabolite by an engineered Rhodococcus erythropolis strain expressing a mutant cytochrome P450 BM3 enzyme
    Venkataraman, Harini
    te Poele, Evelien M.
    Rosloniec, Kamila Z.
    Vermeulen, Nico
    Commandeur, Jan N. M.
    van der Geize, Robert
    Dijkhuizen, Lubbert
    APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2015, 99 (11) : 4713 - 4721
  • [30] Regio- and Stereoselective Hydroxylation of Optically Active α-Ionone Enantiomers by Engineered Cytochrome P450 BM3 Mutants
    Venkataraman, Harini
    de Beer, Stephanie B. A.
    Geerke, Daan P.
    Vermeulen, Nico P. E.
    Commandeur, Jan N. M.
    ADVANCED SYNTHESIS & CATALYSIS, 2012, 354 (11-12) : 2172 - 2184