Design and evolution of an enzyme with a non-canonical organocatalytic mechanism

被引:0
|
作者
Ashleigh J. Burke
Sarah L. Lovelock
Amina Frese
Rebecca Crawshaw
Mary Ortmayer
Mark Dunstan
Colin Levy
Anthony P. Green
机构
[1] University of Manchester,Manchester Institute of Biotechnology, School of Chemistry
来源
Nature | 2019年 / 570卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
The combination of computational design and laboratory evolution is a powerful and potentially versatile strategy for the development of enzymes with new functions1–4. However, the limited functionality presented by the genetic code restricts the range of catalytic mechanisms that are accessible in designed active sites. Inspired by mechanistic strategies from small-molecule organocatalysis5, here we report the generation of a hydrolytic enzyme that uses Nδ-methylhistidine as a non-canonical catalytic nucleophile. Histidine methylation is essential for catalytic function because it prevents the formation of unreactive acyl-enzyme intermediates, which has been a long-standing challenge when using canonical nucleophiles in enzyme design6–10. Enzyme performance was optimized using directed evolution protocols adapted to an expanded genetic code, affording a biocatalyst capable of accelerating ester hydrolysis with greater than 9,000-fold increased efficiency over free Nδ-methylhistidine in solution. Crystallographic snapshots along the evolutionary trajectory highlight the catalytic devices that are responsible for this increase in efficiency. Nδ-methylhistidine can be considered to be a genetically encodable surrogate of the widely employed nucleophilic catalyst dimethylaminopyridine11, and its use will create opportunities to design and engineer enzymes for a wealth of valuable chemical transformations.
引用
收藏
页码:219 / 223
页数:4
相关论文
共 50 条
  • [21] Canonical and non-canonical adenosinergic pathways
    Ferretti, E.
    Horenstein, A. L.
    Canzonetta, C.
    Costa, F.
    Morandi, F.
    IMMUNOLOGY LETTERS, 2019, 205 : 25 - 30
  • [22] Non-canonical gyrotrons
    Zapevalov, V. E.
    10TH INTERNATIONAL WORKSHOP 2017 STRONG MICROWAVES AND TERAHERTZ WAVES: SOURCES AND APPLICATIONS, 2017, 149
  • [23] Subjects in constructions - Canonical and non-canonical
    Holvoet, Axel
    CONSTRUCTIONS AND FRAMES, 2018, 10 (01) : 98 - 105
  • [24] Canonical and Non-canonical Reelin Signaling
    Bock, Hans H.
    May, Petra
    FRONTIERS IN CELLULAR NEUROSCIENCE, 2016, 10
  • [25] CANONICAL AND NON-CANONICAL NOTCH LIGANDS
    D'Souza, Brendan
    Meloty-Kapella, Laurence
    Weinmaster, Gerry
    NOTCH SIGNALING, 2010, 92 : 73 - 129
  • [26] Non-canonical passives
    Meltzer-Asscher, Aya
    JOURNAL OF LINGUISTICS, 2014, 50 (01) : 231 - 237
  • [27] Non-Canonical Gyrotrons
    V. E. Zapevalov
    Radiophysics and Quantum Electronics, 2018, 61 : 272 - 280
  • [28] The Non-Canonical Gospels
    Jacobs, Andrew S.
    CATHOLIC BIBLICAL QUARTERLY, 2010, 72 (02): : 409 - 410
  • [29] Non-canonical inteins
    Gorbalenya, AE
    NUCLEIC ACIDS RESEARCH, 1998, 26 (07) : 1741 - 1748
  • [30] Non-canonical functions
    Mangilet, A. F.
    NATURE PLANTS, 2024, 10 (10) : 1435 - 1435