Living GenoChemetics by hyphenating synthetic biology and synthetic chemistry in vivo

被引:0
|
作者
Sunil V. Sharma
Xiaoxue Tong
Cristina Pubill-Ulldemolins
Christopher Cartmell
Emma J. A. Bogosyan
Emma J. Rackham
Enrico Marelli
Refaat B. Hamed
Rebecca J. M. Goss
机构
[1] University of St Andrews,School of Chemistry
[2] BSRC,School of Chemistry
[3] University of St Andrews,School of Medicine
[4] University of East,undefined
[5] Analytical Development,undefined
[6] GSK,undefined
[7] Cobden Street,undefined
[8] University of East Anglia,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Marrying synthetic biology with synthetic chemistry provides a powerful approach toward natural product diversification, combining the best of both worlds: expediency and synthetic capability of biogenic pathways and chemical diversity enabled by organic synthesis. Biosynthetic pathway engineering can be employed to insert a chemically orthogonal tag into a complex natural scaffold affording the possibility of site-selective modification without employing protecting group strategies. Here we show that, by installing a sufficiently reactive handle (e.g., a C–Br bond) and developing compatible mild aqueous chemistries, synchronous biosynthesis of the tagged metabolite and its subsequent chemical modification in living culture can be achieved. This approach can potentially enable many new applications: for example, assay of directed evolution of enzymes catalyzing halo-metabolite biosynthesis in living cells or generating and following the fate of tagged metabolites and biomolecules in living systems. We report synthetic biological access to new-to-nature bromo-metabolites and the concomitant biorthogonal cross-coupling of halo-metabolites in living cultures.
引用
收藏
相关论文
共 50 条
  • [11] SYNTHETIC BIOLOGY Living quarters
    Armstrong, Rachel
    Spiller, Neil
    NATURE, 2010, 467 (7318) : 916 - 918
  • [12] Combining Synthetic Biology and Synthetic Chemistry to Dial in to New to Nature Peptidic Natural Products in vitro and in vivo
    Cartmell, Christopher
    Sharma, Sunil V.
    Xiaoxue, Tong
    Pubil-Ulldemolins, Cristina
    Bogosyan, Emma
    Rackham, Emma J.
    Morelli, Enrico
    Corr, Michael
    Goss, Rebecca J. M.
    JOURNAL OF PEPTIDE SCIENCE, 2018, 24 : S90 - S90
  • [13] Interfacing Living and Synthetic Cells as an Emerging Frontier in Synthetic Biology
    Elani, Yuval
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2021, 60 (11) : 5602 - 5611
  • [14] The generation of "unNatural" products: Synthetic biology meets synthetic chemistry
    Goss, Rebecca J. M.
    Shankar, Sreejith
    Abou Fayad, Antoine
    NATURAL PRODUCT REPORTS, 2012, 29 (08) : 870 - 889
  • [15] Synthetic Biology As a Replica of Synthetic Chemistry? Uses and Misuses of History
    Bensaude-Vincent B.
    Biological Theory, 2009, 4 (4) : 314 - 318
  • [16] Synthetic biology: lessons from the history of synthetic organic chemistry
    Yeh, Brian J.
    Lim, Wendell A.
    NATURE CHEMICAL BIOLOGY, 2007, 3 (09) : 521 - 525
  • [17] Synthetic biology: lessons from the history of synthetic organic chemistry
    Brian J Yeh
    Wendell A Lim
    Nature Chemical Biology, 2007, 3 : 521 - 525
  • [18] Engineering living therapeutics with synthetic biology
    Cubillos-Ruiz, Andres
    Guo, Tingxi
    Sokolovska, Anna
    Miller, Paul F.
    Collins, James J.
    Lu, Timothy K.
    Lora, Jose M.
    NATURE REVIEWS DRUG DISCOVERY, 2021, 20 (12) : 941 - 960
  • [19] Engineering living therapeutics with synthetic biology
    Andres Cubillos-Ruiz
    Tingxi Guo
    Anna Sokolovska
    Paul F. Miller
    James J. Collins
    Timothy K. Lu
    Jose M. Lora
    Nature Reviews Drug Discovery, 2021, 20 : 941 - 960
  • [20] Engineering living materials by synthetic biology
    Luo, Jiren
    Chen, Jiangfeng
    Huang, Yaoge
    You, Lingchong
    Dai, Zhuojun
    BIOPHYSICS REVIEWS, 2023, 4 (01):