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Synthesis of pH Dependent Pyrazole, Imidazole, and Isoindolone Dipyrrinone Fluorophores using a Claisen-Schmidt Condensation Approach
Published on: June 10, 2021
Mutasynthesis generates nine new pyrroindomycins
Zhuhua Wu1,2, Zhengxiang Xia2,3, Zhijun Tang2
1National key Laboratory of Lead druggability Research, Shanghai Institute of Pharmaceutical Industry, China State Institute of Pharmaceutical Industry, 285 Copernicus Road, Shanghai 201203, China. liji_an@hotmail.com.
Abstract:
Pyrroindomycins (PYRs) represent the only spirotetramate natural products discovered in nature, and possess potent activities against methicillin-resistant Staphylococcus aureus and vancomycin-resistant Enterococcus faecium. Their unique structure and impressive biological activities make them attractive targets for synthesis and biosynthesis; however, the discovery and generation of new PYRs remains challenging. To date, only the initial components A and B have been reported. Herein, we report a mutasynthesis approach for the generation of nine new PYRs with varying acyl modifications on their deoxy-trisaccharide moieties. This was achieved by blocking the formation of the acyl group 1,8-dihydropyrrolo[2,3-b]indole (DHPI) via gene pyrK1 inactivation and supplying chemical acyl precursors. The gene pyrK1 encodes a DUF1864 family protein that probably catalyzes the oxidative transformation of L-tryptophan to DHPI, and its deletion results in the abolishment of DHPI-containing PYRs and the accumulation of three new PYRs either without acyl modification or with DHPI replaced by benzoic acid and pyrrole-2-carboxylic acid. Capitalizing on the capacity of the ΔpyrK1 mutant to produce new PYRs, we have successfully developed a mutasynthesis strategy for the generation of six novel PYR analogs with various aromatic acid modifications on their deoxy-trisaccharide moieties, showcasing the potential for generating structurally diverse PYRs. Overall, this research contributes significantly to understanding the biosynthesis of PYRs and offers valuable perspectives on their structural diversity.
Insights
Researchers generated nine new pyrroindomycins (PYRs) using a mutasynthesis approach. This method modifies PYRs by blocking specific gene functions and supplying chemical precursors, expanding the diversity of these potent natural products.
Area of Science:
- Natural Product Chemistry
- Microbiology
- Synthetic Biology
Background:
- Pyrroindomycins (PYRs) are unique spirotetramate natural products with potent antimicrobial activity against resistant bacteria.
- Discovery and generation of novel PYRs are challenging, with only PYR A and B previously reported.
Purpose of the Study:
- To develop a mutasynthesis strategy for generating new pyrroindomycin analogs.
- To explore the structural diversity of PYRs through acyl modification.
Main Methods:
- Gene inactivation of pyrK1 to block 1,8-dihydropyrrolo[2,3-b]indole (DHPI) formation.
- Supplying chemical acyl precursors to a ΔpyrK1 mutant.
- Utilizing the mutant's capacity to produce novel PYRs with varied acyl groups.
Main Results:
- Generated nine new PYRs with modified deoxy-trisaccharide moieties.
- Demonstrated successful replacement of DHPI with benzoic acid and pyrrole-2-carboxylic acid.
- Produced six novel PYR analogs with diverse aromatic acid modifications.
Conclusions:
- The mutasynthesis approach is effective for generating structurally diverse pyrroindomycins.
- This research enhances understanding of PYR biosynthesis.
- Provides valuable insights into expanding the chemical space of PYRs.
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