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Del Rio Flores A, Zhai R, Kastner DW, Seshadri K, Yang S, De Matias K, Shen Y, Cai W, Narayanamoorthy M, Do NB, Xue Z, Marzooqi DA, Kulik HJ, Zhang W. Enzymatic synthesis of azide by a promiscuous N-nitrosylase. Nat Chem 2024; 16:2066-2075. [PMID: 39333393 PMCID: PMC11611683 DOI: 10.1038/s41557-024-01646-2] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/18/2023] [Accepted: 08/29/2024] [Indexed: 09/29/2024]
Abstract
Azides are energy-rich compounds with diverse representation in a broad range of scientific disciplines, including material science, synthetic chemistry, pharmaceutical science and chemical biology. Despite ubiquitous usage of the azido group, the underlying biosynthetic pathways for its formation remain largely unknown. Here we report the characterization of an enzymatic route for de novo azide construction. We demonstrate that Tri17, a promiscuous ATP- and nitrite-dependent enzyme, catalyses organic azide synthesis through sequential N-nitrosation and dehydration of aryl hydrazines. Through biochemical, structural and computational analyses, we further propose a plausible molecular mechanism for azide synthesis that sets the stage for future biocatalytic applications and biosynthetic pathway engineering.
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Affiliation(s)
- Antonio Del Rio Flores
- Department of Chemical and Biomolecular Engineering, University of California Berkeley, Berkeley, CA, USA
| | - Rui Zhai
- Department of Chemical and Biomolecular Engineering, University of California Berkeley, Berkeley, CA, USA
| | - David W Kastner
- Department of Bioengineering, Massachusetts Institute of Technology, Cambridge, MA, USA
- Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA
| | - Kaushik Seshadri
- Department of Chemical and Biomolecular Engineering, University of California Berkeley, Berkeley, CA, USA
| | - Siyue Yang
- Department of Chemistry, University of California Berkeley, Berkeley, CA, USA
| | - Kyle De Matias
- Department of Chemical and Biomolecular Engineering, University of California Berkeley, Berkeley, CA, USA
| | - Yuanbo Shen
- Department of Chemistry, University of California Berkeley, Berkeley, CA, USA
| | - Wenlong Cai
- Department of Chemical and Biomolecular Engineering, University of California Berkeley, Berkeley, CA, USA
| | | | - Nicholas B Do
- Department of Chemical and Biomolecular Engineering, University of California Berkeley, Berkeley, CA, USA
| | - Zhaoqiang Xue
- Department of Chemical and Biomolecular Engineering, University of California Berkeley, Berkeley, CA, USA
| | - Dunya Al Marzooqi
- Department of Chemical and Biomolecular Engineering, University of California Berkeley, Berkeley, CA, USA
| | - Heather J Kulik
- Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.
- Department of Chemistry, Massachusetts Institute of Technology, Cambridge, MA, USA.
| | - Wenjun Zhang
- Department of Chemical and Biomolecular Engineering, University of California Berkeley, Berkeley, CA, USA.
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Ramarajan M, Devilla R, Dow L, Walsh N, Mead O, Zakeel MC, Gallart M, Richardson AE, Thatcher LF. Genomic and Untargeted Metabolomic Analysis of Secondary Metabolites in the Streptomyces griseoaurantiacus Strain MH191 Shows Media-Based Dependency for the Production of Bioactive Compounds with Potential Antifungal Activity. JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY 2024; 72:24432-24448. [PMID: 39440812 PMCID: PMC11544706 DOI: 10.1021/acs.jafc.4c04989] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 06/06/2024] [Revised: 10/10/2024] [Accepted: 10/11/2024] [Indexed: 10/25/2024]
Abstract
Streptomyces species can form beneficial relationships with hosts as endophytes, including the phytopathogen-inhibiting strain, Streptomyces griseoaurantiacusMH191, isolated from wheat plants. Using genomic characterization and untargeted metabolomics, we explored the capacity of strain MH191 to inhibit a range of fungal phytopathogens through the production of secondary metabolites. Complete genome assembly of strain MH191 predicted 24 biosynthetic gene clusters. Secondary metabolite production was assessed following culture on six different media, with the detection of 205 putative compounds. Members of the manumycin family, undecylprodigiosin, and desferrioxamine were identified as the predominant metabolites. Antifungal activity was validated for undecylprodigiosin and manumycin. These compounds were produced from different BGCs, which showed similarity to asukamycin, undecylprodigiosin, and FW0622 gene clusters, respectively. The growth of strain MH191 on different media illustrated the metabolic regulation of these gene clusters and the strain's extended chemical potential, with the asukamycin gene cluster alone, producing a variety of antifungal metabolites. The study highlights the extended chemical capability of strain MH191, which could be exploited as a biological control agent for designing future crop protection solutions.
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Affiliation(s)
- Margaret Ramarajan
- CSIRO
Agriculture and Food, PO Box 1700, Acton, ACT, Acton 2601, Australia
| | - Rosangela Devilla
- CSIRO
Agriculture and Food, PO Box 1700, Acton, ACT, Acton 2601, Australia
| | - Lachlan Dow
- CSIRO
Agriculture and Food, PO Box 1700, Acton, ACT, Acton 2601, Australia
- CSIRO
Microbiomes for One Systems Health Future Science Platform, PO Box 1700, Acton, ACT, Canberra 2601, Australia
| | - Ned Walsh
- CSIRO
Agriculture and Food, PO Box 1700, Acton, ACT, Acton 2601, Australia
- CSIRO
Microbiomes for One Systems Health Future Science Platform, PO Box 1700, Acton, ACT, Canberra 2601, Australia
| | - Oliver Mead
- CSIRO
Environment, PO Box 1700, Acton, ACT, Canberra 2601, Australia
- CSIRO
Advanced Engineering Biology Future Science Platform, PO Box 1700, Acton, ACT, Canberra 2601, Australia
| | | | - Marta Gallart
- CSIRO
Agriculture and Food, PO Box 1700, Acton, ACT, Acton 2601, Australia
- CSIRO
Advanced Engineering Biology Future Science Platform, PO Box 1700, Acton, ACT, Canberra 2601, Australia
| | - Alan E. Richardson
- CSIRO
Agriculture and Food, PO Box 1700, Acton, ACT, Acton 2601, Australia
- CSIRO
Microbiomes for One Systems Health Future Science Platform, PO Box 1700, Acton, ACT, Canberra 2601, Australia
| | - Louise F. Thatcher
- CSIRO
Agriculture and Food, PO Box 1700, Acton, ACT, Acton 2601, Australia
- CSIRO
Microbiomes for One Systems Health Future Science Platform, PO Box 1700, Acton, ACT, Canberra 2601, Australia
- CSIRO
Advanced Engineering Biology Future Science Platform, PO Box 1700, Acton, ACT, Canberra 2601, Australia
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Carroll AR, Copp BR, Grkovic T, Keyzers RA, Prinsep MR. Marine natural products. Nat Prod Rep 2024; 41:162-207. [PMID: 38285012 DOI: 10.1039/d3np00061c] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/30/2024]
Abstract
Covering: January to the end of December 2022This review covers the literature published in 2022 for marine natural products (MNPs), with 645 citations (633 for the period January to December 2022) referring to compounds isolated from marine microorganisms and phytoplankton, green, brown and red algae, sponges, cnidarians, bryozoans, molluscs, tunicates, echinoderms, the submerged parts of mangroves and other intertidal plants. The emphasis is on new compounds (1417 in 384 papers for 2022), together with the relevant biological activities, source organisms and country of origin. Pertinent reviews, biosynthetic studies, first syntheses, and syntheses that led to the revision of structures or stereochemistries, have been included. An analysis of NP structure class diversity in relation to biota source and biome is discussed.
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Affiliation(s)
- Anthony R Carroll
- School of Environment and Science, Griffith University, Gold Coast, Australia.
- Griffith Institute for Drug Discovery, Griffith University, Brisbane, Australia
| | - Brent R Copp
- School of Chemical Sciences, University of Auckland, Auckland, New Zealand
| | - Tanja Grkovic
- Natural Products Branch, Developmental Therapeutics Program, Division of Cancer Treatment and Diagnosis, and Molecular Targets Program, Center for Cancer Research, National Cancer Institute, Frederick, MD, USA
| | - Robert A Keyzers
- Centre for Biodiscovery, and School of Chemical and Physical Sciences, Victoria University of Wellington, Wellington, New Zealand
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