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Autoxidation of a C2-Olefinated Dihydroartemisinic Acid Analogue to Form an Aromatic Ring: Application to Serrulatene Biosynthesis
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    Autoxidation of a C2-Olefinated Dihydroartemisinic Acid Analogue to Form an Aromatic Ring: Application to Serrulatene Biosynthesis
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    • Kaitlyn Varela
      Kaitlyn Varela
      Department of Chemistry, The University of Texas at San Antonio (UTSA), San Antonio, Texas 78249, United States
    • Hafij Al Mahmud
      Hafij Al Mahmud
      Biological Sciences, Texas Tech University, Lubbock, Texas 79409, United States
    • Hadi D. Arman
      Hadi D. Arman
      Department of Chemistry, The University of Texas at San Antonio (UTSA), San Antonio, Texas 78249, United States
    • Luis R. Martinez
      Luis R. Martinez
      Department of Oral Biology, University of Florida College of Dentistry, Center for Immunology and Transplantation, Center for Translational Research in Neurodegenerative Disease, and The Emerging Pathogens Institute, Gainesville, Florida 32610, United States
    • Catherine A. Wakeman
      Catherine A. Wakeman
      Biological Sciences, Texas Tech University, Lubbock, Texas 79409, United States
    • , and 
    • Francis K. Yoshimoto*
      Francis K. Yoshimoto
      Department of Chemistry, The University of Texas at San Antonio (UTSA), San Antonio, Texas 78249, United States
      *Tel: 210-458-5459. Email: [email protected]
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    Journal of Natural Products

    Cite this: J. Nat. Prod. 2022, 85, 4, 951–962
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    https://doi.org/10.1021/acs.jnatprod.1c01101
    Published March 31, 2022
    Copyright © 2022 American Chemical Society and American Society of Pharmacognosy

    Abstract

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    Dihydroartemisinic acid (DHAA) is a plant natural product that undergoes a spontaneous endoperoxide-forming cascade reaction to yield artemisinin in the presence of air. The endoperoxide functional group gives artemisinin its biological activity that kills Plasmodium falciparum, the parasite that causes malaria. To enhance our understanding of the mechanism of this cascade reaction, 2,3-didehydrodihydroartemisinic acid (2,3-didehydro-DHAA), a DHAA derivative with a double bond at the C2-position, was synthesized. When 2,3-didehydro-DHAA was exposed to air over time, instead of forming an endoperoxide, this compound predominantly underwent aromatization. This olefinated DHAA analogue reveals the requirement of a monoalkene functional group to initiate the endoperoxide-forming cascade reaction to yield artemisinin from DHAA. In addition, this aromatization process was exploited to illustrate the autoxidation process of a different plant natural product, dihydroserrulatene, to form the aromatic ring in serrulatene. This spontaneous aromatization process has applications in other natural products such as leubethanol and erogorgiaene. Due to their similarity in structure to antimicrobial natural products, the synthesized compounds in this study were tested for biological activity. A group of the tested compounds had minimum inhibitory concentration (MIC) values ranging from 12.5 to 25 μg/mL against the bacterial pathogen Staphylococcus aureus and the fungal pathogen Cryptococcus neoformans.

    Copyright © 2022 American Chemical Society and American Society of Pharmacognosy

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    Supporting Information

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    The Supporting Information is available free of charge at https://pubs.acs.org/doi/10.1021/acs.jnatprod.1c01101.

    • Synthesis of the compounds in the main text, NMR data of synthesized compounds, LCMS time course studies of the spontaneous aromatization process, testing of antimicrobial activities, X-ray crystal structure data of the compound reported, and structural overlay procedure using Chem3D (PDF)

    • X-ray data of compound 22 (CIF)

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    Most electronic Supporting Information files are available without a subscription to ACS Web Editions. Such files may be downloaded by article for research use (if there is a public use license linked to the relevant article, that license may permit other uses). Permission may be obtained from ACS for other uses through requests via the RightsLink permission system: http://pubs.acs.org/page/copyright/permissions.html.

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    This article is cited by 3 publications.

    1. Hadi D. Arman, Tu M. Ho, Kaitlyn Varela, Cynthia S. Veliz, Richard B. Zanni, Armando Rodriguez, Zhiwei Wang, Francis K. Yoshimoto. Harnessing the Topics of Cytochrome P450 Enzymology and Artemisinin to Teach a Semester-Long Biochemistry Laboratory Course. Journal of Chemical Education 2023, 100 (6) , 2233-2242. https://doi.org/10.1021/acs.jchemed.2c01181
    2. Kaitlyn Varela, Francis K. Yoshimoto. Syntheses of deuterium-labeled dihydroartemisinic acid (DHAA) isotopologues and mechanistic studies focused on elucidating the conversion of DHAA to artemisinin. Organic & Biomolecular Chemistry 2024, 22 (43) , 8527-8550. https://doi.org/10.1039/D4OB00777H
    3. Marta Reguera-Gomez, Michael R Dores, Luis R Martinez. Innovative and potential treatments for fungal central nervous system infections. Current Opinion in Microbiology 2023, 76 , 102397. https://doi.org/10.1016/j.mib.2023.102397

    Journal of Natural Products

    Cite this: J. Nat. Prod. 2022, 85, 4, 951–962
    Click to copy citationCitation copied!
    https://doi.org/10.1021/acs.jnatprod.1c01101
    Published March 31, 2022
    Copyright © 2022 American Chemical Society and American Society of Pharmacognosy

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