1. Academic Validation
  2. Inhibition of DXR in the MEP pathway with lipophilic N-alkoxyaryl FR900098 analogs

Inhibition of DXR in the MEP pathway with lipophilic N-alkoxyaryl FR900098 analogs

  • RSC Med Chem. 2024 May 22;15(7):2422-2439. doi: 10.1039/d3md00642e.
Darean Bague 1 Ruiqin Wang 1 Dana Hodge 2 Marwa O Mikati 3 Jose S Roma 4 Helena I Boshoff 4 Allyson L Dailey 5 Misgina Girma 5 Robin D Couch 5 Audrey R Odom John 2 3 Cynthia S Dowd 1
Affiliations

Affiliations

  • 1 Department of Chemistry, George Washington University Washington D.C. 20052 USA [email protected].
  • 2 Division of Infectious Diseases, Children's Hospital of Philadelphia Philadelphia PA 19104 USA.
  • 3 Department of Molecular Microbiology, Washington University School of Medicine St. Louis MO 63110 USA.
  • 4 Tuberculosis Research Section, LCIM, NIAID/NIH Bethesda MD 20892 USA.
  • 5 Department of Chemistry and Biochemistry, George Mason University Fairfax VA 22030 USA.
Abstract

In Mycobacterium tuberculosis (Mtb) and Plasmodium falciparum (Pf), the methylerythritol phosphate (MEP) pathway is responsible for isoprene synthesis. This pathway and its products are vital to Bacterial/parasitic metabolism and survival, and represent an attractive set of drug targets due to their essentiality in these pathogens but absence in humans. The second step in the MEP pathway is the conversion of 1-deoxy-d-xylulose-5-phosphate (DXP) to MEP and is catalyzed by 1-deoxy-d-xylulose-5-phosphate reductoisomerase (DXR). Natural products fosmidomycin and FR900098 inhibit DXR, but are too polar to reach the desired target inside some cells, such as Mtb. Synthesized FR900098 analogs with lipophilic substitution in the position α to the phosphorous atom showed promise, resulting in increased activity against Mtb and Pf. Here, an α substitution, consisting of a 3,4-dichlorophenyl substituent, in combination with various O-linked alkylaryl substituents on the hydroxamate moiety is utilized in the synthesis of a novel series of FR900098 analogs. The purpose of the O-linked alkylaryl substituents is to further enhance DXR inhibition by extending the structure into the adjacent NADPH binding pocket, blocking the binding of both DXP and NADPH. Of the initial O-linked alkylaryl substituted analogs, compound 6e showed most potent activity against Pf parasites at 3.60 μM. Additional compounds varying the phenyl ring of 6e were synthesized. The most potent phosphonic acids, 6l and 6n, display nM activity against PfDXR and low μM activity against Pf parasites. Prodrugs of these compounds were less effective against Pf parasites but showed modest activity against Mtb cells. Data from this series of compounds suggests that this combination of substituents can be advantageous in designing a new generation of antimicrobials.

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