Rational Design of Diaryl Ether-Based Dual Inhibitors Targeting Successive Essential Enzymes HadAB and InhA in Mycobacterium tuberculosis

  • J Med Chem. 2026 Jul 23;69(14):17366-17382. doi: 10.1021/acs.jmedchem.6c01302.
Rasoul Tamhaev  1  2 Deborah Recchia  3 Monika Záhorszká  4 Giovanni Stelitano  3 Laurent Robert Chiarelli  3 Julien Rizet  1  2 Julie Rima  2 Mélina Chebaiki  1  2 Lorena Valentin  1 Joëlle Azéma-Despeyroux  1 Pascal Hoffmann  1 Nadège Preuilh  2 Bastien Dumais  2 Sébastien Britton  2 Giulia Degiacomi  3 Laurent Maveyraud  2 Jana Korduláková  4 Maria Rosalia Pasca  3 Lionel Mourey  2 Christian Lherbet  1
Affiliations
  • 1. Univ Toulouse, CNRS, SPCMIB, 31062 Toulouse, France.
  • 2. Univ Toulouse, CNRS, IPBS, 31077 Toulouse, France.
  • 3. Dipartimento di Biologia e Biotecnologie, "Lazzaro Spallanzani", Via Ferrata 9, 27100 Pavia, Italy.
  • 4. Department of Biochemistry, Faculty of Natural Sciences, Comenius University in Bratislava, Mlynská dolina, Ilkovičova 6, 84215 Bratislava, Slovakia.
Abstract

The emergence of drug-resistant Mycobacterium tuberculosis underscores the need for innovative therapeutic strategies targeting essential metabolic pathways. We designed, synthesized, and evaluated a series of dual inhibitors targeting two key Enzymes of the mycobacterial FAS-II system, HadAB and InhA. Using a diaryl ether scaffold, six thiosemicarbazone derivatives and their aldehyde intermediates were prepared and tested for enzymatic and antimycobacterial activity. Thiosemicarbazone derivatives and aldehyde intermediates both strongly inhibited InhA, and the thiosemicarbazones additionally potentially inhibited HadAB through covalent interaction with the HadA subunit, supporting the dual-target approach. Several compounds showed low micromolar to submicromolar activity against drug-susceptible and clinical M. tuberculosis strains, including an ethA-deficient mutant. Crystallographic structures of InhA-ligand complexes revealed key binding interactions and clarified inhibition mechanisms. Despite some cytotoxicity concerns, these findings provide a promising basis for developing optimized dual-target inhibitors of the M. tuberculosis FAS-II pathway.

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