Inhibition of type II NADH dehydrogenase in Mycobacterium tuberculosis reveals collateral vulnerability in the electron transport chain

ABSTRACT To sustain the anti-tuberculosis drug development pipeline, novel antibiotics must be developed both as standalone agents and as components of future combination regimens. To this end, tricyclic-spirolactams (TriSLa)-based inhibitors of mycobacterial type II NADH dehydrogenase (Ndh-2) represent a promising novel class of antibiotics, though activity is carbon source dependent. Initial studies established an enhanced understanding of the impact of TriSLa on mycobacteria using metabolomics and transcriptomics. Then, CRISPRi chemical-genetics and extensive in vitro TriSLa-combination studies showed that Ndh-2 inhibition resulted in rendering other components of the electron transport chain vulnerable, even in conditions when TriSLa was inactive alone. Finally, identified in vitro synergistic TriSLa-antibiotic combinations were validated to also give modestly improved in vivo efficacy. Together, this work expands our understanding of how Ndh-2 inhibition impacts bacterial physiology and reveals how it sensitizes the bacterium to electron transport chain inhibitors, providing a foundation for future TriSLa-based combination regimens.

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Publication Details

Journal
Antimicrobial Agents and Chemotherapy
Published
2026-09-24
DOI
https://doi.org/10.1128/aac.00756-26
Primary Topic
Enzyme Catalysis and Immobilization
Type
article
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article

Inhibition of type II NADH dehydrogenase in Mycobacterium tuberculosis reveals collateral vulnerability in the electron transport chain

Baptiste Villemagne, Clément Vigier, Sushovan Dam, Kamel Djaout et al.
Antimicrobial Agents and Chemotherapy
Enzyme Catalysis and Immobilization
article

Inhibition of type II NADH dehydrogenase in Mycobacterium tuberculosis reveals collateral vulnerability in the electron transport chain

Baptiste Villemagne, Clément Vigier, Sushovan Dam, Kamel Djaout, Ernesto Anoz‐Carbonell, Vincent Fontaine, Robert S. Jansen, Samsher Singh, Nicolas Véziris, Ruben Christiaan Hartkoorn, Aurélie Chauffour, Jonathan Chatagnon, Léo Faïon, Rudy Antoine, Nicolas Willand, Vien Q. T. Ho, Benoit P. Deprez, Kévin Pethe, Alexandra Aubry, Stéphanie Slupek
article en

Abstract

ABSTRACT To sustain the anti-tuberculosis drug development pipeline, novel antibiotics must be developed both as standalone agents and as components of future combination regimens. To this end, tricyclic-spirolactams (TriSLa)-based inhibitors of mycobacterial type II NADH dehydrogenase (Ndh-2) represent a promising novel class of antibiotics, though activity is carbon source dependent. Initial studies established an enhanced understanding of the impact of TriSLa on mycobacteria using metabolomics and transcriptomics. Then, CRISPRi chemical-genetics and extensive in vitro TriSLa-combination studies showed that Ndh-2 inhibition resulted in rendering other components of the electron transport chain vulnerable, even in conditions when TriSLa was inactive alone. Finally, identified in vitro synergistic TriSLa-antibiotic combinations were validated to also give modestly improved in vivo efficacy. Together, this work expands our understanding of how Ndh-2 inhibition impacts bacterial physiology and reveals how it sensitizes the bacterium to electron transport chain inhibitors, providing a foundation for future TriSLa-based combination regimens.

Antimicrobial Agents and Chemotherapy
Centre National de la Recherche Scientifique (FR), Radboud University Nijmegen (NL), Inserm (FR), Nanyang Technological University (SG), Institut Pasteur de Lille (FR), Radboud University Medical Center (NL), Sorbonne Université (FR), Assistance Publique – Hôpitaux de Paris (FR), Center for Infection and Immunity of Lille (FR), Radboud Institute for Molecular Life Sciences (NL), Laboratoire National de Référence (MA), Centre d'Immunologie et des Maladies Infectieuses (FR), Singapore Centre for Environmental Life Sciences Engineering (SG), National Center for Infectious Diseases (US), Living Systems (United States) (US)
Openalex Percentile: Top 19%
Enzyme Catalysis and Immobilization
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