Metabolic rewiring of isoniazid sensitivity in <i>Mycobacterium tuberculosis</i>

E Erin R. Wang (Department of Molecular Microbiology, Washington University School of Medicine) K Kevin Cho G Gregory A. Harrison (Department of Molecular Microbiology, Washington University School of Medicine) S Stephanie R. Smelyansky (Department of Chemistry) V Vijay Soni (Department of Medicine, Weill Cornell Medicine) A Asya Smirnov (Department of Molecular Microbiology, Washington University School of Medicine) S Samuel R. McKee (Department of Molecular Microbiology, Washington University School of Medicine) G George S. Ghabrial (Department of Molecular Microbiology, Washington University School of Medicine) K Kelly N. Flentie (Department of Molecular Microbiology, Washington University School of Medicine) W Wandy Beatty (Department of Molecular Microbiology, Washington University School of Medicine) B Boatema Ofori-Anyinam (Center for Emerging and Re-emerging Pathogens, Public Health Research Institute, Rutgers New Jersey Medical School) S Souvik Sarkar (New Chemistry Unit and School of Advanced Materials (SAMat), Jawaharlal Nehru Centre for Advanced Scientific Research (JNCASR), Jakkur, Bangalore 560064, India) T Thomas Hurtaux (Department of Molecular Microbiology, Washington University School of Medicine) L Liza Loza (Department of Molecular Microbiology, Washington University School of Medicine) F Fredrik Almqvist (Department of Chemistry, Umeå University) T Tamara L. Doering (Department of Molecular Microbiology, Washington University School of Medicine) J Jason H. Yang (Center for Emerging and Re-emerging Pathogens, Public Health Research Institute, Rutgers New Jersey Medical School) L Laura L. Kiessling K Kyu Y. Rhee (Department of Medicine, Weill Cornell Medicine) G Gary J. Patti C Christina L. Stallings (Department of Molecular Microbiology, Washington University School of Medicine)

Abstract

Isoniazid (INH) inhibits mycolic acid synthesis in Mycobacterium tuberculosis ( Mtb ) and is a cornerstone of treatment regimens against this deadly pathogen. However, over 10% of Mtb infections are INH-resistant. The compound C10 can sensitize clinically relevant INH-resistant mutants to killing by INH. Thus, understanding the mechanism of action for C10 could aid in designing new strategies for circumventing drug resistance. We find that C10 treatment reroutes carbon flux toward valine, drawing carbon away from gluconeogenesis and the TCA cycle. As a result, C10 decreases cell envelope capsule thickness and blocks an accumulation of peptidoglycan precursors that occurs in response to INH treatment in an INH-resistant Mtb katG mutant. In this altered metabolic state induced by C10, INH treatment of the INH-resistant Mtb katG mutant inhibits peptidoglycan synthesis, precipitating collapse of cell envelope integrity. Pyruvate supplementation relieves the C10-induced requirement for carbon flux toward valine, enhancing carbon assimilation into cell envelope precursors and restoring resistance to INH. In addition, we identify the formation of isoniazid-pyruvate in INH-treated katG W328L Mtb , where pyruvate sequesters INH, lowering the concentration of INH available to inhibit Mtb . Together, our findings reveal a bactericidal activity for INH in Mtb that can function in INH-resistant mutants independently of INH-mediated inhibition of mycolic acid synthesis. This activity for INH can be elicited by shifting carbon flux toward valine and away from cell envelope precursor synthesis, highlighting a metabolic vulnerability that can be exploited to kill INH-resistant Mtb .

Article Details

Volume / Issue Vol. 122, Issue 36
Published September 09, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (21)

E

Erin R. Wang

Department of Molecular Microbiology, Washington University School of Medicine

K

Kevin Cho

G

Gregory A. Harrison

Department of Molecular Microbiology, Washington University School of Medicine

S

Stephanie R. Smelyansky

Department of Chemistry

V

Vijay Soni

Department of Medicine, Weill Cornell Medicine

A

Asya Smirnov

Department of Molecular Microbiology, Washington University School of Medicine

S

Samuel R. McKee

Department of Molecular Microbiology, Washington University School of Medicine

G

George S. Ghabrial

Department of Molecular Microbiology, Washington University School of Medicine

K

Kelly N. Flentie

Department of Molecular Microbiology, Washington University School of Medicine

W

Wandy Beatty

Department of Molecular Microbiology, Washington University School of Medicine

B

Boatema Ofori-Anyinam

Center for Emerging and Re-emerging Pathogens, Public Health Research Institute, Rutgers New Jersey Medical School

S

Souvik Sarkar

New Chemistry Unit and School of Advanced Materials (SAMat), Jawaharlal Nehru Centre for Advanced Scientific Research (JNCASR), Jakkur, Bangalore 560064, India

T

Thomas Hurtaux

Department of Molecular Microbiology, Washington University School of Medicine

L

Liza Loza

Department of Molecular Microbiology, Washington University School of Medicine

F

Fredrik Almqvist

Department of Chemistry, Umeå University

T

Tamara L. Doering

Department of Molecular Microbiology, Washington University School of Medicine

J

Jason H. Yang

Center for Emerging and Re-emerging Pathogens, Public Health Research Institute, Rutgers New Jersey Medical School

L

Laura L. Kiessling

K

Kyu Y. Rhee

Department of Medicine, Weill Cornell Medicine

G

Gary J. Patti

C

Christina L. Stallings

Department of Molecular Microbiology, Washington University School of Medicine