Cryo-EM of native membranes reveals an intimate connection between the Krebs cycle and aerobic respiration in mycobacteria

J Justin M. Di Trani (Molecular Medicine Program, The Hospital for Sick Children) J Jiacheng Yu (Molecular Medicine Program, The Hospital for Sick Children) G Gautier M. Courbon (Molecular Medicine Program, The Hospital for Sick Children) A Ana Paula Lobez Rodriguez (Department of Biochemistry and Biophysics, The Arrhenius Laboratories for Natural Sciences, Stockholm University) C Chen-Yi Cheung (Department of Microbiology and Immunology, University of Otago) Y Yingke Liang (Molecular Medicine Program, The Hospital for Sick Children) C Claire E. Coupland (Molecular Medicine Program, The Hospital for Sick Children) S Stephanie A. Bueler (Molecular Medicine Program, The Hospital for Sick Children) G Gregory M. Cook (Department of Microbiology and Immunology, University of Otago) P Peter Brzezinski (Department of Biochemistry and Biophysics, The Arrhenius Laboratories for Natural Sciences, Stockholm University) J John L. Rubinstein (Molecular Medicine Program, The Hospital for Sick Children)

Abstract

To investigate the structure of the mycobacterial oxidative phosphorylation machinery, we prepared inverted membrane vesicles from Mycobacterium smegmatis , enriched for vesicles containing complexes of interest, and imaged the vesicles with electron cryomicroscopy. We show that this analysis allows determination of the structure of both mycobacterial ATP synthase and the supercomplex of respiratory complexes III and IV in their native membrane. The latter structure reveals that the enzyme malate:quinone oxidoreductase (Mqo) physically associates with the respiratory supercomplex, an interaction that is lost on extraction of the proteins from the lipid bilayer. Mqo catalyzes an essential reaction in the Krebs cycle, and in vivo survival of mycobacterial pathogens is compromised when its activity is absent. We show with high-speed spectroscopy that the Mqo:supercomplex interaction enables rapid electron transfer from malate to the supercomplex. Further, the respiratory supercomplex is necessary for malate-driven, but not NADH-driven, electron transport chain activity and oxygen consumption. Together, these findings indicate a connection between the Krebs cycle and aerobic respiration that directs electrons along a single branch of the mycobacterial electron transport chain.

Article Details

Volume / Issue Vol. 122, Issue 8
Published February 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

J

Justin M. Di Trani

Molecular Medicine Program, The Hospital for Sick Children

J

Jiacheng Yu

Molecular Medicine Program, The Hospital for Sick Children

G

Gautier M. Courbon

Molecular Medicine Program, The Hospital for Sick Children

A

Ana Paula Lobez Rodriguez

Department of Biochemistry and Biophysics, The Arrhenius Laboratories for Natural Sciences, Stockholm University

C

Chen-Yi Cheung

Department of Microbiology and Immunology, University of Otago

Y

Yingke Liang

Molecular Medicine Program, The Hospital for Sick Children

C

Claire E. Coupland

Molecular Medicine Program, The Hospital for Sick Children

S

Stephanie A. Bueler

Molecular Medicine Program, The Hospital for Sick Children

G

Gregory M. Cook

Department of Microbiology and Immunology, University of Otago

P

Peter Brzezinski

Department of Biochemistry and Biophysics, The Arrhenius Laboratories for Natural Sciences, Stockholm University

J

John L. Rubinstein

Molecular Medicine Program, The Hospital for Sick Children