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Structural Elements Involved in ATP Hydrolysis Inhibition and ATP Synthesis of Tuberculosis and Nontuberculous Mycobacterial F-ATP Synthase Decipher New Targets for Inhibitors.


ABSTRACT: The F1FO-ATP synthase is required for the viability of tuberculosis (TB) and nontuberculous mycobacteria (NTM) and has been validated as a drug target. Here, we present the cryo-EM structures of the Mycobacterium smegmatis F1-ATPase and the F1FO-ATP synthase with different nucleotide occupation within the catalytic sites and visualize critical elements for latent ATP hydrolysis and efficient ATP synthesis. Mutational studies reveal that the extended C-terminal domain (αCTD) of subunit α is the main element for the self-inhibition mechanism of ATP hydrolysis for TB and NTM bacteria. Rotational studies indicate that the transition between the inhibition state by the αCTD and the active state is a rapid process. We demonstrate that the unique mycobacterial γ-loop and subunit δ are critical elements required for ATP formation. The data underline that these mycobacterium-specific elements of α, γ, and δ are attractive targets, providing a platform for the discovery of species-specific inhibitors.

SUBMITTER: Wong CF 

PROVIDER: S-EPMC9764993 | biostudies-literature | 2022 Dec

REPOSITORIES: biostudies-literature

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Structural Elements Involved in ATP Hydrolysis Inhibition and ATP Synthesis of Tuberculosis and Nontuberculous Mycobacterial F-ATP Synthase Decipher New Targets for Inhibitors.

Wong Chui Fann CF   Saw Wuan-Geok WG   Basak Sandip S   Sano Mio M   Ueno Hiroshi H   Kerk Hwee Wen HW   Litty Dennis D   Ragunathan Priya P   Dick Thomas T   Müller Volker V   Noji Hiroyuki H   Grüber Gerhard G  

Antimicrobial agents and chemotherapy 20221129 12


The F<sub>1</sub>F<sub>O</sub>-ATP synthase is required for the viability of tuberculosis (TB) and nontuberculous mycobacteria (NTM) and has been validated as a drug target. Here, we present the cryo-EM structures of the Mycobacterium smegmatis F<sub>1</sub>-ATPase and the F<sub>1</sub>F<sub>O</sub>-ATP synthase with different nucleotide occupation within the catalytic sites and visualize critical elements for latent ATP hydrolysis and efficient ATP synthesis. Mutational studies reveal that the  ...[more]

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