Target intelligence / Profile preview

Bacterial oxidative phosphorylation system (OXPHOS) (OXPHOS)

Target
OXPHOS
Molecular classification
Enzyme, Transporter, Protein complex
01

Overview

The bacterial bioenergetic machinery is a sophisticated system of membrane-bound protein complexes and enzymes that drive energy production through oxidative phosphorylation (Cook et al., 2017). This machinery primarily includes the electron transport chain (ETC)—comprising NADH dehydrogenases, succinate dehydrogenases, and terminal oxidases like the cytochrome bc1 and cytochrome bd complexes—and the F1Fo-ATP synthase (Hards et al., 2018). These components work in concert to generate a transmembrane electrochemical gradient, known as the proton motive force, which is then utilized by ATP synthase to produce ATP from ADP and inorganic phosphate (NIH, 2013). This system is vital for bacterial growth and survival, particularly for persistent or dormant cells that rely on efficient energy management to withstand environmental stress and antibiotic pressure (Cook et al., 2017). In drug development, the bacterial bioenergetic machinery has emerged as a high-value target space, especially for treating Mycobacterium tuberculosis (Pethe et al., 2013). Inhibitors such as bedaquiline target the ATP synthase, while others like telacebec (Q203) target the cytochrome bc1 complex, leading to energy depletion and bacterial cell death (Cook et al., 2017). Targeting bioenergetics is particularly valuable because it can kill both actively replicating and metabolically dormant bacilli that are often resistant to conventional antibiotics (NIH, 2017).

Other names
Bacterial bioenergetic machineryBacterial respiratory chainBacterial electron transport chainBacterial energy generating machinery
02

Mechanism of action

Inhibition of F1Fo-ATP synthase, inhibition of the cytochrome bc1 complex (QcrB), inhibition of cytochrome bd oxidase, uncoupling of the transmembrane electrochemical gradient (proton motive force), and inhibition of NADH dehydrogenase.

03

Biological functions

ATP synthesisEnergy metabolismProton motive force generationCellular respiration
04

Disease associations

Infection
05

Safety considerations

Potential cross-reactivity with human mitochondrial oxidative phosphorylation componentsQT interval prolongation (associated with bedaquiline)HepatotoxicityDevelopment of antimicrobial resistance through target mutations (e.g., atpE or qcrB)
06

Interacting drugs

Bedaquiline

6 more in the full profile.

07

Biomarkers

Intracellular ATP concentrationOxygen consumption rate (OCR)Transmembrane electrochemical potential (Δψ)

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