A pilot study of mitochondrial response to an in vivo prosthetic joint Staphylococcus aureus infection model

Nour Bouji1, Ethan Meadows2, John M Hollander2

  • 1Department of Orthopaedics, Health Sciences Center-WVU School of Medicine, Morgantown, West Virginia, USA.

Insights

Prosthetic joint infections (PJI) impair local tissue mitochondrial function, leading to reduced respiration and potential oxidative damage. This pilot study reveals PJI

Area of Science:

  • Orthopaedic Surgery
  • Mitochondrial Biology
  • Infectious Diseases

Background:

  • Prosthetic joint infections (PJI) contribute significantly to orthopaedic morbidity and mortality.
  • Mitochondria are critical in cellular responses to infection and sepsis.
  • The impact of PJI on mitochondrial function remains poorly understood, hindering effective patient care.

Purpose of the Study:

  • To investigate the effects of simulated PJI on local tissue mitochondrial function in an in vivo model.
  • To assess mitochondrial respiration, electron transport chain activity, and oxidative stress in infected versus non-infected limbs.

Main Methods:

  • An established in vivo model of prosthetic implant-associated infection using methicillin-sensitive Staphylococcus aureus.
  • Mitochondrial coupling assays to measure oxygen consumption rate and extracellular acidification rate.
  • Electron Paramagnetic Resonance (EPR) spectrometry to assess reactive oxygen species levels.

Main Results:

  • Significant reduction in maximal respiration and adenosine triphosphate synthesis-linked oxygen consumption in mitochondria from infected limbs (p=0.04).
  • No significant differences observed in the activity of mitochondrial complexes I, III, IV, and V between groups (p>0.1).
  • Similar reactive oxygen species levels, as measured by EPR, in serum samples from infected and non-infected groups (p=0.73).

Conclusions:

  • This pilot study demonstrates that PJI significantly impairs mitochondrial function at the local tissue level.
  • Findings suggest PJI contributes to mitochondrial dysfunction and potential oxidative tissue damage.
  • Understanding these mechanisms can guide the development of novel therapeutic interventions for PJI.

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