Bicarbonate Alters Bacterial Susceptibility to Antibiotics by Targeting the Proton Motive Force

Maya A Farha1, Shawn French1, Jonathan M Stokes1

  • 1Michael G. DeGroote Institute for Infectious Disease Research, Department of Biochemistry and Biomedical Sciences , McMaster University , 1200 Main Street West , Hamilton , Ontario L8N 3Z5 , Canada.

ACS Infectious Diseases
|December 22, 2017
PubMed

Insights

Sodium bicarbonate enhances antibiotic effectiveness by disrupting bacterial pH gradients. This buffer also boosts innate immunity, offering new avenues for antibacterial drug development.

Area of Science:

  • Microbiology and Immunology
  • Biochemistry and Molecular Biology

Background:

  • The antibacterial mechanisms of sodium bicarbonate are not fully understood.
  • Bicarbonate is the dominant buffer in extracellular fluid, yet its role in innate immunity is unexplored.

Purpose of the Study:

  • To elucidate the molecular mechanism of sodium bicarbonate's antibacterial action.
  • To investigate the interaction between bicarbonate and conventional antibiotics.
  • To explore the effect of bicarbonate on components of innate immunity.

Main Methods:

  • Chemical-chemical combination assays to study antibiotic-bicarbonate interactions.
  • Mechanism of action studies focusing on the proton motive force and pH gradients.
  • Evaluation of bicarbonate's impact on the antimicrobial properties of innate immune components.

Main Results:

  • Bicarbonate altered the activity of eight classes of antibiotics.
  • At physiological concentrations, bicarbonate selectively dissipates the pH gradient across bacterial cytoplasmic membranes.
  • Physiological bicarbonate concentrations enhanced the antimicrobial activity of several innate immune components.

Conclusions:

  • Sodium bicarbonate acts as a potent antibiotic adjuvant by dissipating bacterial pH gradients.
  • Bicarbonate potentiates host innate immunity, suggesting an interplay between buffering systems and immune defense.
  • There is significant potential for developing novel antibacterial strategies by incorporating bicarbonate into drug discovery and testing paradigms.

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