Acidification of the phagosome orchestrates the motor forces directing its transport

Suvranta K Tripathy1, Habiba S Shamroukh1, Perla Fares1

  • 1Department of Natural Sciences, University of Michigan-Dearborn, 4901 Evergreen Road, Dearborn, MI, 48128, USA.

Insights

Phagosomal acidification regulates motor proteins crucial for pathogen destruction. Reduced acidity impairs dynein motor function but enhances kinesin, impacting host-pathogen interactions.

Area of Science:

  • Cell Biology
  • Immunology
  • Biophysics

Background:

  • Phagosomes are key to macrophage pathogen clearance.
  • Kinesin and dynein motors drive phagosome transport.
  • Luminal pH is critical for phagosome movement.

Purpose of the Study:

  • To investigate the role of phagosomal acidification in regulating motor protein mechanics.
  • To understand how NHE9 modulates phagosome transport dynamics.

Main Methods:

  • Utilized optical trapping to measure kinesin and dynein motor forces.
  • Manipulated phagosomal pH using the sodium proton exchanger NHE9 in macrophages.

Main Results:

  • Dynein motor tenacity negatively correlated with pH under high resistance.
  • Reduced acidification impaired dynein cooperative force generation.
  • Kinesin-powered phagosome motility increased with decreased acidification.

Conclusions:

  • Phagosomal pH is a critical regulator of motor protein function in phagosome transport.
  • Findings illuminate host-pathogen interactions where pathogens alter phagosomal pH.
  • This research provides mechanical insights into phagosome trafficking regulation.

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