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Updated: Jul 10, 2025

Measuring Phagosome pH by Ratiometric Fluorescence Microscopy
Published on: December 7, 2015
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.
Abstract:
Phagosomes are dynamic organelles formed by macrophages to capture and destroy microbial pathogens. Phagosome transport from the cell periphery to the perinuclear region, is essential for fusion with lysosomes and the elimination of pathogens. Molecular motors, kinesin and dynein, generate opposing forces, transporting the phagosome away from and towards the lysosome, respectively. Luminal acidification plays a crucial role in determining the net directional movement of the phagosome. The mechanics of this regulation are not known. In this study, we used the sodium proton exchanger NHE9 to selectively modulate phagosomal acidification in macrophages. We then investigated its impact on the mechanical properties of kinesin and dynein motors through optical trapping experiments. We observed a negative correlation between the tenacity of dynein motors and pH under high resistive forces. Reduced luminal acidification impaired generation of dynein cooperative forces, which are crucial for transporting the phagosome to the lysosome. Conversely, the kinesin-powered motility of phagosomes is enabled by a decrease in phagosomal acidification. Given the various methods pathogens employ to limit phagosomal acidification, our findings are highly significant in the context of host-pathogen interactions.
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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