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Updated: Apr 20, 2026

Time-lapse 3D Imaging of Phagocytosis by Mouse Macrophages
Published on: October 19, 2018
Macrophages phagocytose nonopsonized silica particles using a unique microtubule-dependent pathway
Renée M Gilberti1, David A Knecht2
1Department of Molecular and Cell Biology, University of Connecticut, Storrs, CT 06269.
Abstract:
Silica inhalation leads to the development of the chronic lung disease silicosis. Macrophages are killed by uptake of nonopsonized silica particles, and this is believed to play a critical role in the etiology of silicosis. However, the mechanism of nonopsonized-particle uptake is not well understood. We compared the molecular events associated with nonopsonized- and opsonized-particle phagocytosis. Both Rac and RhoA GTPases are activated upon nonopsonized-particle exposure, whereas opsonized particles activate either Rac or RhoA. All types of particles quickly generate a PI(3,4,5)P3 and F-actin response at the particle attachment site. After formation of a phagosome, the events related to endolysosome-to-phagosome fusion do not significantly differ between the pathways. Inhibitors of tyrosine kinases, actin polymerization, and the phosphatidylinositol cascade prevent opsonized- and nonopsonized-particle uptake similarly. Inhibition of silica particle uptake prevents silica-induced cell death. Microtubule depolymerization abolished uptake of complement-opsonized and nonopsonized particles but not Ab-opsonized particles. Of interest, regrowth of microtubules allowed uptake of new nonopsonized particles but not ones bound to cells in the absence of microtubules. Although complement-mediated uptake requires macrophages to be PMA-primed, untreated cells phagocytose nonopsonized silica and latex. Thus it appears that nonopsonized-particle uptake is accomplished by a pathway with unique characteristics.
Insights
Silica particle uptake by macrophages, a key step in silicosis, involves unique molecular pathways distinct from typical phagocytosis. Understanding this mechanism is crucial for preventing silica-induced lung disease.
Area of Science:
- Cell Biology
- Immunology
- Toxicology
Background:
- Silica inhalation causes silicosis, a chronic lung disease linked to macrophage death.
- Macrophage uptake of non-opsonized silica particles is critical but poorly understood.
- This study investigates the molecular mechanisms of non-opsonized particle phagocytosis.
Purpose of the Study:
- To compare molecular events in non-opsonized and opsonized particle phagocytosis.
- To elucidate the pathway of non-opsonized silica particle uptake by macrophages.
Main Methods:
- Compared Rac and RhoA GTPase activation upon particle exposure.
- Analyzed phosphatidylinositol (3,4,5)-trisphosphate (PI(3,4,5)P3) and F-actin responses.
- Investigated effects of inhibitors (tyrosine kinases, actin, phosphatidylinositol cascade) and microtubule depolymerization on particle uptake.
Main Results:
- Non-opsonized particles activate both Rac and RhoA GTPases; opsonized particles activate either Rac or RhoA.
- Both particle types induce PI(3,4,5)P3 and F-actin at the attachment site.
- Microtubule depolymerization inhibits uptake of non-opsonized and complement-opsonized particles, but not antibody-opsonized particles.
Conclusions:
- Non-opsonized particle uptake utilizes a distinct pathway involving unique molecular signaling.
- Inhibiting particle uptake effectively prevents silica-induced macrophage cell death.
- Understanding these unique pathways may offer novel therapeutic targets for silicosis.
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