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Time-lapse 3D Imaging of Phagocytosis by Mouse Macrophages
Published on: October 19, 2018
Time-lapse 3D Imaging of Phagocytosis by Mouse Macrophages
Markus Horsthemke1, Janine Wilden1, Anne C Bachg1
1Institut für Molekulare Zellbiologie.
Abstract:
Phagocytosis plays a key role in host defense, as well as in tissue development and maintenance, and involves rapid, receptor-mediated rearrangements of the actin cytoskeleton to capture, envelop and engulf large particles. Although phagocytic receptors, downstream signaling pathways, and effectors, such as Rho GTPases, have been identified, the dynamic cytoskeletal remodeling of specific receptor-mediated phagocytic events remain unclear. Four decades ago, two distinct mechanisms of phagocytosis, exemplified by Fcγ receptor (FcγR)- and complement receptor (CR)-mediated phagocytosis, were identified using scanning electron microscopy. Binding of immunoglobulin G (IgG)-opsonized particles to FcγRs triggers the protrusion of thin membrane extensions, which initially form a so-called phagocytic cup around the particle before it becomes completely enclosed and retracted into the cell. In contrast, complement opsonized particles appear to sink into the phagocyte following binding to complement receptors. These two modes of phagocytosis, phagocytic cup formation and sinking in, have become well established in the literature. However, the distinctions between the two modes have become blurred by reports that complement receptor-mediated phagocytosis may induce various membrane protrusions. With the availability of high resolution imaging techniques, phagocytosis assays are required that allow real-time 3D (three dimensional) visualization of how specific phagocytic receptors mediate the uptake of individual particles. More commonly used approaches for the study of phagocytosis, such as end-point assays, miss the opportunity to understand what is happening at the interface of particles and phagocytes. Here we describe phagocytic assays, using time-lapse spinning disk confocal microscopy, that allow 3D imaging of single phagocytic events. In addition, we describe assays to unambiguously image Fcγ receptor- or complement receptor-mediated phagocytosis.
Insights
This study introduces new 3D imaging assays to visualize how specific receptors, like Fcγ receptor (FcγR) and complement receptor (CR), mediate phagocytosis, clarifying distinct cellular uptake mechanisms.
Area of Science:
- Cell Biology
- Immunology
- Microscopy
Background:
- Phagocytosis is crucial for host defense and tissue homeostasis, involving actin cytoskeleton rearrangements for particle engulfment.
- Distinct Fcγ receptor (FcγR)-mediated (phagocytic cup) and complement receptor (CR)-mediated (sinking in) phagocytosis mechanisms were previously proposed.
- Recent findings blur these distinctions, necessitating advanced imaging to clarify receptor-specific phagocytosis dynamics.
Purpose of the Study:
- To develop and describe novel phagocytic assays for real-time 3D imaging of single phagocytic events.
- To clearly distinguish between Fcγ receptor- and complement receptor-mediated phagocytosis using advanced microscopy techniques.
Main Methods:
- Utilized time-lapse spinning disk confocal microscopy for high-resolution, 3D imaging.
- Developed specific phagocytic assays to observe receptor-mediated particle uptake in real-time.
- Focused on visualizing the dynamic interactions at the particle-phagocyte interface.
Main Results:
- Successfully implemented 3D imaging assays to visualize individual phagocytic events.
- Enabled unambiguous imaging of Fcγ receptor- and complement receptor-mediated phagocytosis.
- Provided a platform to resolve the dynamic cytoskeletal remodeling during specific receptor-mediated phagocytosis.
Conclusions:
- The developed assays allow for detailed, real-time 3D visualization of phagocytosis.
- These methods clarify the distinct mechanisms employed by FcγR and CR in particle engulfment.
- This work advances the understanding of receptor-specific phagocytic dynamics and cytoskeletal remodeling.
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