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"Phagosome Closure Assay" to Visualize Phagosome Formation in Three Dimensions Using Total Internal Reflection Fluorescent Microscopy TIRFM
Published on: August 26, 2016
Late stages of the synchronized macrophage fusion in osteoclast formation depend on dynamin
Santosh K Verma1, Evgenia Leikina1, Kamran Melikov1
1*Section on Membrane Biology, Program of Physical Biology, Eunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, Building 10/Room 10D05, 10 Center Dr., Bethesda, MD 20892-1855, U.S.A.
Abstract:
Macrophage fusion that leads to osteoclast formation is one of the most important examples of cell-cell fusion in development, tissue homoeostasis and immune response. Protein machinery that fuses macrophages remains to be identified. In the present study, we explored the fusion stage of osteoclast formation for RAW macrophage-like murine cells and for macrophages derived from human monocytes. To uncouple fusion from the preceding differentiation processes, we accumulated fusion-committed cells in the presence of LPC (lysophosphatidylcholine) that reversibly blocks membrane merger. After 16 h, we removed LPC and observed cell fusion events that would normally develop within 16 h develop instead within 30-90 min. Thus, whereas osteoclastogenesis, generally, takes several days, our approach allowed us to focus on an hour in which we observe robust fusion between the cells. Complementing syncytium formation assay with a novel membrane merger assay let us study the synchronized fusion events downstream of a local merger between two plasma membranes, but before expansion of nascent membrane connections and complete unification of the cells. We found that the expansion of membrane connections detected as a growth of multinucleated osteoclasts depends on dynamin activity. In contrast, a merger between the plasma membranes of the two cells was not affected by inhibitors of dynamin GTPase. Thus dynamin that was recently found to control late stages of myoblast fusion also controls late stages of macrophage fusion, revealing an intriguing conserved mechanistic motif shared by diverse cell-cell fusion processes.
Insights
Dynamin protein controls the expansion of membrane connections during macrophage fusion, a critical step in osteoclast formation. This finding reveals a conserved mechanism in cell-cell fusion processes.
Area of Science:
- Cell Biology
- Immunology
- Developmental Biology
Background:
- Macrophage fusion is essential for osteoclast formation, tissue homeostasis, and immune responses.
- The specific protein machinery driving macrophage fusion remains largely unidentified.
- Understanding cell-cell fusion mechanisms is crucial for various biological processes.
Purpose of the Study:
- To investigate the protein machinery involved in the late stages of macrophage fusion.
- To uncouple macrophage fusion from preceding differentiation processes for focused study.
- To identify key molecular players in the expansion of membrane connections during osteoclastogenesis.
Main Methods:
- Utilized RAW macrophage-like murine cells and human monocyte-derived macrophages.
- Employed lysophosphatidylcholine (LPC) to synchronize and accelerate macrophage fusion events.
- Applied syncytium formation and a novel membrane merger assay.
- Investigated the role of dynamin using specific inhibitors.
Main Results:
- Accelerated macrophage fusion (30-90 minutes) was achieved by LPC removal.
- Dynamin activity was found to be essential for the expansion of membrane connections.
- Initial plasma membrane merger was independent of dynamin GTPase activity.
- Identified dynamin as a key regulator in late-stage macrophage fusion.
Conclusions:
- Dynamin plays a conserved role in the late stages of diverse cell-cell fusion events, including macrophage fusion.
- The findings highlight a shared mechanistic motif in cell fusion processes.
- This study provides critical insights into the molecular regulation of osteoclast formation.
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