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.

The Biochemical Journal
|October 23, 2014
PubMed

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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