Load-independent ceiling of single-target phagocytic membrane extension revealed by microneedle backtracking assay in

Shinya Kato1, Dan Horonushi1, Kenji Yasuda2

  • 1Department of Pure and Applied Physics, Graduate School of Advanced Science and Engineering, Waseda University, 3-4-1 Okubo, Shinjuku-ku, Tokyo, 169-8555, Japan.

Insights

Macrophage engulfment of a single target is not affected by the number of other particles already ingested. This suggests that the cell

Area of Science:

  • Cell biology
  • Immunology
  • Biophysics

Background:

  • The zipper model explains ligand-receptor interactions during macrophage phagocytosis.
  • The impact of existing phagocytic load on single-target engulfment capacity is unknown.

Purpose of the Study:

  • To determine if prior or concurrent phagocytic events alter the maximum engulfment of a single target.
  • To investigate the relationship between intracellular phagocytic load and single-target engulfment capacity.

Main Methods:

  • Used IgG-coated glass microneedles as standardized Fcγ receptor ligands.
  • Defined single-target engulfment ceiling as membrane extension length at backtracking.
  • Assessed changes in microneedle engulfment ceiling after macrophage internalization of IgG-coated beads.

Main Results:

  • The maximum membrane extension on a microneedle remained constant regardless of internalized bead count.
  • Engulfing additional beads did not alter the maximum extension achieved on a microneedle within the same cell.
  • Single-target engulfment ceiling is independent of the intracellular phagocytic load.

Conclusions:

  • A load-independent ceiling for single-target engulfment exists.
  • Local membrane recruitment is regulated independently of the overall phagocytic burden.
  • Suggests spatially compartmentalized control mechanisms in macrophage phagocytosis.