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Using RNA-interference to Investigate the Innate Immune Response in Mouse Macrophages
Published on: November 3, 2014
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.
Abstract:
The zipper model describes the ligand-receptor-driven progression of the phagocytic cup during macrophage engulfment. However, whether the maximum engulfment achievable for a single target is altered by prior or concurrent phagocytic events (i.e., intracellular phagocytic load) remains unclear. Here, we used IgG-coated, nondigestible glass microneedles as standardized Fcγ receptor ligands and defined the single-target engulfment ceiling as the membrane extension length at which backtracking begins. We then tested whether this ceiling changes after macrophages internalize increasing numbers of IgG-coated polystyrene beads. Across cells, the maximum membrane extension on a microneedle was quantitatively unchanged regardless of the number of internalized indigestible beads. Within the same cell, additional bead ingestion - up to the maximal bead-phagocytosis limit - did not measurably alter the maximum extension achieved on a microneedle. These data establish a load-independent ceiling for single-target engulfment. This invariance suggests that local membrane recruitment and extension are regulated independently of the cell-wide phagocytic burden, supporting a spatially compartmentalized control mechanism that decouples single-target membrane extension from the total intracellular cargo load.
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.

