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PMID: 16636075 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Mechanics of neutrophil phagocytosis: experiments and quantitative models.

Journal of cell science ·Vol. 119 ·No. Pt 9 ·2006-05-01 ·Pages 1903-13

Herant M, Heinrich V, Dembo M

Abstract

To quantitatively characterize the mechanical processes that drive phagocytosis, we observed the FcgammaR-driven engulfment of antibody-coated beads of diameters 3 mum to 11 mum by initially spherical neutrophils. In particular, the time course of cell morphology, of bead motion and of cortical tension were determined. Here, we introduce a number of mechanistic models for phagocytosis and test their validity by comparing the experimental data with finite element computations for multiple bead sizes. We find that the optimal models involve two key mechanical interactions: a repulsion or pressure between cytoskeleton and free membrane that drives protrusion, and an attraction between cytoskeleton and membrane newly adherent to the bead that flattens the cell into a thin lamella. Other models such as cytoskeletal expansion or swelling appear to be ruled out as main drivers of phagocytosis because of the characteristics of bead motion during engulfment. We finally show that the protrusive force necessary for the engulfment of large beads points towards storage of strain energy in the cytoskeleton over a large distance from the leading edge ( approximately 0.5 microm), and that the flattening force can plausibly be generated by the known concentrations of unconventional myosins at the leading edge.

MeSH Terms
Animals Antibodies/metabolism Cell Membrane/metabolism Cell Shape Cytoskeleton/metabolism Humans Mathematics Models, Theoretical Neutrophils/cytology,physiology Particle Size Phagocytosis/physiology Receptors, IgG/metabolism Stress, Mechanical Surface Properties
Chemicals
Antibodies Receptors, IgG
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Herant Marc
Biomedical Engineering Department, Boston University, 44 Cummington Street, Boston, MA 02215, USA. herantm@bu.edu
Heinrich Volkmar
Dembo Micah
Article Info
Journal
Journal of cell science
Abbr.
J Cell Sci
ISSN
0021-9533
Published
2006-05-01
Pages
1903-13
Language
English
Region
England
NLM ID
0052457
Subset
IM
Grants
NHLBI NIH HHS · HL 65333 · United States
NIGMS NIH HHS · R01 GM72002 · United States
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