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Published on: November 9, 2012
Static and dynamic lengths of neutrophil microvilli
J Y Shao1, H P Ting-Beall, R M Hochmuth
1Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC 27708-0300, USA.
Abstract:
Containing most of the L-selectin and P-selectin glycoprotein ligand-1 (PSGL-1) on their tips, microvilli are believed to promote the initial arrest of neutrophils on endothelium. At the rolling stage following arrest, the lifetimes of the involved molecular bonds depend on the pulling force imposed by the shear stress of blood flow. With two different methods, electron microscopy and micropipette manipulation, we have obtained two comparable neutrophil microvillus lengths, both approximately 0.3 microm in average. We have found also that, under a pulling force, a microvillus can be extended (microvillus extension) or a long thin membrane cylinder (a tether) can be formed from it (tether formation). If the force is =34 pN (+/- 3 pN), the length of the microvillus will be extended; if the force is >61 pN (+/- 5 pN), a tether will be formed from the microvillus at a constant velocity, which depends linearly on the force. When the force is between 34 pN and 61 pN (transition zone), the degree of association between membrane and cytoskeleton in individual microvilli will dictate whether microvillus extension or tether formation occurs. When a microvillus is extended, it acts like a spring with a spring constant of approximately 43 pN/microm. In contrast to a rigid or nonextendible microvillus, both microvillus extension and tether formation can decrease the pulling force imposed on the adhesive bonds, and thus prolonging the persistence of the bonds at high physiological shear stresses.
Insights
Neutrophil microvilli, crucial for initial cell adhesion, can extend or form tethers under blood flow forces. These mechanisms reduce pulling force on molecular bonds, prolonging cell adhesion during high shear stress.
Area of Science:
- Cellular and Molecular Biology
- Biophysics
- Immunology
Background:
- Neutrophil microvilli, rich in L-selectin and P-selectin glycoprotein ligand-1 (PSGL-1), are key for initial neutrophil arrest on endothelium.
- The stability of molecular bonds during neutrophil rolling is force-dependent, influenced by blood flow shear stress.
Purpose of the Study:
- To investigate the mechanical properties of neutrophil microvilli under varying pulling forces.
- To understand how microvilli dynamics (extension and tether formation) affect the persistence of adhesive bonds.
Main Methods:
- Electron microscopy to determine average neutrophil microvillus length.
- Micropipette manipulation to apply controlled forces and observe microvilli responses.
Main Results:
- Average neutrophil microvillus length was found to be approximately 0.3 microm.
- Microvillus extension occurs under forces ≤34 pN, while tether formation occurs at forces >61 pN.
- A transition zone (34-61 pN) shows force-dependent outcomes influenced by membrane-cytoskeleton association.
Conclusions:
- Both microvillus extension and tether formation effectively reduce the pulling force on adhesive bonds.
- These dynamic microvillus behaviors prolong the stability of neutrophil-endothelial adhesive bonds under high shear stress.
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These microvilli are predominantly present in cells lining the small intestine, kidney tubules, and certain cells in the respiratory and reproductive systems. By significantly expanding the surface area of the cell membrane, microvilli enhance the cell's capacity to...

