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High-Affinity Bent β2-Integrin Molecules in Arresting Neutrophils Face Each Other through Binding to ICAMs In cis
Zhichao Fan1, William Bill Kiosses2, Hao Sun3
1Division of Inflammation Biology, La Jolla Institute for Immunology, 9420 Athena Circle Drive, La Jolla, CA 92037, USA.
Insights
Leukocyte adhesion involves β2-integrin activation. Activated integrins form oriented nanoclusters on neutrophils during arrest, a pattern influenced by cis-binding to intercellular adhesion molecules (ICAMs).
Area of Science:
- Cellular Biology
- Immunology
- Biophysics
Background:
- Leukocyte adhesion is crucial for immune response and relies on β2-integrin activation.
- Resting integrins are in a bent-closed conformation (E-H-), unable to bind ligands.
- Activated integrins (E+H+) bind intercellular adhesion molecules (ICAMs) on opposing cells (trans) or the same cell (cis).
Purpose of the Study:
- To investigate the spatial patterning of activated integrins on primary human neutrophils.
- To map the high-resolution cell surface localization of activated integrins during neutrophil arrest.
- To elucidate the mechanism behind the spatial organization of activated integrins.
Main Methods:
- Super-resolution microscopy (Super-STORM) was combined with molecular modeling.
- Precise localization of activated integrin molecules on primary human neutrophils was achieved.
- Experiments involved blocking integrin binding to ICAMs in cis.
Main Results:
- Activated E-H+ integrins form oriented nanoclusters facing each other during neutrophil arrest.
- This face-to-face orientation suggests a non-random molecular pattern.
- Blocking integrin binding to ICAMs in cis significantly disrupted this orientation.
Conclusions:
- Activated β2-integrins form specific nanocluster patterns on neutrophils during arrest.
- The spatial organization of integrins is critical for effective leukocyte adhesion.
- Integrin binding to ICAMs in cis plays a role in establishing this oriented pattern.
Abstract:
Leukocyte adhesion requires β2-integrin activation. Resting integrins exist in a bent-closed conformation-i.e., not extended (E-) and not high affinity (H-)-unable to bind ligand. Fully activated E+H+ integrin binds intercellular adhesion molecules (ICAMs) expressed on the opposing cell in trans. E-H- transitions to E+H+ through E+H- or through E-H+, which binds to ICAMs on the same cell in cis. Spatial patterning of activated integrins is thought to be required for effective arrest, but no high-resolution cell surface localization maps of activated integrins exist. Here, we developed Super-STORM by combining super-resolution microscopy with molecular modeling to precisely localize activated integrin molecules and identify the molecular patterns of activated integrins on primary human neutrophils. At the time of neutrophil arrest, E-H+ integrins face each other to form oriented (non-random) nanoclusters. To address the mechanism causing this pattern, we blocked integrin binding to ICAMs in cis, which significantly relieved the face-to-face orientation.
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