Mechanical activity enables patterning and discrimination at the immune synapse

Fuente: arXiv
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Main Authors: Wong, Tony, Chou, Tom, Shankar, Suraj, Wang, Shenshen
Format: Preprint
Published: 2025
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author Wong, Tony
Chou, Tom
Shankar, Suraj
Wang, Shenshen
author_facet Wong, Tony
Chou, Tom
Shankar, Suraj
Wang, Shenshen
contents Immune cells recognize and discriminate antigens through immunological synapses - dynamic intercellular junctions exhibiting highly organized receptor-ligand patterns. While much work has focused on molecular kinetics and passive mechanisms of pattern formation, the role of active mechanical control in patterning and discrimination remains underexplored. We develop a minimal continuum model coupling receptor binding kinetics, membrane deformation, and cytoskeletal forces, with elastohydrodynamic flow in the synaptic cleft. Numerical simulations and scaling analysis reveal that contractile cortical flows arrest coarsening and stabilize long-lived multifocal clusters, whereas active pulling accelerates cluster dissolution and elevates background receptor binding. Nonequilibrium mechanical forces enable adaptive control over the speed, sensitivity, and dynamic range of affinity discrimination in a pattern-dependent manner. Our results highlight how immune cells exploit cytoskeletal remodeling to robustly regulate antigen recognition through synaptic patterning.
format Preprint
id arxiv_https___arxiv_org_abs_2510_18771
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mechanical activity enables patterning and discrimination at the immune synapse
Wong, Tony
Chou, Tom
Shankar, Suraj
Wang, Shenshen
Cell Behavior
Soft Condensed Matter
Biological Physics
Immune cells recognize and discriminate antigens through immunological synapses - dynamic intercellular junctions exhibiting highly organized receptor-ligand patterns. While much work has focused on molecular kinetics and passive mechanisms of pattern formation, the role of active mechanical control in patterning and discrimination remains underexplored. We develop a minimal continuum model coupling receptor binding kinetics, membrane deformation, and cytoskeletal forces, with elastohydrodynamic flow in the synaptic cleft. Numerical simulations and scaling analysis reveal that contractile cortical flows arrest coarsening and stabilize long-lived multifocal clusters, whereas active pulling accelerates cluster dissolution and elevates background receptor binding. Nonequilibrium mechanical forces enable adaptive control over the speed, sensitivity, and dynamic range of affinity discrimination in a pattern-dependent manner. Our results highlight how immune cells exploit cytoskeletal remodeling to robustly regulate antigen recognition through synaptic patterning.
title Mechanical activity enables patterning and discrimination at the immune synapse
topic Cell Behavior
Soft Condensed Matter
Biological Physics
url https://arxiv.org/abs/2510.18771