Mechano-immunomodulation

Mechano-immunomodulation is the study and engineering of how physical forces and material mechanics regulate immune-cell behavior, offering a framework for linking tissue mechanics to inflammation, repair, and disease. Immune cells sense cues such as stiffness, stretch, fluid shear, and confinement through integrins, the cytoskeleton, mechanosensitive ion channels, and force-dependent signaling pathways, which can alter migration, activation, and cytokine production. In bioengineering, this principle guides the design of biomaterials, organ-on-chip systems, and engineered tissues that reproduce or control mechanical microenvironments. These platforms support studies of fibrosis, cancer, infection, and regenerative medicine while informing therapies that modulate immune responses through physical as well as biochemical signals.

Mechano-immunomodulation - Related Videos

Research

JoVE Journal - Immunology and Infection

Murine Model of Epicutaneously-Induced Immunomodulation

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2025

The study demonstrates the role of the skin in modulating immune responses in mice through epicutaneous (EC) immunization. EC immunization with a protein antigen can suppress immune responses in contact hypersensitivity or reverse skin-induced suppression when combined with pathogen-associated molecular patterns. EC immunization shows promise as an effective, needle-free approach to immunotherapy.

Easy and Accurate Mechano-profiling on Micropost Arrays

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Cited by 9 •

2015

Described are protocols for quantifying mechanical interactions between adherent cells and microstructured substrates. These interactions are closely linked to essential cell behaviors including migration, proliferation, differentiation, and apoptosis. The protocols present an open-source image analysis software called MechProfiler, which enables determination of involved forces for each micropost.

Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo

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Cited by 17 •

2019

This protocol describes a detailed workflow for the generation and ex vivo characterization of oncolytic viruses for expression of immunomodulators, using measles viruses encoding bispecific T cell engagers as an example. Application and adaptation to other vector platforms and transgenes will accelerate the development of novel immunovirotherapeutics for clinical translation.

Arbovirus Infections As Screening Tools for the Identification of Viral Immunomodulators and Host Antiviral Factors

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Cited by 8 •

2018

Here, we present the protocols to identify 1) virus-encoded immunomodulators that promote arbovirus replication and 2) eukaryotic host factors that restrict arbovirus replication. These fluorescence- and luminescence-based methods allow researchers to rapidly obtain quantitative readouts of arbovirus replication in simplistic assays with low signal-to-noise ratios.

Mechano-Node-Pore Sensing: A Rapid, Label-Free Platform for Multi-Parameter Single-Cell Viscoelastic Measurements

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Cited by 2 •

2022

Presented here is a method to mechanically phenotype single cells using an electronics-based microfluidic platform called mechano-node-pore sensing (mechano-NPS). This platform maintains moderate throughput of 1-10 cells/s while measuring both the elastic and viscous biophysical properties of cells.

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