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Methods to Assess Beta Cell Death Mediated by Cytotoxic T Lymphocytes
Published on: June 16, 2011
Programmed Cell Death Protein 1 Engagement Impairs Cytoskeletal Forces and Nuclear Mechanotransduction in T Cells
Lingzhu Zhao1,2, Guoqing Zhao1,2, Jiaxin Fu1,2
1The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an, ShaanXi 710049, PR China.
Abstract:
Programmed cell death protein 1 (PD-1) is a critical immune checkpoint that suppresses T cell activation and cytotoxicity, yet its mechanistic role in regulating T cell mechanotransduction remains unclear. Here, we reveal that PD-1 engagement attenuates T cell activation by impairing cytoskeletal force generation and nuclear mechanotransduction in a mechanically defined microenvironment. Using tunable poly(ethylene glycol) (PEG)-based hydrogels that mimic the stiffness of target cells, we show that PD-1 suppresses T cell receptor (TCR)-mediated activation in a stiffness-dependent manner, requiring immobilized ligand presentation. Mechanistically, PD-1 ligation disrupts actin polymerization, reduces traction forces, and prevents nuclear deformation, thereby impairing the nuclear translocation of mechanosensitive transcription factors yes-associated protein (YAP) and nuclear factor 1 of activated T cells (NFAT1). This inhibition is mediated by the dephosphorylation of cofilin, an actin-severing protein that restricts actin assembly and downstream mechanotransduction. Consequently, PD-1 engagement diminishes the cytokine production and effector cytotoxicity of T cells. Pharmacological or genetic restoration of actin polymerization or nuclear transport rescues nuclear YAP/NFAT1 localization and partially restores T cell activation and function. Our findings suggest PD-1 as a mechanical checkpoint that suppresses T cell immunity by dampening cytoskeletal dynamics and nuclear mechanotransduction, offering insights into the biophysical regulation of immune suppression.
Insights
Programmed cell death protein 1 (PD-1) suppresses T cell activation by disrupting cytoskeletal mechanics and nuclear signaling. This immune checkpoint inhibits T cell function by altering actin dynamics and mechanotransduction.
Area of Science:
- Immunology
- Biophysics
- Cell Biology
Background:
- Programmed cell death protein 1 (PD-1) is a key immune checkpoint regulating T cell responses.
- The precise mechanisms by which PD-1 influences T cell mechanotransduction are not fully understood.
Purpose of the Study:
- To investigate the role of PD-1 in regulating T cell activation within a defined mechanical microenvironment.
- To elucidate how PD-1 engagement affects cytoskeletal dynamics and nuclear mechanotransduction.
Main Methods:
- Utilized tunable poly(ethylene glycol) (PEG)-based hydrogels to mimic target cell stiffness.
- Assessed T cell receptor (TCR)-mediated activation, actin polymerization, and nuclear translocation of transcription factors (YAP, NFAT1).
- Investigated the role of cofilin dephosphorylation in PD-1-mediated inhibition.
Main Results:
- PD-1 engagement attenuated T cell activation in a stiffness-dependent manner.
- PD-1 ligation disrupted actin polymerization, reduced cellular traction forces, and impaired nuclear deformation.
- Inhibition of cofilin by PD-1 reduced nuclear localization of YAP and NFAT1, diminishing T cell cytokine production and cytotoxicity.
Conclusions:
- PD-1 acts as a mechanical checkpoint, suppressing T cell immunity by dampening cytoskeletal dynamics and nuclear mechanotransduction.
- Restoring actin polymerization or nuclear transport partially rescued T cell activation and function.
- Findings provide insights into the biophysical regulation of immune suppression by PD-1.
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