TY - JOUR
T1 - Integrin-Mediated Mechanosensing of Modeled Lymph Node Microenvironment Promotes T Cell Activation via Nuclear Deformation
AU - Feng, Jinteng
AU - Zhao, Guoqing
AU - Zhao, Lingzhu
AU - Geng, Luying
AU - Zhang, Shirong
AU - Xu, Longwen
AU - Liu, Mengjie
AU - Zhang, Guangjian
AU - Xu, Feng
AU - Lin, Min
AU - Guo, Hui
N1 - Publisher Copyright:
Copyright © 2026 Jinteng Feng et al.
PY - 2026/1
Y1 - 2026/1
N2 - Upon tumor metastasis, lymph nodes (LNs) undergo mechanical stiffening, yet how this change influences T cell activation within the microenvironment remains incompletely understood. In particular, the dynamic mechanical forces during activation are transduced by cell–extracellular matrix (ECM) interactions, while cell–cell interactions persist. Here, we established a novel T cell culture platform using hydrogels with tunable stiffness and decoupled presentation of RGD peptide and anti-CD3 monoclonal antibody, separately mimicking ECM–T cell and T cell–antigen-presenting cell interactions. This platform closely mimics the LN microenvironment during T cell activation. By integrating experiments with mathematical modeling, we revealed that T cells sensed mechanical changes in the microenvironment requiring RGD/integrin ligation, while stiff matrix up-regulated F-actin aggregation instead of myosin contraction, deforming the nucleus and promoting yes-associated protein nucleus translocation, resulting in interleukin-2 expression and T cell activation. Our findings shed light on the mechanobiological mechanism underlying the potential benefits of immunotherapy in patients with LN metastases and provide an optimized mechanical platform for studying T cell activation and expansion in vitro.
AB - Upon tumor metastasis, lymph nodes (LNs) undergo mechanical stiffening, yet how this change influences T cell activation within the microenvironment remains incompletely understood. In particular, the dynamic mechanical forces during activation are transduced by cell–extracellular matrix (ECM) interactions, while cell–cell interactions persist. Here, we established a novel T cell culture platform using hydrogels with tunable stiffness and decoupled presentation of RGD peptide and anti-CD3 monoclonal antibody, separately mimicking ECM–T cell and T cell–antigen-presenting cell interactions. This platform closely mimics the LN microenvironment during T cell activation. By integrating experiments with mathematical modeling, we revealed that T cells sensed mechanical changes in the microenvironment requiring RGD/integrin ligation, while stiff matrix up-regulated F-actin aggregation instead of myosin contraction, deforming the nucleus and promoting yes-associated protein nucleus translocation, resulting in interleukin-2 expression and T cell activation. Our findings shed light on the mechanobiological mechanism underlying the potential benefits of immunotherapy in patients with LN metastases and provide an optimized mechanical platform for studying T cell activation and expansion in vitro.
UR - https://www.scopus.com/pages/publications/105029984491
U2 - 10.34133/research.1121
DO - 10.34133/research.1121
M3 - 文章
AN - SCOPUS:105029984491
SN - 2096-5168
VL - 9
JO - Research
JF - Research
M1 - 1121
ER -