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Updated: Jan 30, 2026

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Published on: October 30, 2016
Mechanotransduction of Piezo1 in the cancer microenvironment: implications for NK cell-based immunotherapy
Xinmu Cui1, Binbin Zhang2, Jianan Zhao3
1Department of Medical Technology, Changchun Medical College, Changchun, China.
Abstract:
Natural Killer (NK) cells serve a critical function in antitumor immunity. However, their effectiveness is often hampered by the biomechanical properties of the solid tumor microenvironment (TME), such as the stiffness of the extracellular matrix. This review focuses on the mechanosensitive ion channel Piezo1 and its role in enhancing NK cell function. Studies have shown that tumor cell stiffness, as a key physical cue, directly influences the responsiveness of NK cells. In three-dimensional (3D) matrices, the stiffening of the extracellular matrix (ECM) can activate Piezo1, leading to calcium influx that substantially boosts NK cells' cytotoxicity and tumor infiltration ability. Remarkably, similar to Yoda1, a specific Piezo1 agonist, short-term Piezo1 activation significantly enhances NK cells' cytotoxicity and infiltration capacity. Whether such benefits persist under prolonged stimulation without inducing functional exhaustion remains to be determined. Unlike broader review articles that discuss TME biomechanics, this study focuses on uncovering the signal transduction mechanism of the Piezo1-NK cell axis, providing new perspectives and strategies for addressing immunotherapy resistance. This mechanobiology-based framework, through detailed analysis of the Piezo1-NK cell signaling transduction mechanism, is expected to overcome bottlenecks in NK cell immunotherapy. Its application prospects are not limited to the field of oncology but can also be extended to other diseases sensitive to mechanical signals.
Insights
The mechanosensitive ion channel Piezo1 enhances natural killer (NK) cell antitumor immunity by boosting cytotoxicity and infiltration. Activating Piezo1 in stiff tumor microenvironments offers a novel strategy to overcome immunotherapy resistance.
Area of Science:
- Mechanobiology
- Immunology
- Cellular Biophysics
Background:
- Natural Killer (NK) cells are crucial for antitumor immunity.
- Solid tumor microenvironment (TME) biomechanics, like extracellular matrix (ECM) stiffness, impede NK cell function.
- The mechanosensitive ion channel Piezo1 is implicated in cellular responses to mechanical cues.
Purpose of the Study:
- To review the role of Piezo1 in enhancing NK cell function within the TME.
- To elucidate the Piezo1-NK cell signaling transduction mechanism.
- To explore Piezo1-based strategies for overcoming immunotherapy resistance.
Main Methods:
- Review of existing literature on Piezo1, NK cells, and TME biomechanics.
- Analysis of Piezo1 activation by ECM stiffness and its downstream effects.
- Discussion of Piezo1 agonists and their impact on NK cell activity.
Main Results:
- Tumor cell stiffness directly impacts NK cell responsiveness.
- Stiffening of the 3D ECM activates Piezo1, increasing calcium influx and boosting NK cell cytotoxicity and tumor infiltration.
- Short-term Piezo1 activation, similar to Yoda1, significantly enhances NK cell cytotoxicity and infiltration capacity.
Conclusions:
- Piezo1 activation is a promising strategy to enhance NK cell-mediated antitumor immunity.
- Targeting the Piezo1-NK cell axis offers new perspectives for addressing immunotherapy resistance.
- The mechanobiology-based framework has potential applications beyond oncology.
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