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Updated: Jan 9, 2026

Mechanical Stimulation-induced Calcium Wave Propagation in Cell Monolayers: The Example of Bovine Corneal Endothelial Cells
Published on: July 16, 2013
Upregulation of Intracellular Calcium by Piezo1 Activation Mediates UTMD-Activated ATP Release by Rat Erythrocytes
Anna Xu1, Qiong Zhu2, Yanshuo Shi3
1Department of Ultrasound Medicine, Hebei Medical University, Shijiazhuang, China; Department of Ultrasound, The Affiliated Hospital of Chengde Medical College, Chengde, China.
Objective:
Ultrasound Targeted Microbubble Destruction (UTMD) technology enhances microvascular blood perfusion, with adenosine triphosphate (ATP) release from red blood cells (RBCs) playing a crucial role. However, the precise mechanisms remain unclear. This study aimed to investigate the role of Piezo1 in regulating ATP release from RBCs by UTMD.
Methods:
RBCs were collected from rats, and UTMD was carried out using a modified ultrasonic thrombolysis device with lipid-fluorine microbubbles. RBCs were treated with the Piezo1 activator Yoda1, the Piezo1 blocker GsMTx4 or the Pannexin1 (Panx1) blocker carbenoxolone, prior to UTMD. ATP release was assessed using a bioluminescence assay with an in vivo imaging system, and intracellular calcium (Ca2+) concentration was determined by laser confocal microscopy. Data-independent acquisition proteomic analysis was conducted to identify differential protein expression in the UTMD and Control groups.
Results:
UTMD-induced Piezo1 activation promoted ATP release from RBCs by facilitating Ca2+ influx. Proteomic analysis highlighted differentially expressed proteins, including Dematin, Protein 4.1, Moesin and Myosin, suggesting their involvement in the process. Additionally, Panx1 likely contributed as a downstream regulator of activated Piezo1.
Conclusion:
Our findings suggest that UTMD enhances ATP release from RBCs via a synergistic mechanism: Piezo1-mediated Ca2+ influx as the primary pathway, and non-Piezo1 pathways (including sonoporation) as complements. UTMD-induced Ca2+ influx is dominated by Piezo1-independent mechanisms. Panx1 acts as a key downstream effector. Although our results show Panx1 inhibition reduces ATP release, direct evidence of Piezo1-Panx1 interaction remains to be established. Proteomic data suggest cytoskeletal remodeling may play a role in this process. This knowledge may contribute to the development of new therapeutic strategies for improving microcirculatory perfusion.
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