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  2. Mechanical Force Triggers Macrophage Pyroptosis and Sterile Inflammation by Disrupting Cellular Energy Metabolism

Mechanical Force Triggers Macrophage Pyroptosis and Sterile Inflammation by Disrupting Cellular Energy Metabolism

  • Int J Mol Sci. 2025 Apr 2;26(7):3321. doi: 10.3390/ijms26073321.
Hao Tan 1 2 3 Guoyin Yang 1 2 3 Ye Zhu 1 2 3 Xinyi He 1 2 3 Lan Yang 1 2 3 Yun Hu 1 2 3 Leilei Zheng 1 2 3
Affiliations

Affiliations

  • 1 College of Stomatology, Chongqing Medical University, Chongqing 401147, China.
  • 2 Chongqing Key Laboratory of Oral Diseases and Biomedical Sciences, Chongqing 401147, China.
  • 3 Chongqing Municipal Key Laboratory of Oral Biomedical Engineering of Higher Education, Chongqing 401147, China.
Abstract

Mechanical force regulates tissue remodeling during orthodontic tooth movement (OTM) by inducing macrophage-mediated sterile inflammatory responses. Pyroptosis, as an inflammatory form of programmed cell death, triggers a robust inflammatory cascade by activating the inflammasome. Although recent reports have demonstrated that Pyroptosis can be activated by mechanical force, it remains unclear whether and how orthodontic force induces macrophage Pyroptosis and sterile inflammation. In this study, by establishing a rat OTM model and a force-loaded macrophage model, we found that force induces Caspase1-dependent Pyroptosis in macrophages and activates sterile inflammation both in vivo and in vitro. Mechanistically, we uncovered that mechanical force disrupts macrophage energy metabolism, characterized by an imbalance between Lactate Dehydrogenase A (LDHA) and pyruvate dehydrogenase (PDH), as well as mitochondrial dysfunction. Notably, inhibiting pyruvate dehydrogenase kinase 1 (PDK1) effectively restored this metabolic balance, thereby alleviating Pyroptosis and sterile inflammation in force-stimulated macrophages. Overall, this study elucidates that force induces macrophage Pyroptosis and sterile inflammation, and further identifies imbalances in the LDHA/PDH ratio and mitochondrial dysfunction as pivotal mechanistic features. These insights offer novel perspectives and potential therapeutic targets for the precise and effective modulation of OTM.

Keywords

energy metabolism; macrophage; mechanical force; orthodontic tooth movement; pyroptosis; sterile inflammation.

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