4.7 Article

Mechanical overloading induces GPX4-regulated chondrocyte ferroptosis in osteoarthritis via Piezo1 channel facilitated calcium influx

期刊

JOURNAL OF ADVANCED RESEARCH
卷 41, 期 -, 页码 63-75

出版社

ELSEVIER
DOI: 10.1016/j.jare.2022.01.004

关键词

Chondrocytes; Osteoarthritis; Ferroptosis; Mechanical stress; Piezo1

资金

  1. National key research and develop- ment program of China
  2. National Natural Science Foundation of China
  3. Shandong Provincial Natural Science Foundation
  4. Cross-disciplinary Fund of Shandong University
  5. Shandong Province Key Research and Develop- ment Project
  6. [2020YFC2009004]
  7. [81572191]
  8. [81501880]
  9. [82072478]
  10. [81602761]
  11. [82073437]
  12. [ZR2020YQ54]
  13. [ZR019MH05]
  14. [ZR201808130091]
  15. [2018JC007]
  16. [2019GSF108152]

向作者/读者索取更多资源

Excessive mechanical stress can induce ferroptosis in chondrocytes through Piezo1 activation and subsequent calcium influx, which might provide a potential target for osteoarthritis treatment.
Introductions: Excessive mechanical stress is closely associated with cell death in various conditions. Exposure of chondrocytes to excessive mechanical loading leads to a catabolic response as well as exag-gerated cell death. Ferroptosis is a recently identified form of cell death during cell aging and degenera-tion. However, it's potential association with mechanical stress remains to be illustrated. Objectives: To identify whether excessive mechanical stress can cause ferroptosis. To explore the role of mechanical overloading in chondrocyte ferroptosis. Methods: Chondrocytes were collected from loading and unloading zones of cartilage in patients with osteoarthritis (OA), and the ferroptosis phenotype was analyzed through transmission electron micro-scope and microarray. Moreover, the relationship between ferroptosis and OA was analyzed by GPX4-conditional knockout (Col2a1-CreERT: GPX4flox/flox) mice OA model and chondrocytes cultured with high strain mechanical stress. Furthermore, the role of Piezo1 ion channel in chondrocyte ferroptosis and OA development was explored by using its inhibitor (GsMTx4) and agonist (Yoda1). Additionally, chondro-cyte was cultured in calcium-free medium with mechanical stress, and ferroptosis phenotype was tested. Results: Human cartilage and mouse chondrocyte experiments revealed that mechanical overloading can induce GPX4-associated ferroptosis. Conditional knockout of GPX4 in cartilage aggravated experimental OA process, while additional treatment with ferroptosis suppressor protein (FSP-1) and coenzyme Q10 (CoQ10) abated OA development in GPX4-CKO mice. In mouse OA model and chondrocyte experiments, inhibition of Piezo1 channel activity increased GPX4 expression, attenuated ferroptosis phenotype and reduced the severity of osteoarthritis. Additionally, high strain mechanical stress induced ferroptosis damage in chondrocyte was largely abolished by blocking calcium influx through calcium-free medium. Conclusions: Our findings show that mechanical overloading induces ferroptosis through Piezo1 activa-tion and subsequent calcium influx in chondrocytes, which might provide a potential target for OA treatment.(c) 2022 The Authors. Published by Elsevier B.V. on behalf of Cairo University. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

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