4.7 Article

GSK-3β suppression upregulates Gli1 to alleviate osteogenesis inhibition in titanium nanoparticle-induced osteolysis

期刊

JOURNAL OF NANOBIOTECHNOLOGY
卷 20, 期 1, 页码 -

出版社

BMC
DOI: 10.1186/s12951-022-01351-7

关键词

Hedgehog signaling pathway; Osteogenesis; Bone formation; Titanium nanoparticles; Periprosthetic osteolysis

资金

  1. National Natural Science Foundation of China [82072425, 82072498, 81873991, 81873990, 81770327, 81672238]
  2. Young Medical Talents of Jiangsu Province [QNRC2016751]
  3. Natural Science Foundation of Jiangsu Province [BK20180001, BK20200198, BE2021650, BE2021673]
  4. Priority Academic Program Development of Jiangsu Higher Education Institutions (PAPD)
  5. Special Project of Diagnosis and Treatment Technology for Key Clinical Diseases in Suzhou [LCZX202003, LCZX201824]
  6. medical science and technology development foundation
  7. Jiangsu Province Department of Health [H2019024]
  8. Application Fundamental Research Program of Suzhou City [SYS2018032]
  9. Colleges and Universities Natural Science Foundation in Jiangsu Province [19KJB320019]
  10. Medical and Public Health Technology Innovation and Application Project of Wuxi Science and Technology Bureau [N20202041]
  11. youth talent project of Wuxi health commission [Q202150]

向作者/读者索取更多资源

Wear particle-induced periprosthetic osteolysis poses a severe threat to global public health and is a major cause of joint arthroplasty failure and secondary surgery. The study reveals that the Hh-Gli1 signaling cascade, mediated through GSK-3 beta, is involved in titanium nanoparticle-induced osteolysis.
Wear particle-induced periprosthetic osteolysis (PPO) have become a major reason of joint arthroplasty failure and secondary surgery following joint arthroplasty and thus pose a severe threat to global public health. Therefore, determining how to effectively suppress particle-induced PPO has become an urgent problem. The pathological mechanism involved in the PPO signaling cascade is still unclear. Recently, the interaction between osteogenic inhibition and wear particles at the implant biological interface, which has received increasing attention, has been revealed as an important factor in pathological process. Additionally, Hedgehog (Hh)-Gli1 is a crucial signaling cascade which was regulated by multiple factors in numerous physiological and pathological process. It was revealed to exert a crucial part during embryonic bone development and metabolism. However, whether Hh-Gli1 is involved in wear particle-induced osteogenic inhibition in PPO remains unknown. Our present study explored the mechanism by which the Hh-Gli1 signaling cascade regulates titanium (Ti) nanoparticle-induced osteolysis. We found that Hh-Gli1 signaling was dramatically downregulated upon Ti particle treatment. Mechanistically, glycogen synthesis kinase 3 beta (GSK-3 beta ) activation was significantly increased in Ti particle-induced osteogenic inhibition via changes in GSK-3 beta phosphorylation level and was found to participate in the posttranslational modification and degradation of the key transcription factor Gli1, thus decreasing the accumulation of Gli1 and its translocation from the cytoplasm to the nucleus. Collectively, these findings suggest that the Hh-Gli1 signaling cascade utilizes a GSK3 beta-mediated mechanism and may serve as a rational new therapeutic target against nanoparticle-induced PPO.

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