Simulated microgravity-driven mechanical unloading rescues PIEZO1-overexpression-induced growth plate ossification and retards adolescent idiopathic scoliosis

  • NPJ Microgravity. 2026 May 4;12(1):62. doi: 10.1038/s41526-026-00604-1.
Fei Chen  #  1 Shuqing Chen  #  1 Xingzhi Jing  #  2 Fushuai Peng  1 Yukun Du  1 Jianyi Li  1 Yuanyuan Fan  3 Zichen Cui  1 Guanghui Gu  1 Han Zhang  1 Jun Dong  4 Tao Li  5 Yongming Xi  6
Affiliations
  • 1. Department of Spinal Surgery, The Affiliated Hospital of Qingdao University, Qingdao, Shandong, China.
  • 2. Department of Spine Surgery, Shandong Provincial Hospital Affiliated to Shandong First Medical University, Jinan, Shandong, China.
  • 3. Shandong Public Health Clinical Center, Shandong University, Jinan, Shandong, China.
  • 4. Department of Spine Surgery, Shandong Provincial Hospital Affiliated to Shandong First Medical University, Jinan, Shandong, China. [email protected].
  • 5. Department of Spine Surgery, Shandong Provincial Hospital Affiliated to Shandong First Medical University, Jinan, Shandong, China. [email protected].
  • 6. Department of Spinal Surgery, The Affiliated Hospital of Qingdao University, Qingdao, Shandong, China. [email protected].
  • # Contributed equally.
Abstract

Adolescent Idiopathic Scoliosis (AIS) progresses via excessive concave-endplate compressive stress and PIEZO1 overexpression-induced vertebral growth plate chondrocyte degeneration. Though microgravity-mediated mechanical unloading is traditionally linked to musculoskeletal harm, we explored its therapeutic potential for AIS. We integrated clinical observations, in vivo models, and in vitro experiments: Clinical anti-gravity skull traction (mechanical unloading) reduced a severe AIS patient's Cobb angle. In a scoliosis mouse model, 10 h/day traction suspension delayed deformity. In vitro, 100 kPa pressure overload upregulated PIEZO1 in chondrocytes, while simulated microgravity reversed this, inhibiting ossification and matrix degeneration. Mouse tail compression elevated PIEZO1 and accelerated ossification, which tail suspension reversed. PIEZO1 agonist Yoda1 promoted chondrocyte osteogenic differentiation, confirming PIEZO1's pathological role. This study shows simulated microgravity-mediated mechanical unloading alleviates AIS by inhibiting PIEZO1, repurposing microgravity from a "pathological factor" to a non-invasive AIS therapy, bridging aerospace medicine and orthopedics.

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