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An Iron-Scavenging and Hydrogen-Releasing Microneedle Patch Suppresses Ferroptosis and Promotes Spinal Cord Repair

  • Yuanqing Ding (Co-first Author)
  • , Yihan Chen (Co-first Author)
  • , Yiming Tao
  • , Zezhen Zhang
  • , Min Ge
  • , Jianlin Shi
  • , Han Lin*
  • , Rong Xie*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Spinal cord injury (SCI) is a devastating trauma to the central nervous system, causing permanent functional nerve defects. A key therapeutic challenge is the inhibition of the secondary injury cascade, specifically the progressive neural damage from iron overload-induced ferroptosis and oxidative stress. To target these dual mechanisms, we developed a dual-functional, iron-scavenging, and hydrogen-releasing microneedle patch (MN/MON@AB) composed of ammonia borane (AB)-loaded, amino-functionalized mesoporous organosilica nanoparticles (MON-NH2) embedded in a biodegradable silk fibroin array. This system functions via a dual-target mechanism: amino groups chelate excess iron ions to suppress the Fenton reaction, while AB provides sustained release of molecular hydrogen (H2) in the acidic injury microenvironment to neutralize reactive oxygen species (ROS). MN/MON@AB has been found to reduce the intracellular Fe2+ levels by 46.7%, nearly doubling the expression of the key ferroptosis regulator GPX4, and largely alleviating lipid peroxidation in vitro. In a murine SCI model, the patch significantly reduced spinal iron deposition (p < 0.0001) and promoted marked locomotor recovery (p < 0.001). Featuring combined localized iron chelation and sustained antioxidant delivery, the present strategy offers a broadly applicable and pioneering therapeutic platform for treating acute neural injuries and subsequent neurodegenerative processes. © 2026 American Chemical Society
Original languageEnglish
Pages (from-to)12210-12226
Number of pages17
JournalACS Nano
Volume20
Issue number16
Online published10 Apr 2026
DOIs
Publication statusPublished - 28 Apr 2026

Funding

This study was supported by the National Natural Science Foundation of China (82071315, 82271342 to R.X.; 22422510 and 52372276 to H.L.; T2495263 to J.S.), the Joint Funds for the Innovation of Science and Technology of Fujian Province (2021Y9307 and 2023Y9114 to R.X.), the Youth Innovation Promotion Association CAS (2023262 to H.L.), the Natural Science Foundation of Shanghai (23ZR1472300 to H.L.), and the Shanghai Pilot Program for Basic Research-Chinese Academy of Science, Shanghai Branch (JCYJ-SHFY-2022-003 to H.L.).

Research Keywords

  • ferroptosis
  • hydrogen therapy
  • iron chelation
  • microneedle patch
  • spinal cord injury

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