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Dopamine-modified Ti3C2Tx MXene promotes supporting cell pluripotency and hair cell regeneration in cochlear organoid culture

  • Yan Zhang
  • , Shixian Meng
  • , Xin Ma
  • , Lin Li
  • , Wanyu Zhang
  • , Xinyuan Zhang
  • , Ruifeng Qiao
  • , Yingying Xuan
  • , Qin Hu
  • , Hui Ma
  • , Yinghui Wang
  • , Xingyu Liu
  • , Xiaoyan Ma
  • , Jianbin Sun
  • , Yang Xue
  • , Bai Sun
  • , Bo Kou
  • , Miao Zhang
  • , Xiao Jun Li
  • Taiyuan University of Science and Technology
  • School of Chemistry
  • Frontier Institute of Science and Technology
  • Air Force Medical University
  • Shanxi Medical University
  • The First Affiliated Hospital of Xi’an Jiaotong University
  • The Second Affiliated Hospital of Xi'an Jiaotong University
  • Xi'an Jiaotong University

科研成果: 期刊稿件文章同行评审

摘要

Sensorineural hearing loss (SNHL), predominantly resulting from the irreversible loss of cochlear hair cells, remains a clinical challenge without effective treatments. Recently, neuromodulation strategies based on two-dimensional nanomaterials have shown regenerative potential, with MXene standing out due to its excellent electrical conductivity, biocompatibility, and modifiable surface properties. Hair cells (HCs) and supporting cells (SCs) originate from the same prosensory cells, with previous work showing that MXene (especially Ti3C2Tx) incorporation in Matrigel can promote HCs formation with SCs in cochlear organoid culture. However, the MXene is prone to oxidation, losing the conductivity and catalytic activity of this material in Matrigel during HC regeneration. In this study, we modified MXene with dopamine (DA-MXene) that mimics neurotransmitter functions to promote HC regeneration. We found that DA-MXene significantly enhanced the proliferation and survival of SCs in organoid culture. HC formation was also upregulated in DA-MXene treated cochlear explant culture compared with MXene samples. Mechanistic studies indicated that DA-MXene further activated signaling pathways that regulate pluripotency of stem cells compared with MXene, which is vital for restoring the plasticity of SCs. Collectively, this work proposes an innovative nanomaterial-based approach that combines chemical modification and electroactive stimulation, offering a promising strategy for regenerating HCs in SNHL.

源语言英语
期刊论文编号124344
期刊Biomaterials
335
DOI
出版状态已出版 - 12月 2026
已对外发布

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