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Updated: Jul 20, 2026

A Protocol for Decellularizing Mouse Cochleae for Inner Ear Tissue Engineering
Published on: January 1, 2018
Neural stem cell-loaded biohybrid hydrogel improves cochlear implants by electrode-neural coupling and neural
Menghui Liao1,2,3, Xin Zhou4, Hao Wei5,6
1State Key Laboratory of Digital Medical Engineering, Department of Otolaryngology Head and Neck Surgery, Zhongda Hospital, School of Life Sciences and Technology, Advanced Institute for Life and Health, Jiangsu Province High-Tech Key Laboratory for Bio-Medical Research, Southeast University, Nanjing, 210096, China.
None:
Background: Contemporary cochlear implants (CIs) face unresolved dual challenges: biomechanical-electrochemical mismatch at the electrode-tissue interface and progressive spiral ganglion neuron (SGN) degeneration, severely limiting long-term auditory restoration. Integrating regenerative medicine with bioelectronic engineering offers promise to overcome these bottlenecks. Methods: A biohybrid neural interface was developed by embedding neural stem cells (NSCs) in photopolymerized poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS)/collagen hydrogel. Physicochemical properties were characterized via rheometry, electron microscopy, and electrochemical impedance spectroscopy. In vitro NSC responses (proliferation/differentiation) were quantified with EdU/Tuj1 assays. Therapeutic efficacy was evaluated in guinea pigs with ouabain-induced auditory neuropathy using auditory brainstem response (ABR) thresholds and immunohistochemical SGN quantification, comparing CI-alone versus NSC-hydrogel-CI groups. Results: The photopolymerized PEDOT:PSS/collagen hydrogel demonstrated cochlear tissue-matched viscoelastic properties (storage modulus: 8.7-12.4 kPa) with injectable sol-gel transition capability, while exhibiting enhanced bioelectronic coupling through high electrical conductivity (1.3 ± 0.1 S/m) and 97.7% reduction in charge transfer resistance. This electroactive microenvironment significantly promoted NSC proliferation (+51.6%) and neuronal differentiation (+76.4%) in vitro, effects further amplified by CI stimulation to achieve +71.5% proliferation and +23.4% neuronal differentiation. In vivo evaluation using ouabain-induced auditory neuropathy guinea pigs revealed substantial functional recovery, with ABR threshold improvements of 18.8-28.8 dB across 4-12 kHz frequencies by post-operative day 14, correlating with significant SGN regeneration in the apical turn (+11.14 cells/0.01 mm²), whereas CI-alone controls exhibited negligible recovery. Conclusions: This NSC-laden conductive hydrogel establishes a self-reinforcing therapeutic paradigm that simultaneously resolves electrode-tissue mismatch through optimized bioelectronic interfacing and reverses neurodegeneration via stem cell-mediated SGN regeneration. The dual-function platform pioneers active neural repair for next-generation neuroprosthetics.

