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Electroactive scaffolds for spinal cord injury repair: Modulating the electrophysiological homeostasis

  • Xiaochen Su
  • , Shenglong Wang
  • , Jing Tian
  • , Zuhao Zhang
  • , Songchuan Zhao
  • , Bo Lei
  • , Yingang Zhang
  • The First Affiliated Hospital of Xi’an Jiaotong University
  • Frontier Institute of Science and Technology
  • Xi'an Jiaotong University

Research output: Contribution to journalReview articlepeer-review

Abstract

Spinal cord injury (SCI) is a devastating neurological disorder characterized by neuronal loss, glial activation, disruption of electrophysiological homeostasis, and disconnection of neural circuits. Increasing evidence indicates that endogenous bioelectrical signaling is a fundamental regulator of neural development, tissue homeostasis, and functional regeneration. Accordingly, reconstruction of the electrophysiological microenvironment has emerged as a promising therapeutic strategy for SCI repair. This review systematically summarizes the dynamic alterations in electrophysiological homeostasis following SCI and discusses how disrupted bioelectrical signaling contributes to impaired neural regeneration. We further provide a comprehensive overview of recent advances in electroactive scaffolds, including conductive, piezoelectric, and magnetoelectric platforms, with emphasis on their electrical activation mechanisms, material characteristics, biological functions, and translational potential. Although conductive, piezoelectric, and magnetoelectric scaffolds employ distinct mechanisms to generate electrical cues, they converge on a common therapeutic strategy of restoring electrophysiological homeostasis through modulation of membrane potential, ion channel activity, and bioelectrical signaling. This coordinated regulation establishes a favorable microenvironment for neural regeneration, ultimately promoting neural circuit reconstruction and functional recovery. Current preclinical studies consistently demonstrate the considerable therapeutic potential of electroactive scaffolds, whereas important challenges remain regarding long-term biosafety, degradation behavior, optimization of stimulation protocols, and clinical translation. Finally, future perspectives are discussed from the standpoint of mechanism-guided scaffold design, intelligent bioelectrical regulation, standardized preclinical evaluation, and multidisciplinary integration. Collectively, this review provides a unified framework for understanding how electroactive scaffolds reconstruct the electrophysiological microenvironment to restore electrophysiological homeostasis, offering new insights into their future clinical translation for SCI repair.

Original languageEnglish
Pages (from-to)97-119
Number of pages23
JournalTranslational Research
Volume296
DOIs
StatePublished - Oct 2026
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Electrical signal
  • Electrical stimulation
  • Electroactive scaffolds
  • Neural tissue engineering
  • Spinal cord injury

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