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Advances in Material-Assisted Electromagnetic Neural Stimulation.

Yuting SunZhifeng XiaoBing ChenYannan ZhaoJian-Wu Dai
Published in: Advanced materials (Deerfield Beach, Fla.) (2024)
Bioelectricity plays a crucial role in organisms, being closely connected to neural activity and physiological processes. Disruptions in the nervous system can lead to chaotic ionic currents at the injured site, causing disturbances in the local cellular microenvironment, impairing biological pathways, and resulting in a loss of neural functions. Electromagnetic stimulation has the ability to generate internal currents, which can be utilized to counter tissue damage and aid in the restoration of movement in paralyzed limbs. By incorporating implanted materials, electromagnetic stimulation can be targeted more accurately, thereby significantly improving the effectiveness and safety of such interventions. Currently, there have been significant advancements in the development of numerous promising electromagnetic stimulation strategies with diverse materials. This review provides a comprehensive summary of the fundamental theories, neural stimulation modulating materials, material application strategies, and pre-clinical therapeutic effects associated with electromagnetic stimulation for neural repair. It offers a thorough analysis of current techniques that employ materials to enhance electromagnetic stimulation, as well as potential therapeutic strategies for future applications. This article is protected by copyright. All rights reserved.
Keyphrases
  • high frequency
  • stem cells
  • physical activity
  • signaling pathway
  • risk assessment
  • climate change
  • current status
  • multidrug resistant