ArticleBioactive materials2026
Magnetic-topological multistage synergy: Anisotropic ovalbumin scaffolds loaded with magnetically-responsive neural cells for long-distance peripheral nerve regeneration.
Article in Bioactive materials, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 1 paper.
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1 citing paper in PubMed.
- Smart-responsive electrospun scaffolds (SRES) for neural repair: Recent advances and future prospects.Bioactive materials · 2026Review
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14 authors.
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Abstract
Rapid repair and functional reconstruction of long-distance peripheral nerve injury (PNI) is an important clinical challenge, but existing therapeutic strategies are unable to go beyond autologous nerve grafts to meet the clinical needs. Anisotropic topology can regulate the migration direction of nerve fibers, and magnetized nerve cells can accelerate the nerve regeneration process by directional migration driven via exogenous magnetic field, but there are rare reports of anisotropic topologized nerve grafts loaded with magnetized nerve cells for long-distance peripheral nerve regeneration (PNR). This study reports an anisotropic topological ovalbumin (OVA) scaffold loaded with magnetically responsive nerve cells for the repair of long-distance PNI. Compared with traditional nerve scaffolds, this scaffold system can synergize the stimulating effect of an exogenous magnetic field and the oriented topological structure of the scaffold to accelerate nerve cells migration and nerve regeneration process via regulating PI3K, ERK, and Ca
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