TY - JOUR
T1 - Synergistic effects of electrical and chemical cues with biodegradable scaffolds for large peripheral nerve defect regeneration
AU - Bordett, Rosalie
AU - Abdulmalik, Sama
AU - Zennifer, Allen
AU - Wijekoon, Suranji
AU - Srinivasan, Sai Sadhananth
AU - Coskun, Ergin
AU - Banasavadi Siddegowda, Yeshavanth Kumar
AU - Yu, Xiaojun
AU - Kumbar, Sangamesh G.
N1 - Publisher Copyright:
© 2025 The Authors
PY - 2025/7
Y1 - 2025/7
N2 - Large-gap peripheral nerve injuries (PNI) are often treated with autografts, allografts, or synthetic grafts to facilitate nerve regeneration, but these options are often limited in their availability or functionality. To address these issues, we developed ionically conductive (IC) nerve guidance conduits (NGCs) of sufficient biodegradability, mechanical strength, and bioactivity to support large-gap nerve regeneration. These chitosan-based NGCs release 4-aminopyridine (4-AP) from embedded halloysite nanotubes, and the NGC's IC properties enable transcutaneous electrical stimulation (ES) without invasive electrodes. In vitro, we found scaffolds with ES+4-AP synergistically enhanced Schwann cell adhesion, proliferation, and neurotrophin secretion, significantly improving axonal growth and neurite extension. In vivo, these scaffolds in large-gap PNI boosted neurotrophin levels, myelination, nerve function, and muscle weight while promoting angiogenesis and reducing fibrosis. Upregulated Trk receptors and PI3K/Akt and MAPK pathway highlight the regenerative potential. This study advances understanding of ES-mediated regeneration and supports innovative strategies for nerve and musculoskeletal repair.
AB - Large-gap peripheral nerve injuries (PNI) are often treated with autografts, allografts, or synthetic grafts to facilitate nerve regeneration, but these options are often limited in their availability or functionality. To address these issues, we developed ionically conductive (IC) nerve guidance conduits (NGCs) of sufficient biodegradability, mechanical strength, and bioactivity to support large-gap nerve regeneration. These chitosan-based NGCs release 4-aminopyridine (4-AP) from embedded halloysite nanotubes, and the NGC's IC properties enable transcutaneous electrical stimulation (ES) without invasive electrodes. In vitro, we found scaffolds with ES+4-AP synergistically enhanced Schwann cell adhesion, proliferation, and neurotrophin secretion, significantly improving axonal growth and neurite extension. In vivo, these scaffolds in large-gap PNI boosted neurotrophin levels, myelination, nerve function, and muscle weight while promoting angiogenesis and reducing fibrosis. Upregulated Trk receptors and PI3K/Akt and MAPK pathway highlight the regenerative potential. This study advances understanding of ES-mediated regeneration and supports innovative strategies for nerve and musculoskeletal repair.
KW - 4-Aminopyridine (4-AP)
KW - Ionically conductive nerve conduits
KW - Neurotrophic factors
KW - Peripheral nerve regeneration
KW - Schwann cell proliferation
KW - Sciatic nerve injury repair
KW - Transcutaneous electrical stimulation
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UR - http://www.scopus.com/inward/citedby.url?scp=105001030210&partnerID=8YFLogxK
U2 - 10.1016/j.bioactmat.2025.03.017
DO - 10.1016/j.bioactmat.2025.03.017
M3 - Article
AN - SCOPUS:105001030210
SN - 2452-199X
VL - 49
SP - 586
EP - 607
JO - Bioactive Materials
JF - Bioactive Materials
ER -