Publication | Open Access
Tissue-engineered grafts exploit axon-facilitated axon regeneration and pathway protection to enable recovery after 5-cm nerve defects in pigs
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Citations
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References
2022
Year
Tissue EngineeringEngineeringPeripheral Nerve InjuryTeng NeuronsTissue TransplantationPeripheral NerveBiomedical EngineeringPeripheral NervesOrgan RegenerationRegenerative MedicineNeuroregenerationTranslational Tissue Engineering5-Cm Nerve DefectsNerve GraftingFunctional RestorationTissue RepairPorcine NeuronsPathway ProtectionNeural Tissue EngineeringMicrosurgical Nerve RepairTissue RegenerationDevelopmental BiologyWound HealingNeuroscienceMedicineNeural Stem Cell
Functional restoration following major peripheral nerve injury (PNI) is challenging, given slow axon growth rates and eventual regenerative pathway degradation in the absence of axons. We are developing tissue-engineered nerve grafts (TENGs) to simultaneously "bridge" missing nerve segments and "babysit" regenerative capacity by providing living axons to guide host axons and maintain the distal pathway. TENGs were biofabricated using porcine neurons and "stretch-grown" axon tracts. TENG neurons survived and elicited axon-facilitated axon regeneration to accelerate regrowth across both short (1 cm) and long (5 cm) segmental nerve defects in pigs. TENG axons also closely interacted with host Schwann cells to maintain proregenerative capacity. TENGs drove regeneration across 5-cm defects in both motor and mixed motor-sensory nerves, resulting in dense axon regeneration and electrophysiological recovery at levels similar to autograft repairs. This approach of accelerating axon regeneration while maintaining the pathway for long-distance regeneration may achieve recovery after currently unrepairable PNIs.
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