Publication | Open Access
Functional neurological restoration of amputated peripheral nerve using biohybrid regenerative bioelectronics
56
Citations
20
References
2023
Year
Tissue EngineeringAmputated Peripheral NerveEngineeringPeripheral Nerve InjuryPeripheral NerveBiomedical EngineeringForearm Nerve BundlePeripheral NervesBiohybrid Regenerative BioelectronicsPeripheral Nervous SystemRegenerative MedicineNeuroregenerationNeurologyNeurorehabilitationNerve GraftingBio-electronic InterfacesFlexible Electrode ArraysRehabilitationFunctional Neurological RestorationNeural Tissue EngineeringImplantable DeviceCell EngineeringNeural InterfaceNeural InterfacesProstheticsInduced Pluripotent Stem CellBioelectronicsNeuroscienceMedicine
The development of neural interfaces with superior biocompatibility and improved tissue integration is vital for treating and restoring neurological functions in the nervous system. A critical factor is to increase the resolution for mapping neuronal inputs onto implants. For this purpose, we have developed a new category of neural interface comprising induced pluripotent stem cell (iPSC)-derived myocytes as biological targets for peripheral nerve inputs that are grafted onto a flexible electrode arrays. We show long-term survival and functional integration of a biohybrid device carrying human iPSC-derived cells with the forearm nerve bundle of freely moving rats, following 4 weeks of implantation. By improving the tissue-electronics interface with an intermediate cell layer, we have demonstrated enhanced resolution and electrical recording in vivo as a first step toward restorative therapies using regenerative bioelectronics.
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