Biohacking Nerve Repair: Novel Biomaterials, Local Drug Delivery, Electrical Stimulation, and Allografts to Aid Surgical Repair

Биохакинг восстановления нервов: новые биоматериалы, локальная доставка лекарственных средств, электрическая стимуляция и аллотрансплантаты для улучшения хирургического восстановления
Jordan R. Crabtree, Chilando M. Mulenga, Khoa Tran, Konstantin Feinberg, J. Paul Santerre, Gregory H. Borschel
2024-07-31

acellular nerve allograftselectrical stimulationlocal drug deliverynerve conduitsperipheral nerve regeneration
The regenerative capacity of the peripheral nervous system is limited, and peripheral nerve injuries often result in incomplete healing and poor outcomes even after repair. Transection injuries that induce a nerve gap necessitate microsurgical intervention; however, even the current gold standard of repair, autologous nerve graft, frequently results in poor functional recovery. Several interventions have been developed to augment the surgical repair of peripheral nerves, and the application of functional biomaterials, local delivery of bioactive substances, electrical stimulation, and allografts are among the most promising approaches to enhance innate healing across a nerve gap. Biocompatible polymers with optimized degradation rates, topographic features, and other functions provided by their composition have been incorporated into novel nerve conduits (NCs). Many of these allow for the delivery of drugs, neurotrophic factors, and whole cells locally to nerve repair sites, mitigating adverse effects that limit their systemic use. The electrical stimulation of repaired nerves in the perioperative period has shown benefits to healing and recovery in human trials, and novel biomaterials to enhance these effects show promise in preclinical models. The use of acellular nerve allografts (ANAs) circumvents the morbidity of donor nerve harvest necessitated by the use of autografts, and improvements in tissue-processing techniques may allow for more readily available and cost-effective options. Each of these interventions aid in neural regeneration after repair when applied independently, and their differing forms, benefits, and methods of application present ample opportunity for synergistic effects when applied in combination.
1
Acellular nerve allografts avoid donor-site morbidity, and improved processing may make them more accessible and cost-effective; combining interventions may produce synergistic benefits.
2
Functional biomaterials enable nerve conduits with tailored degradation, topography, and composition to support regeneration across nerve gaps.
3
Nerve conduits can locally deliver drugs, neurotrophic factors, and cells, potentially reducing adverse effects associated with systemic administration.
4
Perioperative electrical stimulation improves healing and functional recovery in human trials, while biomaterial-enhanced stimulation shows promise in preclinical models.
5
Peripheral nerve gap injuries often heal poorly after microsurgical repair, including the current autologous nerve graft standard.

peripheral nerve repair across transection-induced nerve gaps

augmentation of neural regeneration and functional recovery using biomaterials, local bioactive-agent delivery, perioperative electrical stimulation, and acellular nerve allografts

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Publication Date
2024-07-31
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Jordan R. Crabtree
Chilando M. Mulenga
Khoa Tran
Konstantin Feinberg
J. Paul Santerre
Gregory H. Borschel
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