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review article

Beyond the limiting gap length: peripheral nerve regeneration through implantable nerve guidance conduits

Riva, Eugenio Redolfi
•
Ozkan, Melis  
•
Contreras, Estefania
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February 7, 2024
Biomaterials Science

Peripheral nerve damage results in the loss of sensorimotor and autonomic functions, which is a significant burden to patients. Furthermore, nerve injuries greater than the limiting gap length require surgical repair. Although autografts are the preferred clinical choice, their usage is impeded by their limited availability, dimensional mismatch, and the sacrifice of another functional donor nerve. Accordingly, nerve guidance conduits, which are tubular scaffolds engineered to provide a biomimetic environment for nerve regeneration, have emerged as alternatives to autografts. Consequently, a few nerve guidance conduits have received clinical approval for the repair of short-mid nerve gaps but failed to regenerate limiting gap damage, which represents the bottleneck of this technology. Thus, it is still necessary to optimize the morphology and constituent materials of conduits. This review summarizes the recent advances in nerve conduit technology. Several manufacturing techniques and conduit designs are discussed, with emphasis on the structural improvement of simple hollow tubes, additive manufacturing techniques, and decellularized grafts. The main objective of this review is to provide a critical overview of nerve guidance conduit technology to support regeneration in long nerve defects, promote future developments, and speed up its clinical translation as a reliable alternative to autografts.

  • Details
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Type
review article
DOI
10.1039/d3bm01163a
Web of Science ID

WOS:001163257800001

Author(s)
Riva, Eugenio Redolfi
Ozkan, Melis  
Contreras, Estefania
Pawar, Sujeet  
Zinno, Ciro
Escarda-Castro, Enrique
Kim, Jaehyeon
Wieringa, Paul
Stellacci, Francesco  
Micera, Silvestro  
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Date Issued

2024-02-07

Publisher

Royal Soc Chemistry

Published in
Biomaterials Science
Subjects

Technology

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Rat Sciatic-Nerve

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Schwann-Cells

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In-Vitro

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Axonal Regeneration

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Mechanical-Properties

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Silicone Chambers

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Extracellular-Matrix

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Entubulation Repair

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Substrate Stiffness

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Pore Structure

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
TNE  
FunderGrant Number

Horizon 2020 Framework Programme

824071

European Union

899822

FETOPEN SOMA Project

CB06/05/1105

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Available on Infoscience
March 18, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/206402
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