Literature DB >> 31576820

Synthetic bioresorbable poly-α-hydroxyesters as peripheral nerve guidance conduits; a review of material properties, design strategies and their efficacy to date.

Patrick Duffy1, Seán McMahon, Xi Wang, Shane Keaveney, Eoin D O'Cearbhaill, Iban Quintana, Francisco J Rodríguez, Wenxin Wang.   

Abstract

Implantable tubular devices known as nerve guidance conduits (NGCs) have drawn considerable interest as an alternative to autografting in the repair of peripheral nerve injuries. At present, there exists a lack of biodegradable, biocompatible materials for the fabrication of NGCs with physical properties which suitably match the native nerve tissue. Most of the existing reports have been confined to the traditional synthetic aliphatic polyesters due to their naturally-occurring degradation by-products, suitably slow in vivo resorption timeframes and relatively diverse and tailorable range of material properties. Moreover, these thermoplastic polymers can be processed into NGCs from various methods and further tweaking of physical properties can be achieved during fabrication. Although there have been many successful reports of nerve gap repair using NGCs made from these materials, the majority have been confined to basic tubular designs across short to medium nerve gaps with at best equivalent outcomes to autografts. This article reviews the performance of poly-α-hydroxyester tubes to date (including modifications to basic hollow conduits) and is intended to aid researchers as they aim to create biomimetic NGCs capable of bridging larger nerve gaps with superior results to autografting. Based on the existing reports, a next-generation bioresorbable NGC should involve a highly flexible poly-α-hydroxyester outer tube, most suitably from a lactide-caprolactone co-polymer, with some combination of internal lumen contact guidance and bioactive neurotrophic factors. However, detailed further experimentation and an interdisciplinary approach will be required to arrive at an ideal final configuration.

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Year:  2019        PMID: 31576820     DOI: 10.1039/c9bm00246d

Source DB:  PubMed          Journal:  Biomater Sci        ISSN: 2047-4830            Impact factor:   6.843


  4 in total

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Authors:  Tianhao Yu; Yingxi Xu; Muhammad Arslan Ahmad; Rabia Javed; Haruo Hagiwara; Xiaohong Tian
Journal:  Curr Neuropharmacol       Date:  2021       Impact factor: 7.708

2.  Fibroblasts Colonizing Nerve Conduits Express High Levels of Soluble Neuregulin1, a Factor Promoting Schwann Cell Dedifferentiation.

Authors:  Benedetta E Fornasari; Marwa El Soury; Giulia Nato; Alessia Fucini; Giacomo Carta; Giulia Ronchi; Alessandro Crosio; Isabelle Perroteau; Stefano Geuna; Stefania Raimondo; Giovanna Gambarotta
Journal:  Cells       Date:  2020-06-01       Impact factor: 6.600

Review 3.  Implantable nerve guidance conduits: Material combinations, multi-functional strategies and advanced engineering innovations.

Authors:  Yixin Yan; Ruotong Yao; Jingyuan Zhao; Kaili Chen; Lirong Duan; Tian Wang; Shujun Zhang; Jinping Guan; Zhaozhu Zheng; Xiaoqin Wang; Zekun Liu; Yi Li; Gang Li
Journal:  Bioact Mater       Date:  2021-10-05

4.  Coupling Additive Manufacturing with Hot Melt Extrusion Technologies to Validate a Ventilator-Associated Pneumonia Mouse Model.

Authors:  Bahaa Shaqour; Juliana Aizawa; Clara Guarch-Pérez; Żaneta Górecka; Lars Christophersen; Wim Martinet; Emilia Choińska; Martijn Riool; Bart Verleije; Koen Beyers; Claus Moser; Wojciech Święszkowski; Sebastian A J Zaat; Paul Cos
Journal:  Pharmaceutics       Date:  2021-05-21       Impact factor: 6.321

  4 in total

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