Literature DB >> 22090283

A biomaterials approach to peripheral nerve regeneration: bridging the peripheral nerve gap and enhancing functional recovery.

W Daly1, L Yao, D Zeugolis, A Windebank, A Pandit.   

Abstract

Microsurgical techniques for the treatment of large peripheral nerve injuries (such as the gold standard autograft) and its main clinically approved alternative--hollow nerve guidance conduits (NGCs)--have a number of limitations that need to be addressed. NGCs, in particular, are limited to treating a relatively short nerve gap (4 cm in length) and are often associated with poor functional recovery. Recent advances in biomaterials and tissue engineering approaches are seeking to overcome the limitations associated with these treatment methods. This review critically discusses the advances in biomaterial-based NGCs, their limitations and where future improvements may be required. Recent developments include the incorporation of topographical guidance features and/or intraluminal structures, which attempt to guide Schwann cell (SC) migration and axonal regrowth towards their distal targets. The use of such strategies requires consideration of the size and distribution of these topographical features, as well as a suitable surface for cell-material interactions. Likewise, cellular and molecular-based therapies are being considered for the creation of a more conductive nerve microenvironment. For example, hurdles associated with the short half-lives and low stability of molecular therapies are being surmounted through the use of controlled delivery systems. Similarly, cells (SCs, stem cells and genetically modified cells) are being delivered with biomaterial matrices in attempts to control their dispersion and to facilitate their incorporation within the host regeneration process. Despite recent advances in peripheral nerve repair, there are a number of key factors that need to be considered in order for these new technologies to reach the clinic.

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Year:  2011        PMID: 22090283      PMCID: PMC3243399          DOI: 10.1098/rsif.2011.0438

Source DB:  PubMed          Journal:  J R Soc Interface        ISSN: 1742-5662            Impact factor:   4.118


  121 in total

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2.  Collagen filaments as a scaffold for nerve regeneration.

Authors:  S Yoshii; M Oka
Journal:  J Biomed Mater Res       Date:  2001-09-05

3.  Gene profiling and bioinformatic analysis of Schwann cell embryonic development and myelination.

Authors:  Maurizio D'Antonio; David Michalovich; Morris Paterson; Anna Droggiti; Ashwin Woodhoo; Rhona Mirsky; Kristjan R Jessen
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Review 4.  Functional mimetics of neurotrophins and their receptors.

Authors:  J Peleshok; H U Saragovi
Journal:  Biochem Soc Trans       Date:  2006-08       Impact factor: 5.407

Review 5.  Peripheral nerve regeneration: an opinion on channels, scaffolds and anisotropy.

Authors:  Ravi V Bellamkonda
Journal:  Biomaterials       Date:  2006-03-14       Impact factor: 12.479

Review 6.  Intracellular control of developmental and regenerative axon growth.

Authors:  Feng-Quan Zhou; William D Snider
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2006-09-29       Impact factor: 6.237

7.  Increased vascularisation enhances axonal regeneration within an acellular nerve conduit.

Authors:  Mark I Hobson
Journal:  Ann R Coll Surg Engl       Date:  2002-01       Impact factor: 1.891

8.  Repairing a 35-mm-long median nerve defect with a chitosan/PGA artificial nerve graft in the human: a case study.

Authors:  Weimin Fan; Jianhui Gu; Wen Hu; Aidong Deng; Yimin Ma; Jie Liu; Fei Ding; Xiaosong Gu
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9.  Nerve conduit filled with GDNF gene-modified Schwann cells enhances regeneration of the peripheral nerve.

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Journal:  Microsurgery       Date:  2006       Impact factor: 2.425

Review 10.  Chapter 8: Current techniques and concepts in peripheral nerve repair.

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  119 in total

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Journal:  Tissue Eng Part C Methods       Date:  2015-11-06       Impact factor: 3.056

2.  Nanofiber-Based Multi-Tubular Conduits with a Honeycomb Structure for Potential Application in Peripheral Nerve Repair.

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Journal:  Macromol Biosci       Date:  2018-06-28       Impact factor: 4.979

3.  Electrophysiological assessment of a peptide amphiphile nanofiber nerve graft for facial nerve repair.

Authors:  Jacqueline J Greene; Mark T McClendon; Nicholas Stephanopoulos; Zaida Álvarez; Samuel I Stupp; Claus-Peter Richter
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4.  c-Jun gene-modified Schwann cells: upregulating multiple neurotrophic factors and promoting neurite outgrowth.

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Journal:  Tissue Eng Part A       Date:  2015-04       Impact factor: 3.845

Review 5.  Clinical outcomes for Conduits and Scaffolds in peripheral nerve repair.

Authors:  David J Gerth; Jun Tashiro; Seth R Thaller
Journal:  World J Clin Cases       Date:  2015-02-16       Impact factor: 1.337

Review 6.  Innervation: the missing link for biofabricated tissues and organs.

Authors:  Suradip Das; Wisberty J Gordián-Vélez; Harry C Ledebur; Foteini Mourkioti; Panteleimon Rompolas; H Isaac Chen; Mijail D Serruya; D Kacy Cullen
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7.  The development of a normalization method for comparing nerve regeneration effectiveness among different graft types.

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8.  A bioengineered peripheral nerve construct using aligned peptide amphiphile nanofibers.

Authors:  Andrew Li; Akishige Hokugo; Anisa Yalom; Eric J Berns; Nicholas Stephanopoulos; Mark T McClendon; Luis A Segovia; Igor Spigelman; Samuel I Stupp; Reza Jarrahy
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9.  Novel spiral structured nerve guidance conduits with multichannels and inner longitudinally aligned nanofibers for peripheral nerve regeneration.

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10.  Pro-neurogenic effect of β-asarone on RSC96 Schwann cells in vitro.

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