Literature DB >> 33201351

Advances and clinical challenges for translating nerve conduit technology from bench to bed side for peripheral nerve repair.

Poonam Meena1, Anupama Kakkar1, Mukesh Kumar1, Nitin Khatri1, Rakesh Kumar Nagar1, Aarti Singh1, Poonam Malhotra1, Manish Shukla1, Sumit Kumar Saraswat1, Supriya Srivastava1, Rajan Datt1, Siddharth Pandey2.   

Abstract

Injuries to the peripheral nervous system remain a large-scale clinical problem. These injuries often lead to loss of motor and/or sensory function that significantly affects patients' quality of life. The current neurosurgical approach for peripheral nerve repair involves autologous nerve transplantation, which often leads to clinical complications. The most pressing need is to increase the regenerative capacity of existing tubular constructs in the repair of large nerve gaps through development of tissue-engineered approaches that can surpass the performance of autografts. To fully realize the clinical potential of nerve conduit technology, there is a need to reconsider design strategies, biomaterial selection, fabrication techniques and the various potential modifications to optimize a conduit microenvironment that can best mimic the natural process of regeneration. In recent years, a significant progress has been made in the designing and functionality of bioengineered nerve conduits to bridge long peripheral nerve gaps in various animal models. However, translation of this work from lab to commercial scale has not been achieve. The current review summarizes recent advances in the development of tissue engineered nerve guidance conduits (NGCs) with regard to choice of material, novel fabrication methods, surface modifications and regenerative cues such as stem cells and growth factors to improve regeneration performance. Also, the current clinical potential and future perspectives to achieve therapeutic benefits of NGCs will be discussed in context of peripheral nerve regeneration.

Entities:  

Keywords:  Autograft; Mesenchymal stem cells; Nerve guidance conduit; Peripheral nerve; Schwann cell; Sciatic nerve

Year:  2020        PMID: 33201351     DOI: 10.1007/s00441-020-03301-x

Source DB:  PubMed          Journal:  Cell Tissue Res        ISSN: 0302-766X            Impact factor:   5.249


  129 in total

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3.  Tissue-engineered spiral nerve guidance conduit for peripheral nerve regeneration.

Authors:  Wei Chang; Munish B Shah; Paul Lee; Xiaojun Yu
Journal:  Acta Biomater       Date:  2018-04-24       Impact factor: 8.947

4.  Isolation of skin-derived precursors (SKPs) and differentiation and enrichment of their Schwann cell progeny.

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Journal:  Nat Protoc       Date:  2006       Impact factor: 13.491

Review 5.  Development of functional biomaterials with micro- and nanoscale technologies for tissue engineering and drug delivery applications.

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Journal:  Acta Biomater       Date:  2014-02-18       Impact factor: 8.947

7.  ECM molecules mediate both Schwann cell proliferation and activation to enhance neurite outgrowth.

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Journal:  Tissue Eng       Date:  2007-12

8.  Clinical and biometrical 12-month follow-up in patients after reconstruction of the sural nerve biopsy defect by the collagen-based nerve guide Neuromaix.

Authors:  Ahmet Bozkurt; Kristl G Claeys; Simone Schrading; Jana V Rödler; Haktan Altinova; Jörg B Schulz; Joachim Weis; Norbert Pallua; Sabien G A van Neerven
Journal:  Eur J Med Res       Date:  2017-09-22       Impact factor: 2.175

Review 9.  Current and novel polymeric biomaterials for neural tissue engineering.

Authors:  Rossana Boni; Azam Ali; Amin Shavandi; Andrew N Clarkson
Journal:  J Biomed Sci       Date:  2018-12-20       Impact factor: 8.410

10.  Directed Differentiation of Human Bone Marrow Stromal Cells to Fate-Committed Schwann Cells.

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Journal:  Stem Cell Reports       Date:  2017-09-07       Impact factor: 7.765

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  6 in total

Review 1.  Typical and atypical properties of peripheral nerve allografts enable novel strategies to repair segmental-loss injuries.

Authors:  George D Bittner; Jared S Bushman; Cameron L Ghergherehchi; Kelly C S Roballo; Jaimie T Shores; Tyler A Smith
Journal:  J Neuroinflammation       Date:  2022-02-28       Impact factor: 8.322

2.  Analysis of Influencing Factors of Repair Effect after Peripheral Nerve Injury.

Authors:  Renqun Mao; Zean Wei; Wenqing Li; Xiaodi Zhu; Dalian Du; Wei Xu
Journal:  Comput Math Methods Med       Date:  2021-11-23       Impact factor: 2.238

Review 3.  Advances in Electrospun Nerve Guidance Conduits for Engineering Neural Regeneration.

Authors:  Sanaz Behtaj; Jenny A K Ekberg; James A St John
Journal:  Pharmaceutics       Date:  2022-01-18       Impact factor: 6.321

Review 4.  Engineered Schwann Cell-Based Therapies for Injury Peripheral Nerve Reconstruction.

Authors:  Qisong Su; Moussa Ide Nasser; Jiaming He; Gang Deng; Qing Ouyang; Donglin Zhuang; Yuzhi Deng; Haoyun Hu; Nanbo Liu; Zhetao Li; Ping Zhu; Ge Li
Journal:  Front Cell Neurosci       Date:  2022-05-06       Impact factor: 5.505

5.  'EngNT' - Engineering live neural tissue for nerve replacement.

Authors:  James B Phillips
Journal:  Emerg Top Life Sci       Date:  2021-11-12

Review 6.  Peripheral Nerve Injury Treatments and Advances: One Health Perspective.

Authors:  Bruna Lopes; Patrícia Sousa; Rui Alvites; Mariana Branquinho; Ana Catarina Sousa; Carla Mendonça; Luís Miguel Atayde; Ana Lúcia Luís; Artur S P Varejão; Ana Colette Maurício
Journal:  Int J Mol Sci       Date:  2022-01-14       Impact factor: 5.923

  6 in total

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