Literature DB >> 29125428

Schwann cells and mesenchymal stem cells in laminin- or fibronectin-aligned matrices and regeneration across a critical size defect of 15 mm in the rat sciatic nerve.

Francisco Gonzalez-Perez1, Joaquim Hernández1, Claudia Heimann2, James B Phillips3, Esther Udina1, Xavier Navarro1.   

Abstract

OBJECTIVE Artificial nerve guides are being developed to substitute for autograft repair after peripheral nerve injuries. However, the use of conduits is limited by the length of the gap that needs to be bridged, with the success of regeneration highly compromised in long gaps. Addition of aligned proregenerative cells and extracellular matrix (ECM) components inside the conduit can be a good strategy to achieve artificial grafts that recreate the natural environment offered by a nerve graft. The purpose of this study was to functionalize chitosan devices with different cell types to support regeneration in limiting gaps in the rat peripheral nerve. METHODS The authors used chitosan devices combined with proteins of the ECM and cells in a rat model of sciatic nerve injury. Combinations of fibronectin and laminin with mesenchymal stem cells (MSCs) or Schwann cells (SCs) were aligned within tethered collagen-based gels, which were placed inside chitosan tubes that were then used to repair a critical-size gap of 15 mm in the rat sciatic nerve. Electrophysiology and algesimetry tests were performed to analyze functional recovery during the 4 months after injury and repair. Histological analysis was performed at the midlevel and distal level of the tubes to assess the number of regenerated myelinated fibers. RESULTS Functional analysis demonstrated that SC-aligned scaffolds resulted in 100% regeneration success in a 15-mm nerve defect in this rat model. In contrast, animals that underwent repair with MSC-aligned constructs had only 90% regeneration success, and those implanted with acellular bridges had only 75% regeneration success. CONCLUSIONS These results indicate that the combination of chitosan conduits with ECM-enriched cellular gels represents a good alternative to the use of autografts for repairing long nerve gaps.

Entities:  

Keywords:  CMAP = compound muscle action potential; FBS = fetal bovine serum; MSC = mesenchymal stem cell; PBS = phosphate-buffered saline; SC = Schwann cell; Schwann cells; alignment; chitosan; dpo = days postoperation; extracellular matrix; fibronectin; peripheral nerve

Mesh:

Substances:

Year:  2017        PMID: 29125428     DOI: 10.3171/2017.5.SPINE161100

Source DB:  PubMed          Journal:  J Neurosurg Spine        ISSN: 1547-5646


  13 in total

Review 1.  Advances and clinical challenges for translating nerve conduit technology from bench to bed side for peripheral nerve repair.

Authors:  Poonam Meena; Anupama Kakkar; Mukesh Kumar; Nitin Khatri; Rakesh Kumar Nagar; Aarti Singh; Poonam Malhotra; Manish Shukla; Sumit Kumar Saraswat; Supriya Srivastava; Rajan Datt; Siddharth Pandey
Journal:  Cell Tissue Res       Date:  2020-11-17       Impact factor: 5.249

2.  Engineered Tissues Made from Human iPSC-Derived Schwann Cells for Investigating Peripheral Nerve Regeneration In Vitro.

Authors:  Rebecca Powell; James B Phillips
Journal:  Methods Mol Biol       Date:  2021

Review 3.  Modification of tubular chitosan-based peripheral nerve implants: applications for simple or more complex approaches.

Authors:  Nina Dietzmeyer; Maria Förthmann; Claudia Grothe; Kirsten Haastert-Talini
Journal:  Neural Regen Res       Date:  2020-08       Impact factor: 5.135

4.  Regenerative Effects and Development Patterns of Solid Neural Tissue Grafts Located in Gelatin Hydrogel Conduit for Treatment of Peripheral Nerve Injury.

Authors:  Kirill K Sukhinich; Erdem B Dashinimaev; Ekaterina A Vorotelyak; Maria A Aleksandrova
Journal:  Plast Reconstr Surg Glob Open       Date:  2020-02-11

5.  Human Platelet Lysate Acts Synergistically With Laminin to Improve the Neurotrophic Effect of Human Adipose-Derived Stem Cells on Primary Neurons in vitro.

Authors:  Martino Guiotto; Wassim Raffoul; Andrew M Hart; Mathis O Riehle; Pietro G di Summa
Journal:  Front Bioeng Biotechnol       Date:  2021-03-19

6.  Comprehensive strategy of conduit guidance combined with VEGF producing Schwann cells accelerates peripheral nerve repair.

Authors:  Ping Wu; Zan Tong; Lihua Luo; Yanan Zhao; Feixiang Chen; Yinping Li; Céline Huselstein; Qifa Ye; Qingsong Ye; Yun Chen
Journal:  Bioact Mater       Date:  2021-03-21

Review 7.  Strategies for Peripheral Nerve Repair.

Authors:  Matthew Wilcox; Holly Gregory; Rebecca Powell; Tom J Quick; James B Phillips
Journal:  Curr Tissue Microenviron Rep       Date:  2020-04-21

8.  An update-tissue engineered nerve grafts for the repair of peripheral nerve injuries.

Authors:  Nitesh P Patel; Kristopher A Lyon; Jason H Huang
Journal:  Neural Regen Res       Date:  2018-05       Impact factor: 5.135

Review 9.  Restoration of Neurological Function Following Peripheral Nerve Trauma.

Authors:  Damien P Kuffler; Christian Foy
Journal:  Int J Mol Sci       Date:  2020-03-06       Impact factor: 5.923

10.  In Vivo and In Vitro Evaluation of a Novel Hyaluronic Acid-Laminin Hydrogel as Luminal Filler and Carrier System for Genetically Engineered Schwann Cells in Critical Gap Length Tubular Peripheral Nerve Graft in Rats.

Authors:  Nina Dietzmeyer; Zhong Huang; Tobias Schüning; Shimon Rochkind; Mara Almog; Zvi Nevo; Thorsten Lieke; Svenja Kankowski; Kirsten Haastert-Talini
Journal:  Cell Transplant       Date:  2020 Jan-Dec       Impact factor: 4.064

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