Literature DB >> 25681572

Pathways regulating modality-specific axonal regeneration in peripheral nerve.

Matthew D Wood1, Susan E Mackinnon2.   

Abstract

Following peripheral nerve injury, the distal nerve is primed for regenerating axons by generating a permissive environment replete with glial cells, cytokines, and neurotrophic factors to encourage axonal growth. However, increasing evidence demonstrates that regenerating axons within peripheral nerves still encounter axonal-growth inhibitors, such as chondroitin sulfate proteoglycans. Given the generally poor clinical outcomes following peripheral nerve injury and reconstruction, the use of pharmacological therapies to augment axonal regeneration and overcome inhibitory signals has gained considerable interest. Joshi et al. (2014) have provided evidence for preferential or modality-specific (motor versus sensory) axonal growth and regeneration due to inhibitory signaling from Rho-associated kinase (ROCK) pathway regulation. By providing inhibition to the ROCK signaling pathway through Y-27632, they demonstrate that motor neurons regenerating their axons are impacted to a greater extent compared to sensory neurons. In light of this evidence, we briefly review the literature regarding modality-specific axonal regeneration to provide context to their findings. We also describe potential and novel barriers, such as senescent Schwann cells, which provide additional axonal-growth inhibitory factors for future consideration following peripheral nerve injury.
Copyright © 2015 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Axon modality; Chondroitin sulfate proteoglycan; Motor neuron; Nerve regeneration; Peripheral nerve; ROCK; RhoA; Schwann cell; Sensory neuron; Y-27632

Mesh:

Year:  2015        PMID: 25681572      PMCID: PMC4399493          DOI: 10.1016/j.expneurol.2015.02.001

Source DB:  PubMed          Journal:  Exp Neurol        ISSN: 0014-4886            Impact factor:   5.330


  66 in total

1.  The Rho/ROCK pathway mediates neurite growth-inhibitory activity associated with the chondroitin sulfate proteoglycans of the CNS glial scar.

Authors:  Philippe P Monnier; Ana Sierra; Jan M Schwab; Sigrid Henke-Fahle; Bernhard K Mueller
Journal:  Mol Cell Neurosci       Date:  2003-03       Impact factor: 4.314

Review 2.  Peripheral glia: Schwann cells in motion.

Authors:  Cary Lai
Journal:  Curr Biol       Date:  2005-05-10       Impact factor: 10.834

3.  Motor axons preferentially reinnervate motor pathways.

Authors:  T M Brushart
Journal:  J Neurosci       Date:  1993-06       Impact factor: 6.167

4.  Matching of motor-sensory modality in the rodent femoral nerve model shows no enhanced effect on peripheral nerve regeneration.

Authors:  David H Kawamura; Philip J Johnson; Amy M Moore; Christina K Magill; Daniel A Hunter; Wilson Z Ray; Thomas H H Tung; Susan E Mackinnon
Journal:  Exp Neurol       Date:  2010-02-01       Impact factor: 5.330

5.  Facilitated sprouting in a peripheral nerve injury.

Authors:  Q G Xu; R Midha; J A Martinez; G F Guo; D W Zochodne
Journal:  Neuroscience       Date:  2008-02-15       Impact factor: 3.590

6.  The mouse blood-brain barrier and blood-nerve barrier for IgG: a tracer study by use of the avidin-biotin system.

Authors:  R J Seitz; K Heininger; G Schwendemann; K V Toyka; W Wechsler
Journal:  Acta Neuropathol       Date:  1985       Impact factor: 17.088

7.  Studies of myelin formation after transplantation of human Schwann cells into the severe combined immunodeficient mouse.

Authors:  A D Levi; R P Bunge
Journal:  Exp Neurol       Date:  1994-11       Impact factor: 5.330

Review 8.  The senescence-associated secretory phenotype: the dark side of tumor suppression.

Authors:  Jean-Philippe Coppé; Pierre-Yves Desprez; Ana Krtolica; Judith Campisi
Journal:  Annu Rev Pathol       Date:  2010       Impact factor: 23.472

9.  Activated CREB is sufficient to overcome inhibitors in myelin and promote spinal axon regeneration in vivo.

Authors:  Ying Gao; Kangwen Deng; Jianwei Hou; J Barney Bryson; Angel Barco; Elena Nikulina; Tim Spencer; Wilfredo Mellado; Eric R Kandel; Marie T Filbin
Journal:  Neuron       Date:  2004-11-18       Impact factor: 17.173

10.  A screen for mutations in zebrafish that affect myelin gene expression in Schwann cells and oligodendrocytes.

Authors:  Natalia Kazakova; Huiliang Li; Ana Mora; Kristjan R Jessen; Rhona Mirsky; William D Richardson; Hazel K Smith
Journal:  Dev Biol       Date:  2006-07-12       Impact factor: 3.582

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  26 in total

Review 1.  Peripheral Nerve Regeneration - an Appraisal of the Current Treatment Options.

Authors:  Dragos Cinteza; Iulia Persinaru; Bogdan Mircea Maciuceanu Zarnescu; Dan Ionescu; Ioan Lascar
Journal:  Maedica (Buchar)       Date:  2015-03

Review 2.  Unlocking mammalian regeneration through hypoxia inducible factor one alpha signaling.

Authors:  Kelsey G DeFrates; Daniela Franco; Ellen Heber-Katz; Phillip B Messersmith
Journal:  Biomaterials       Date:  2021-01-09       Impact factor: 12.479

3.  Axonal Growth Arrests After an Increased Accumulation of Schwann Cells Expressing Senescence Markers and Stromal Cells in Acellular Nerve Allografts.

Authors:  Louis H Poppler; Xueping Ee; Lauren Schellhardt; Gwendolyn M Hoben; Deng Pan; Daniel A Hunter; Ying Yan; Amy M Moore; Alison K Snyder-Warwick; Sheila A Stewart; Susan E Mackinnon; Matthew D Wood
Journal:  Tissue Eng Part A       Date:  2016-07-07       Impact factor: 3.845

4.  Repairing Volumetric Muscle Loss in the Ovine Peroneus Tertius Following a 3-Month Recovery.

Authors:  Stoyna S Novakova; Brittany L Rodriguez; Emmanuel E Vega-Soto; Genevieve P Nutter; Rachel E Armstrong; Peter C D Macpherson; Lisa M Larkin
Journal:  Tissue Eng Part A       Date:  2020-02-28       Impact factor: 3.845

5.  Imaging in the repair of peripheral nerve injury.

Authors:  Igor D Luzhansky; Leland C Sudlow; David M Brogan; Matthew D Wood; Mikhail Y Berezin
Journal:  Nanomedicine (Lond)       Date:  2019-10-15       Impact factor: 5.307

6.  Comparing electrical stimulation and tacrolimus (FK506) to enhance treating nerve injuries.

Authors:  Sally Jo; Deng Pan; Alexandra E Halevi; Joseph Roh; Lauren Schellhardt; Daniel A Hunter Ra; Alison K Snyder-Warwick; Amy M Moore; Susan E Mackinnon; Matthew D Wood
Journal:  Muscle Nerve       Date:  2019-08-21       Impact factor: 3.217

7.  Functional and Molecular Characterization of a Novel Traumatic Peripheral Nerve-Muscle Injury Model.

Authors:  Renate Wanner; Manuel Gey; Alireza Abaei; Daniela Warnecke; Luisa de Roy; Lutz Dürselen; Volker Rasche; Bernd Knöll
Journal:  Neuromolecular Med       Date:  2017-07-08       Impact factor: 3.843

Review 8.  Advances in the repair of segmental nerve injuries and trends in reconstruction.

Authors:  Deng Pan; Susan E Mackinnon; Matthew D Wood
Journal:  Muscle Nerve       Date:  2020-01-13       Impact factor: 3.217

Review 9.  The Role of the IL-4 Signaling Pathway in Traumatic Nerve Injuries.

Authors:  John M Daines; Lauren Schellhardt; Matthew D Wood
Journal:  Neurorehabil Neural Repair       Date:  2021-03-23       Impact factor: 3.919

10.  Y-27632, a ROCK inhibitor, improved laser-induced shock wave (LISW)-induced cochlear synaptopathy in mice.

Authors:  Yutaka Koizumi; Kunio Mizutari; Satoko Kawauchi; Shunichi Sato; Akihiro Shiotani; Seiji Kakehata
Journal:  Mol Brain       Date:  2021-07-03       Impact factor: 4.041

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