Literature DB >> 22395197

Reproducible mouse sciatic nerve crush and subsequent assessment of regeneration by whole mount muscle analysis.

Andrew R Bauder1, Toby A Ferguson.   

Abstract

Regeneration in the peripheral nervous system (PNS) is widely studied both for its relevance to human disease and to understand the robust regenerative response mounted by PNS neurons thereby possibly illuminating the failures of CNS regeneration(1). Sciatic nerve crush (axonotmesis) is one of the most common models of peripheral nerve injury in rodents(2). Crushing interrupts all axons but Schwann cell basal laminae are preserved so that regeneration is optimal(3,4). This allows the investigator to study precisely the ability of a growing axon to interact with both the Schwann cell and basal laminae(4). Rats have generally been the preferred animal models for experimental nerve crush. They are widely available and their lesioned sciatic nerve provides a reasonable approximation of human nerve lesions(5,4). Though smaller in size than rat nerve, the mouse nerve has many similar qualities. Most importantly though, mouse models are increasingly valuable because of the wide availability of transgenic lines now allows for a detailed dissection of the individual molecules critical for nerve regeneration(6, 7). Prior investigators have used multiple methods to produce a nerve crush or injury including simple angled forceps, chilled forceps, hemostatic forceps, vascular clamps, and investigator-designed clamps(8,9,10,11,12). Investigators have also used various methods of marking the injury site including suture, carbon particles and fluorescent beads(13,14,1). We describe our method to obtain a reproducibly complete sciatic nerve crush with accurate and persistent marking of the crush-site using a fine hemostatic forceps and subsequent carbon crush-site marking. As part of our description of the sciatic nerve crush procedure we have also included a relatively simple method of muscle whole mount we use to subsequently quantify regeneration.

Entities:  

Mesh:

Year:  2012        PMID: 22395197      PMCID: PMC3376939          DOI: 10.3791/3606

Source DB:  PubMed          Journal:  J Vis Exp        ISSN: 1940-087X            Impact factor:   1.355


  12 in total

1.  Standardizing nerve crushes with a non-serrated clamp.

Authors:  G M Beer; J Steurer; V E Meyer
Journal:  J Reconstr Microsurg       Date:  2001-10       Impact factor: 2.873

2.  Effects of neurotoxic and neuroprotective agents on peripheral nerve regeneration assayed by time-lapse imaging in vivo.

Authors:  Y Albert Pan; Thomas Misgeld; Jeff W Lichtman; Joshua R Sanes
Journal:  J Neurosci       Date:  2003-12-10       Impact factor: 6.167

3.  A new approach to assess function after sciatic nerve lesion in the mouse - adaptation of the sciatic static index.

Authors:  Abrahão Fontes Baptista; Joyce Rios de Souza Gomes; Júlia Teixeria Oliveira; Soraia Moreira Garzedim Santos; Marcos André Vannier-Santos; Ana Maria Blanco Martinez
Journal:  J Neurosci Methods       Date:  2007-01-03       Impact factor: 2.390

4.  Long-term functional and morphological assessment of a standardized rat sciatic nerve crush injury with a non-serrated clamp.

Authors:  A L Luís; S Amado; S Geuna; J M Rodrigues; M J Simões; J D Santos; F Fregnan; S Raimondo; A Prieto Veloso; A J A Ferreira; P A S Armada-da-Silva; A S P Varejão; A C Maurício
Journal:  J Neurosci Methods       Date:  2007-02-21       Impact factor: 2.390

5.  Neural cell transplantation effects on sciatic nerve regeneration after a standardized crush injury in the rat.

Authors:  A L Luís; J M Rodrigues; S Geuna; S Amado; M J Simões; F Fregnan; A J Ferreira; A P Veloso; P A S Armada-da-Silva; A S P Varejão; A C Maurício
Journal:  Microsurgery       Date:  2008       Impact factor: 2.425

6.  Use of hybrid chitosan membranes and N1E-115 cells for promoting nerve regeneration in an axonotmesis rat model.

Authors:  S Amado; M J Simões; P A S Armada da Silva; A L Luís; Y Shirosaki; M A Lopes; J D Santos; F Fregnan; G Gambarotta; S Raimondo; M Fornaro; A P Veloso; A S P Varejão; A C Maurício; S Geuna
Journal:  Biomaterials       Date:  2008-08-23       Impact factor: 12.479

7.  Quantification of N-CAM and N-cadherin expression in axotomized and crushed rat sciatic nerve.

Authors:  M R Thornton; C Mantovani; M A Birchall; G Terenghi
Journal:  J Anat       Date:  2005-01       Impact factor: 2.610

8.  Reinnervation of the tibialis anterior following sciatic nerve crush injury: a confocal microscopic study in transgenic mice.

Authors:  Christina K Magill; Alice Tong; David Kawamura; Ayato Hayashi; Daniel A Hunter; Alexander Parsadanian; Susan E Mackinnon; Terence M Myckatyn
Journal:  Exp Neurol       Date:  2007-06-14       Impact factor: 5.330

9.  Standardized crush injury of the mouse median nerve.

Authors:  G Ronchi; S Raimondo; A S P Varejão; P Tos; I Perroteau; S Geuna
Journal:  J Neurosci Methods       Date:  2010-01-25       Impact factor: 2.390

10.  Analysis of axonal regeneration in the central and peripheral nervous systems of the NG2-deficient mouse.

Authors:  Mohammed K Hossain-Ibrahim; Kia Rezajooi; William B Stallcup; Alexander R Lieberman; Patrick N Anderson
Journal:  BMC Neurosci       Date:  2007-09-27       Impact factor: 3.288

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  28 in total

Review 1.  Optic nerve regeneration in mammals: Regenerated or spared axons?

Authors:  Dietmar Fischer; Alan R Harvey; Vincent Pernet; Vance P Lemmon; Kevin K Park
Journal:  Exp Neurol       Date:  2017-07-14       Impact factor: 5.330

2.  Standardized Profiling of The Membrane-Enriched Proteome of Mouse Dorsal Root Ganglia (DRG) Provides Novel Insights Into Chronic Pain.

Authors:  Tom Rouwette; Julia Sondermann; Luca Avenali; David Gomez-Varela; Manuela Schmidt
Journal:  Mol Cell Proteomics       Date:  2016-04-21       Impact factor: 5.911

3.  Facial nerve axotomy in mice: a model to study motoneuron response to injury.

Authors:  Deborah N Olmstead; Nichole A Mesnard-Hoaglin; Richard J Batka; Melissa M Haulcomb; Whitney M Miller; Kathryn J Jones
Journal:  J Vis Exp       Date:  2015-02-23       Impact factor: 1.355

4.  Calpains mediate axonal cytoskeleton disintegration during Wallerian degeneration.

Authors:  Marek Ma; Toby A Ferguson; Kathleen M Schoch; Jian Li; Yaping Qian; Frances S Shofer; Kathryn E Saatman; Robert W Neumar
Journal:  Neurobiol Dis       Date:  2013-03-28       Impact factor: 5.996

5.  Gpr126/Adgrg6 Has Schwann Cell Autonomous and Nonautonomous Functions in Peripheral Nerve Injury and Repair.

Authors:  Amit Mogha; Breanne L Harty; Dan Carlin; Jessica Joseph; Nicholas E Sanchez; Ueli Suter; Xianhua Piao; Valeria Cavalli; Kelly R Monk
Journal:  J Neurosci       Date:  2016-12-07       Impact factor: 6.167

6.  Aquaporin-1 water permeability as a novel determinant of axonal regeneration in dorsal root ganglion neurons.

Authors:  Hua Zhang; A S Verkman
Journal:  Exp Neurol       Date:  2015-01-10       Impact factor: 5.330

7.  PMP22 antisense oligonucleotides reverse Charcot-Marie-Tooth disease type 1A features in rodent models.

Authors:  Hien Tran Zhao; Sagar Damle; Karli Ikeda-Lee; Steven Kuntz; Jian Li; Apoorva Mohan; Aneeza Kim; Gene Hung; Mark A Scheideler; Steven S Scherer; John Svaren; Eric E Swayze; Holly B Kordasiewicz
Journal:  J Clin Invest       Date:  2017-12-04       Impact factor: 14.808

8.  The Cofilin/Limk1 Pathway Controls the Growth Rate of Both Developing and Regenerating Motor Axons.

Authors:  Michele E Frendo; Alexandra da Silva; Keith D Phan; Soizic Riche; Samantha J Butler
Journal:  J Neurosci       Date:  2019-10-02       Impact factor: 6.167

9.  Reversal of Fatty Infiltration After Suprascapular Nerve Compression Release Is Dependent on UCP1 Expression in Mice.

Authors:  Zili Wang; Brian T Feeley; Hubert T Kim; Xuhui Liu
Journal:  Clin Orthop Relat Res       Date:  2018-08       Impact factor: 4.176

10.  Self-assembling multidomain peptide hydrogels accelerate peripheral nerve regeneration after crush injury.

Authors:  Tania L Lopez-Silva; Carlo D Cristobal; Cheuk Sun Edwin Lai; Viridiana Leyva-Aranda; Hyun Kyoung Lee; Jeffrey D Hartgerink
Journal:  Biomaterials       Date:  2020-09-19       Impact factor: 12.479

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