Literature DB >> 33104075

Automated Gait Analysis to Assess Functional Recovery in Rodents with Peripheral Nerve or Spinal Cord Contusion Injury.

Johannes Heinzel1, Nicole Swiadek2, Mohamed Ashmwe2, Alexander Rührnößl2, Viola Oberhauser2, Jonas Kolbenschlag3, David Hercher4.   

Abstract

Peripheral and central nerve injuries are mostly studied in rodents, especially rats, given the fact that these animal models are both cost-effective and a lot of comparative data has been published in the literature. This includes a multitude of assessment methods to study functional recovery following nerve injury and repair. Besides evaluation of nerve regeneration by means of histology, electrophysiology, and other in vivo and in vitro assessment techniques, functional recovery is the most important criterion to determine the degree of neural regeneration. Automated gait analysis allows recording of a vast quantity of gait-related parameters such as Paw Print Area and Paw Swing Speed as well as measures of inter-limb coordination. Additionally, the method provides digital data of the rats' paws after neuronal damage and during nerve regeneration, adding to our understanding of how peripheral and central nervous injuries affect their locomotor behavior. Besides the predominantly used sciatic nerve injury model, other models of peripheral nerve injury such as the femoral nerve can be studied by means of this method. In addition to injuries of the peripheral nervous systems, lesions of the central nervous system, e.g., spinal cord contusion can be evaluated. Valid and reproducible data assessment is strongly dependent on meticulous adjustment of the hard- and software settings prior to data acquisition. Additionally, proper training of the experimental animals is of crucial importance. This work aims to illustrate the use of computerized automated gait analysis to assess functional recovery in different animal models of peripheral nerve injury as well as spinal cord contusion injury. It also emphasizes the method's limitations, e.g., evaluation of nerve regeneration in rats with sciatic nerve neurotmesis due to limited functional recovery. Therefore, this protocol is thought to help researchers interested in peripheral and central nervous injuries to assess functional recovery in rodent models.

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Year:  2020        PMID: 33104075     DOI: 10.3791/61852

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


  3 in total

1.  The Development of Hindlimb Postural Asymmetry Induced by Focal Traumatic Brain Injury Is Not Related to Serotonin 2A/C Receptor Expression in the Spinal Cord.

Authors:  Marlene Storm Andersen; Dilârâ Bedriye Güler; Jonas Larsen; Karen Kalhøj Rich; Åsa Fex Svenningsen; Mengliang Zhang
Journal:  Int J Mol Sci       Date:  2022-05-11       Impact factor: 6.208

2.  Vestibular Hair Cells Require CAMSAP3, a Microtubule Minus-End Regulator, for Formation of Normal Kinocilia.

Authors:  Josephine O'Donnell; Jing Zheng
Journal:  Front Cell Neurosci       Date:  2022-06-17       Impact factor: 6.147

3.  ESWT Diminishes Axonal Regeneration following Repair of the Rat Median Nerve with Muscle-In-Vein Conduits but Not after Autologous Nerve Grafting.

Authors:  Johannes C Heinzel; Viola Oberhauser; Claudia Keibl; Barbara Schädl; Nicole V Swiadek; Gregor Längle; Helen Frick; Cyrill Slezak; Cosima Prahm; Johannes Grillari; Jonas Kolbenschlag; David Hercher
Journal:  Biomedicines       Date:  2022-07-22
  3 in total

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