Literature DB >> 33499447

Novel Real-time Digital Pressure Sensor Reveals Wide Variations in Current Nerve Crush Injury Models.

Grant D Wandling1, Jung Il Lee1,2, M A Hassan Talukder1, Prem Kumar Govindappa1, John C Elfar1.   

Abstract

INTRODUCTION: Peripheral nerve crush injury (PNCI) models are commonly used to study nerve damage and the potential beneficial effects of novel therapeutic strategies. Current models of PNCI rely on inter-device and operator precision to limit the variation with applied pressure. Although the inability to accurately quantify the PNCI pressure may result in reduced reproducibility between animals and studies, there is very limited information on the standardization and quantification of applied pressure with PNCI. To address this deficit, we constructed a novel device comprised of an Arduino UNO microcontroller board and Force Sensitive Resistor capable of reporting the real-time pressure applied to a nerve.
METHODS: Two forceps and two needle drivers were used to perform 30-second PNCIs to the sciatic nerves of mice (n = 5/group). Needle drivers were set to the first notch, and a jig was used to hold the forceps pinch at a reproducible pressure. The Force Sensitive Resistor was interposed in-series between the nerve and instrument during PNCI.
RESULTS: Data collected from these procedures displayed average needle driver pressures an order of multitude greater than forceps pressures. Additionally, needle driver inter- and intra-procedure pressure remained more consistent than forceps pressure, with needle driver coefficient of variation equal to 14.5% vs. a forceps coefficient of variation equal to 45.4%.
CONCLUSIONS: This is the first demonstration of real-time pressure measurements in PNCI models and it reveals that the applied pressures are dependent on the types of device used. The large disparity in pressure represents an inability to apply graded accurate and consistent intermediate pressure gradients in PNCI. These findings indicate a need for documentation of pressure severity as a screening for PNCI in animals, and the real-time pressure sensor could be a useful tool in monitoring and applying consistent pressure, reducing the outcome variability within the same experimental model of PNCI. © The Association of Military Surgeons of the United States 2021. All rights reserved. For permissions, please e-mail: journals.permissions@oup.com.

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Mesh:

Year:  2021        PMID: 33499447      PMCID: PMC7832820          DOI: 10.1093/milmed/usaa346

Source DB:  PubMed          Journal:  Mil Med        ISSN: 0026-4075            Impact factor:   1.437


  13 in total

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Authors:  L R Robinson
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Review 3.  Peripheral nerve injury and myelination: Potential therapeutic strategies.

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4.  Sciatic nerve injury: a simple and subtle model for investigating many aspects of nervous system damage and recovery.

Authors:  Luis E Savastano; Sergio R Laurito; Marcos R Fitt; Jorge A Rasmussen; Virginia Gonzalez Polo; Sean I Patterson
Journal:  J Neurosci Methods       Date:  2014-01-30       Impact factor: 2.390

5.  Morphological and functional aspects of sciatic nerve regeneration after crush injury.

Authors:  Andreea Răducan; Silvia Mirică; Oana Duicu; S Răducan; Danina Muntean; O Fira-Mlădinescu; Rodica Lighezan
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6.  Erythropoietin accelerates functional recovery after peripheral nerve injury.

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7.  Analysis of upper and lower extremity peripheral nerve injuries in a population of patients with multiple injuries.

Authors:  J Noble; C A Munro; V S Prasad; R Midha
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8.  The incidence of peripheral nerve injury in extremity trauma.

Authors:  Christopher A Taylor; Diane Braza; J Bradford Rice; Timothy Dillingham
Journal:  Am J Phys Med Rehabil       Date:  2008-05       Impact factor: 2.159

Review 9.  Evaluation and management of peripheral nerve injury.

Authors:  William W Campbell
Journal:  Clin Neurophysiol       Date:  2008-05-14       Impact factor: 3.708

Review 10.  Peripheral nerve regeneration and intraneural revascularization.

Authors:  Martial Caillaud; Laurence Richard; Jean-Michel Vallat; Alexis Desmoulière; Fabrice Billet
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  5 in total

1.  A Novel Standardized Peripheral Nerve Transection Method and a Novel Digital Pressure Sensor Device Construction for Peripheral Nerve Crush Injury.

Authors:  Jung Il Lee; Grant D Wandling; M Hassan A Talukder; Prem Kumar Govindappa; John C Elfar
Journal:  Bio Protoc       Date:  2022-03-05

2.  Effects of 4-Aminopyridine on Combined Nerve and Muscle Injury and Bone Loss.

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3.  Altered gut microbiota composition with antibiotic treatment impairs functional recovery after traumatic peripheral nerve crush injury in mice: effects of probiotics with butyrate producing bacteria.

Authors:  Andrew Rodenhouse; M A Hassan Talukder; Jung Il Lee; Prem Kumar Govindappa; Mary O'Brien; Kristen M Manto; Kelsey Lloyd; Grant D Wandling; Justin R Wright; Jeremy R Chen See; Samantha L Anderson; Regina Lamendella; John P Hegarty; John C Elfar
Journal:  BMC Res Notes       Date:  2022-02-23

4.  Erythropoietin promotes M2 macrophage phagocytosis of Schwann cells in peripheral nerve injury.

Authors:  Prem Kumar Govindappa; John C Elfar
Journal:  Cell Death Dis       Date:  2022-03-16       Impact factor: 9.685

5.  Compound Motor Action Potentials During a Modest Nerve Crush.

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  5 in total

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