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Electrical impedance myography detects progressive pathological alterations in the hindlimb muscle of the PMP22-C3 mice, an animal model of CMT1A. | LitMetric

Electrical impedance myography detects progressive pathological alterations in the hindlimb muscle of the PMP22-C3 mice, an animal model of CMT1A.

Exp Neurol

Neuroscience Translational Medicine, Neuroscience Drug Discovery Unit, Research, Takeda Pharmaceutical Company Limited, 26-1, Muraoka-Higashi 2-chome, Fujisawa, Kanagawa 251-8555, Japan. Electronic address:

Published: December 2024

AI Article Synopsis

  • Charcot-Marie-Tooth type 1A (CMT1A) is a common inherited disorder that leads to muscle weakness primarily in the lower limbs, impacting patients' quality of life.
  • Current methods for assessing muscle condition have limitations, prompting research into electrical impedance myography (EIM) as a noninvasive tool to evaluate muscle state and track disease progression in CMT1A.
  • Studies on PMP22-C3 mice show that EIM can detect changes in muscle condition over time, making it a potential biomarker for monitoring the progression of CMT1A.

Article Abstract

Charcot-Marie-Tooth type 1A (CMT1A) is the most common inherited peripheral dysmyelinating neuropathy. Although lower limb muscle weakness is the most important factor affecting the quality of life of patients with CMT1A, existing clinical measures for its evaluation have limitations, including low sensitivity in detecting disease progression. Electrical impedance myography (EIM) is a newer tool that enables noninvasive evaluation of muscle state by measuring muscle composition, and potentially supports the evaluation of neuromuscular disease progression and treatment effects. To determine the potential of EIM as a CMT1A biomarker, we obtained natural history data for EIM from the gastrocnemius muscle of the PMP22-C3 mice, an animal model of CMT1A. Alterations in the EIM parameters, weak hindlimb grip strength, decreased muscle fiber size, and changes in the mRNA expression of genes related to neuromuscular junction dysfunction were found. These changes were more pronounced at later stages (12 and 18 weeks of age) than at earlier stage (6 weeks of age), indicating that EIM can detect disease progression in PMP22-C3 mice. Our preclinical findings support the use of EIM as a potential translational biomarker for assessing progressive changes in the pathological muscle state in CMT1A.

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Source
http://dx.doi.org/10.1016/j.expneurol.2024.115111DOI Listing

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