Muscle Degeneration

Muscle degeneration is the progressive loss of muscle fibers, strength, and function caused by injury, disease, aging, or prolonged inactivity. It can arise when muscle protein breakdown exceeds protein synthesis, while inflammation, impaired regeneration, altered nerve signaling, or reduced blood supply further disrupt tissue maintenance. In biology, studying muscle degeneration helps explain conditions such as muscular dystrophy, sarcopenia, and disuse atrophy, as well as the cellular interactions that control repair. Research examines changes in muscle structure, satellite cell activity, metabolism, and gene expression to support earlier diagnosis and guide therapies aimed at preserving mobility and restoring function.

Muscle Degeneration - Related Videos

Research

JoVE Journal - Biology

Immunolabelling Myofiber Degeneration in Muscle Biopsies

0 Views •

Cited by 16 •

2019

Described here is a protocol for direct immunolabelling of necrotic myofibers in muscle cryosections. Necrotic cells are permeable to serum proteins, including immunoglobulin G (IgG). Revealing the uptake of IgG by myofibers allows the identification and quantification of myofibers that undergo necrosis regardless of muscle condition.

C. elegans Muscle Area Measurements: A Standardized Method to Quantify Striated Muscle Morphology

0 Views •

2023

C. elegans have two types of muscles, single sarcomere and multiple sarcomere, or striated muscles. This video describes the arrangement of the striated body wall muscles, which are responsible for a worm’s locomotion and includes a sample protocol to measure muscle morphology using image analysis software.

Application of a C. elegans Dopamine Neuron Degeneration Assay for the Validation of Potential Parkinson's Disease Genes

0 Views •

Cited by 48 •

2008

This video demonstrates how to use C. elegans to assess dopaminergic neuron neurodegeneration as a model for Parkinson's disease. Furthermore, genetic screens are used to identify factors that either enhance degeneration or are neuroprotective.

Optical Cross-Sectional Muscle Area Determination of Drosophila Melanogaster Adult Indirect Flight Muscles

0 Views •

Cited by 6 •

2018

We report a method to quantify muscle area, which is an indirect method to determine muscle mass in Drosophila adults. We demonstrate the application of our methodology by analyzing the indirect flight muscles in a Drosophila model of Myotonic Dystrophy disease.

View All Results

FAQs

Related Topics