Related Experiment Video
Updated: Jan 4, 2026

Tibial Nerve Transection - A Standardized Model for Denervation-induced Skeletal Muscle Atrophy in Mice
Published on: November 3, 2013
Microarray Analysis of Gene Expression Provides New Insights Into Denervation-Induced Skeletal Muscle Atrophy
Yuntian Shen1, Ru Zhang2, Liang Xu3
1Key Laboratory of Neuroregeneration of Jiangsu, Ministry of Education, Jiangsu Clinical Medicine Center of Tissue Engineering and Nerve Injury Repair, Co-Innovation Center of Neuroregeneration, Nantong University, Nantong, China.
Abstract:
Denervation induces skeletal muscle atrophy, accompanied by complex biochemical and physiological changes, with potentially devastating outcomes even an increased mortality. Currently, however, there remains a paucity of effective strategies to treat skeletal muscle atrophy. Therefore, it is required to understand the molecular mechanisms of skeletal muscle atrophy and formulate new treatment strategies. In this study, we investigated the transcriptional profile of denervated skeletal muscle after peripheral nerve injury in rats. The cDNA microarray analysis showed that a huge number of genes in tibialis anterior (TA) muscles were differentially expressed at different times after sciatic nerve transection. Notably, the 24 h of denervation might be a critical time point for triggering TA muscle atrophy. According to the data from self-organizing map (SOM), Pearson correlation heatmap, principal component analysis (PCA), and hierarchical clustering analysis, three nodal transitions in gene expression profile of the denervated TA muscle might partition the period of 0.25 h-28 days post nerve injury into four distinct transcriptional phases. Moreover, the four transcriptional phases were designated as "oxidative stress stage", "inflammation stage", "atrophy stage" and "atrophic fibrosis stage", respectively, which was concluded from Kyoto Encyclopedia of Genes and Genomes (KEGG) and Gene ontology (GO) analyses at each transcriptional phase. Importantly, the differentially expressed genes at 24 h post sciatic nerve transection seemed to be mainly involved in inflammation, which might be a critical process in denervation-induced muscle atrophy. Overall, our study would contribute to the understanding of molecular aspects of denervation-induced muscle atrophy, and may also provide a new insight into the time window for targeted therapy.
Insights
Denervation causes skeletal muscle atrophy, with 24 hours post-injury being a critical time point. Understanding these transcriptional changes offers new therapeutic strategies for muscle wasting.
Area of Science:
- Molecular Biology
- Physiology
- Biochemistry
Background:
- Skeletal muscle atrophy due to denervation has severe consequences, including increased mortality.
- Current treatments for muscle atrophy are limited, necessitating a deeper understanding of its molecular mechanisms.
Purpose of the Study:
- To investigate the transcriptional profile of denervated skeletal muscle following peripheral nerve injury in rats.
- To identify critical time points and molecular pathways involved in denervation-induced muscle atrophy.
Main Methods:
- cDNA microarray analysis to assess gene expression changes in tibialis anterior (TA) muscles.
- Bioinformatic analyses including self-organizing map (SOM), Pearson correlation heatmap, principal component analysis (PCA), and hierarchical clustering.
- Kyoto Encyclopedia of Genes and Genomes (KEGG) and Gene Ontology (GO) analyses to interpret transcriptional phases.
Main Results:
- A large number of genes were differentially expressed in denervated TA muscles over time.
- Four distinct transcriptional phases were identified: oxidative stress, inflammation, atrophy, and atrophic fibrosis.
- Inflammation-related genes were significantly altered at 24 hours post-denervation, suggesting a critical role in initiating muscle atrophy.
Conclusions:
- The study delineates distinct molecular phases of denervation-induced skeletal muscle atrophy.
- Early inflammatory responses at 24 hours are crucial in the progression of muscle atrophy.
- Findings provide insights into potential therapeutic time windows for treating muscle wasting.
More Related Videos
09:14Evaluation of Injury-induced Senescence and In Vivo Reprogramming in the Skeletal Muscle
Published on: October 26, 2017
09:49Identification, Isolation, and Characterization of Fibro-Adipogenic Progenitors FAPs and Myogenic Progenitors MPs in Skeletal Muscle in the Rat
Published on: June 9, 2021