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Updated: May 24, 2026

Development of a Rabbit Chronic-Like Rotator Cuff Injury Model for Study of Fibrosis and Muscular Fatty Degeneration
Published on: March 31, 2023
Evaluation of Akt/mTOR activity in muscle atrophy after rotator cuff tears in a rat model
Xuhui Liu1, Sunil K Joshi, Sanjum P Samagh
1Department of Veterans Affairs, San Francisco Veterans Affairs Medical Center, San Francisco, Califronia, USA.
Abstract:
Atrophy of the rotator cuff muscles is a factor that complicates the treatment of a massive rotator cuff tear (RCT). However, the molecular mechanisms that govern the development of muscle atrophy after RCTs have not been well defined. The Akt/mammalian target of rapamycin (mTOR) signaling pathway plays a central role in maintaining muscle mass in response to mechanical loading. The role of this pathway in the development of muscle atrophy after a massive RCT remains unknown. The purpose of this study was to investigate the regulation of the Akt/mTOR pathway in the development of muscle atrophy after a RCT and suprascapular nerve (SSN) injury. We evaluated the activity of the Akt/mTOR signaling pathway and how this pathway interacts with two atrophy-related genes, MuRF-1 and MAFbx, in supraspinatus muscles of rats that underwent unilateral complete rotator cuff tendon transection or SSN transection. Akt/mTOR activity was significantly reduced after tendon rupture, but increased after nerve injury. MuRF-1 and MAFbx were only up-regulated following denervation. These results suggest that tendon transection leads to a decrease in protein synthesis with down-regulation of the Akt/mTOR signaling pathway, whereas denervation leads to an increase in protein degradation via up-regulation of expression of MuRF-1 and MAFbx.
Insights
Rotator cuff tears (RCTs) can cause muscle atrophy. This study found that tendon rupture reduces protein synthesis via the Akt/mammalian target of rapamycin (mTOR) pathway, while nerve injury increases protein breakdown.
Area of Science:
- Orthopedics
- Muscle Physiology
- Molecular Biology
Background:
- Rotator cuff muscle atrophy complicates massive rotator cuff tear (RCT) treatment.
- Molecular mechanisms driving muscle atrophy post-RCT are poorly understood.
- The Akt/mammalian target of rapamycin (mTOR) pathway is crucial for muscle mass maintenance but its role in RCT-induced atrophy is unknown.
Purpose of the Study:
- Investigate Akt/mTOR pathway regulation in muscle atrophy following RCT and suprascapular nerve (SSN) injury.
- Examine the interaction between the Akt/mTOR pathway and atrophy-related genes MuRF-1 and MAFbx.
Main Methods:
- Evaluated Akt/mTOR pathway activity in rat supraspinatus muscles after unilateral complete rotator cuff tendon transection or SSN transection.
- Assessed the expression of atrophy-related genes MuRF-1 and MAFbx.
Main Results:
- Akt/mTOR activity significantly decreased after tendon rupture.
- Akt/mTOR activity increased after SSN injury.
- MuRF-1 and MAFbx expression were upregulated only after denervation (nerve injury).
Conclusions:
- Tendon transection in RCTs down-regulates the Akt/mTOR pathway, leading to decreased protein synthesis.
- Denervation following SSN injury up-regulates MuRF-1 and MAFbx, increasing protein degradation.
- Distinct molecular mechanisms underlie muscle atrophy in RCTs versus SSN injury.

