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JBJS - 2026-07-01 - Journal Article

Increased Critical Shoulder Angle Impairs Tendon-Bone Healing in a Rat Model of Chronic Rotator Cuff Tears.

Long Y, Su Y, Li X, Chen Y, Wang Z, Deng X, Yao Z, Yang R

biomechanicalLOE Vn = 48 rats (96 shoulders, bilateral model)9 weeks post-repair (assessed at 3, 6, and 9 weeks)

Topics

shoulder elbowsportsbasic science
PMID: 41666274DOI: 10.2106/JBJS.25.00970View on PubMed ->

Key Takeaway

Acromion lateralization to increase CSA (37.2° vs 29.7°) significantly impaired tendon-bone healing at 6 and 9 weeks post-repair, with lower ultimate failure load, higher MRI signal-to-noise quotient, reduced fibrocartilage formation, and elevated Piezo1 expression in a rat chronic rotator cuff tear model.

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Summary

This study investigated whether elevated CSA impairs tendon-bone healing after rotator cuff repair using a bilateral chronic tear model in 48 Sprague-Dawley rats, with unilateral acromion lateralization to increase CSA. The Acr group showed significantly worse MRI signal-to-noise quotient, lower ultimate failure load and stiffness, inferior histological integration with reduced fibrocartilage and disorganized collagen, and higher Piezo1 expression at 6 and 9 weeks post-repair. No significant differences were detected at 3 weeks, suggesting CSA-mediated impairment manifests during the remodeling rather than early inflammatory phase.

Key Limitation

The rat model cannot replicate the multidirectional glenohumeral kinematics, rotator cuff force couple dynamics, or degenerative tissue quality (Goutallier grading) that characterize human rotator cuff tears, limiting direct translational applicability.

Original Abstract

BACKGROUND

The role of an elevated critical shoulder angle (CSA) in rotator cuff healing following rotator cuff repair (RCR) remains a subject of clinical controversy. The present study aimed to investigate the effect of increased CSA on tendon-bone interface healing following RCR.

METHODS

A bilateral chronic rotator cuff tear model was established in 48 Sprague-Dawley rats. Acromion lateralization (Acr) surgery was performed unilaterally to increase CSA. After 4 weeks, bilateral RCR was performed. Micro-computed tomography was utilized to measure CSA. Tendon-bone interface healing was assessed at 3, 6, and 9 weeks post-RCR with use of magnetic resonance imaging (MRI), biomechanical testing, gait analysis, and histological evaluation.

RESULTS

The mean CSA in the Acr group was significantly greater than that in the RCR-only group (37.2° ± 2.6° versus 29.7° ± 3.1°; p < 0.001). At 6 and 9 weeks postoperatively, the Acr group demonstrated significantly poorer outcomes on MRI (i.e., higher signal-to-noise quotient), biomechanical strength (i.e., lower ultimate failure load and stiffness), and gait parameters compared with the RCR-only group (p < 0.05). Histological analysis revealed inferior tendon-bone interface integration in the Acr group (p < 0.01), including reduced fibrocartilage formation, disorganized collagen fibers, and a lower collagen I/III ratio. Immunohistochemistry showed significantly higher Piezo1 expression in the Acr group (p < 0.001), suggesting a mechanobiological response to increased mechanical stress.

CONCLUSIONS

An increased CSA impaired tendon-bone interface healing following RCR in a rat model. Although these findings were preclinical, they provide experimental evidence that an increased CSA may influence rotator cuff healing, supporting the potential role of CSA modification (e.g., with acromioplasty) in reducing the risk of retear.

CLINICAL RELEVANCE

The present study provides experimental evidence to support the consideration of CSA reduction in selected high-risk patients undergoing RCR to promote rotator cuff healing and potentially reduce retear rates.