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The Rotator Cuff Organ: Integrating Developmental Biology, Tissue Engineering, and Surgical Considerations to Treat Chronic Massive Rotator Cuff Tears

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Date 2017 Jan 14
PMID 28084902
Citations 14
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Abstract

The torn rotator cuff remains a persistent orthopedic challenge, with poor outcomes disproportionately associated with chronic, massive tears. Degenerative changes in the tissues that comprise the rotator cuff organ, including muscle, tendon, and bone, contribute to the poor healing capacity of chronic tears, resulting in poor function and an increased risk for repair failure. Tissue engineering strategies to augment rotator cuff repair have been developed in an effort to improve rotator cuff healing and have focused on three principal aims: (1) immediate mechanical augmentation of the surgical repair, (2) restoration of muscle quality and contractility, and (3) regeneration of native enthesis structure. Work in these areas will be reviewed in sequence, highlighting the relevant pathophysiology, developmental biology, and biomechanics, which must be considered when designing therapeutic applications. While the independent use of these strategies has shown promise, synergistic benefits may emerge from their combined application given the interdependence of the tissues that constitute the rotator cuff organ. Furthermore, controlled mobilization of augmented rotator cuff repairs during postoperative rehabilitation may provide mechanotransductive cues capable of guiding tissue regeneration and restoration of rotator cuff function. Present challenges and future possibilities will be identified, which if realized, may provide solutions to the vexing condition of chronic massive rotator cuff tears.

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References
1.
Benjamin M, Kumai T, Milz S, Boszczyk B, Boszczyk A, Ralphs J . The skeletal attachment of tendons--tendon "entheses". Comp Biochem Physiol A Mol Integr Physiol. 2002; 133(4):931-45. DOI: 10.1016/s1095-6433(02)00138-1. View

2.
Moosmayer S, Tariq R, Stiris M, Smith H . The natural history of asymptomatic rotator cuff tears: a three-year follow-up of fifty cases. J Bone Joint Surg Am. 2013; 95(14):1249-55. DOI: 10.2106/JBJS.L.00185. View

3.
Henry P, Wasserstein D, Park S, Dwyer T, Chahal J, Slobogean G . Arthroscopic Repair for Chronic Massive Rotator Cuff Tears: A Systematic Review. Arthroscopy. 2015; 31(12):2472-80. DOI: 10.1016/j.arthro.2015.06.038. View

4.
Coleman S, Fealy S, Ehteshami J, MacGillivray J, Altchek D, Warren R . Chronic rotator cuff injury and repair model in sheep. J Bone Joint Surg Am. 2003; 85(12):2391-402. DOI: 10.2106/00004623-200312000-00018. View

5.
Gulotta L, Kovacevic D, Ehteshami J, Dagher E, Packer J, Rodeo S . Application of bone marrow-derived mesenchymal stem cells in a rotator cuff repair model. Am J Sports Med. 2009; 37(11):2126-33. DOI: 10.1177/0363546509339582. View