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Muscle Degeneration in Chronic Massive Rotator Cuff Tears of the Shoulder: Addressing the Real Problem Using a Graphene Matrix

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Specialty Science
Date 2022 Aug 8
PMID 35939692
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Abstract

Massive rotator cuff tears (MRCTs) of the shoulder cause disability and pain among the adult population. In chronic injuries, the tendon retraction and subsequently the loss of mechanical load lead to muscle atrophy, fat accumulation, and fibrosis formation over time. The intrinsic repair mechanism of muscle and the successful repair of the torn tendon cannot reverse the muscle degeneration following MRCTs. To address these limitations, we developed an electroconductive matrix by incorporating graphene nanoplatelets (GnPs) into aligned poly(l-lactic acid) (PLLA) nanofibers. This study aimed to understand 1) the effects of GnP matrices on muscle regeneration and inhibition of fat formation in vitro and 2) the ability of GnP matrices to reverse muscle degenerative changes in vivo following an MRCT. The GnP matrix significantly increased myotube formation, which can be attributed to enhanced intracellular calcium ions in myoblasts. Moreover, the GnP matrix suppressed adipogenesis in adipose-derived stem cells. These results supported the clinical effects of the GnP matrix on reducing fat accumulation and muscle atrophy. The histological evaluation showed the potential of the GnP matrix to reverse muscle atrophy, fat accumulation, and fibrosis in both supraspinatus and infraspinatus muscles at 24 and 32 wk after the chronic MRCTs of the rat shoulder. The pathological evaluation of internal organs confirmed the long-term biocompatibility of the GnP matrix. We found that reversing muscle degenerative changes improved the morphology and tensile properties of the tendon compared with current surgical techniques. The long-term biocompatibility and the ability of the GnP matrix to treat muscle degeneration are promising for the realization of MRCT healing and regeneration.

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References
1.
Li D, Tao L, Shen Y, Sun B, Xie X, Ke Q . Fabrication of Multilayered Nanofiber Scaffolds with a Highly Aligned Nanofiber Yarn for Anisotropic Tissue Regeneration. ACS Omega. 2020; 5(38):24340-24350. PMC: 7528211. DOI: 10.1021/acsomega.0c02554. View

2.
Gimbel J, Van Kleunen J, Lake S, Williams G, Soslowsky L . The role of repair tension on tendon to bone healing in an animal model of chronic rotator cuff tears. J Biomech. 2006; 40(3):561-8. DOI: 10.1016/j.jbiomech.2006.02.010. View

3.
Shimokobe H, Gotoh M, Honda H, Nakamura H, Mitsui Y, Kakuma T . Risk factors for retear of large/massive rotator cuff tears after arthroscopic surgery: an analysis of tearing patterns. J Orthop Surg Res. 2017; 12(1):140. PMC: 5613358. DOI: 10.1186/s13018-017-0643-7. View

4.
Gladstone J, Bishop J, Lo I, Flatow E . Fatty infiltration and atrophy of the rotator cuff do not improve after rotator cuff repair and correlate with poor functional outcome. Am J Sports Med. 2007; 35(5):719-28. DOI: 10.1177/0363546506297539. View

5.
Smietana M, Moncada-Larrotiz P, Arruda E, Bedi A, Larkin L . Tissue-Engineered Tendon for Enthesis Regeneration in a Rat Rotator Cuff Model. Biores Open Access. 2017; 6(1):47-57. PMC: 5515124. DOI: 10.1089/biores.2016.0042. View