Regenerating the rotator cuff tendon-to-bone interface through biofabrication

Lead Research Organisation: University of Manchester
Department Name: Engineering and Physical Sciences

Abstract

Shoulder pain affects approximately 20% of the population at any one time. A tear in the rotator cuff tendon accounts for 40% of the causes of shoulder pain. The current gold standard treatment for rotator cuff tendon tears in the shoulder is surgical repair. However, surgical repair of the degenerate tendon can fail due to lack of tendon healing in 22% of cases. This risk of failure doubles in incidence between 50 and 70 years. Thus, there is a disconnect between current treatment methods and the underlying pathology as mechanical suturing of the degenerate tendon to bone leads to failure for a high proportion of patients. This project aims to deliver a new scaffold-based therapy with enhanced biological properties to support the functional regeneration of the torn tendon and improve healing rates. Building on previous work we will produce biomaterials from bacterial origin (i.e. Polyhydroxyalcanoates - PHAs) with tuneable composition and anti-bacterial features to mimic the biological, chemical and physical properties of native bone/tendon tissues. To improve biomechanical coupling at the defect site and enhance functional regeneration, we will fabricate scaffolds with imprinted functional gradients capable of replicating the native tendon/bone interface. This will be achieved using multi-material 3D bioprinting and melt-electrospinning techniques. The performance of the scaffolds will be assessed in vitro using undifferentiated mesenchymal stem cells and other commercially available cell lines. In close collaboration with our clinical team and industrial partner, we will evaluate how to translate the newly developed product from the bench to the bed side.

Publications

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Studentship Projects

Project Reference Relationship Related To Start End Student Name
EP/S022201/1 01/04/2019 30/09/2027
2890262 Studentship EP/S022201/1 01/10/2023 30/09/2027 Lukas Weber