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Updated: Jul 16, 2026

Applying a Three-dimensional Uniaxial Mechanical Stimulation Bioreactor System to Induce Tenogenic Differentiation of Tendon-Derived Stem Cells
Published on: August 1, 2020
From physical modalities to energy-responsive biomaterials: Current strategies and challenges in tendon-to-bone
Liuxin Zhang1,2, Jindong Tan1,2, Bo Liao1,2
1Department of Rehabilitation Medicine, Key Laboratory of Physical Medicine and Precision Rehabilitation of Chongqing Municipal Health Commission, The First Affiliated Hospital of Chongqing Medical University, No.1 Youyi Road, Yu zhong District, Chongqing, 400016, China.
Abstract:
Impaired functional regeneration following tendon-to-bone interface (TBI) injury is a major challenge in sports medicine. The rigidity and limited efficacy of existing rehabilitation strategies remain significant constraints. Physical modalities, leveraging advantages such as non-invasiveness, spatiotemporal controllability, and low immunogenicity, offer effective intervention options for the long-term management of TBI healing. However, conventional physical modalities struggle to address the complex pathological microenvironment involved in TBI healing. In contrast, therapeutic strategies utilizing physical energy-responsive biomaterials enable programmable, precise, and dynamic regulation, potentially integrating these advantages while overcoming inherent limitations, thereby opening new and effective therapeutic avenues for TBI healing. This review systematically examines the benefits, current applications, and shortcomings of physical modalities for TBI injuries, with particular focus on parameter-response relationships and underlying biological effector mechanisms. Furthermore, it summarizes the design strategies and application progress of energy-responsive biomaterials in TBI healing and discusses future directions and promising prospects, aiming to address the core therapeutic challenges in achieving robust TBI healing.
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