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Author Spotlight: Advancing Tendon Research by Developing Mouse Assembloids to Understand Cellular Mechanisms
Published on: March 22, 2024
Tendon healing: a concise review on cellular and molecular mechanisms with a particular focus on the Achilles tendon
Gundula G Schulze-Tanzil1, Manuel Delgado-Calcares2, Richard Stange3
1Institute of Anatomy and Cell Biology, Paracelsus Medical University, Nuremberg, Germany.
Abstract:
Tendon is a bradytrophic and hypovascular tissue, hence, healing remains a major challenge. The molecular key events involved in successful repair have to be unravelled to develop novel strategies that reduce the risk of unfavourable outcomes such as non-healing, adhesion formation, and scarring. This review will consider the diverse pathophysiological features of tendon-derived cells that lead to failed healing, including misrouted differentiation (e.g. de- or transdifferentiation) and premature cell senescence, as well as the loss of functional progenitors. Many of these features can be attributed to disturbed cell-extracellular matrix (ECM) or unbalanced soluble mediators involving not only resident tendon cells, but also the cross-talk with immigrating immune cell populations. Unrestrained post-traumatic inflammation could hinder successful healing. Pro-angiogenic mediators trigger hypervascularization and lead to persistence of an immature repair tissue, which does not provide sufficient mechano-competence. Tendon repair tissue needs to achieve an ECM composition, structure, strength, and stiffness that resembles the undamaged highly hierarchically ordered tendon ECM. Adequate mechano-sensation and -transduction by tendon cells orchestrate ECM synthesis, stabilization by cross-linking, and remodelling as a prerequisite for the adaptation to the increased mechanical challenges during healing. Lastly, this review will discuss, from the cell biological point of view, possible optimization strategies for augmenting Achilles tendon (AT) healing outcomes, including adapted mechanostimulation and novel approaches by restraining neoangiogenesis, modifying stem cell niche parameters, tissue engineering, the modulation of the inflammatory cells, and the application of stimulatory factors.Cite this article: Bone Joint Res 2022;11(8):561-574.
Insights
Tendon healing is challenging due to cell issues and inflammation. Strategies like mechanostimulation and controlling blood vessel growth can improve Achilles tendon (AT) repair outcomes.
Area of Science:
- Cell biology
- Biomedical engineering
- Orthopedic research
Background:
- Tendon healing is difficult due to its poor blood supply and slow metabolism.
- Failed healing can result in non-healing, scarring, and adhesions, impacting function.
- Understanding cellular and molecular events is crucial for developing effective repair strategies.
Purpose of the Study:
- To review the cellular and molecular mechanisms underlying failed tendon healing.
- To discuss pathological features of tendon cells contributing to poor repair outcomes.
- To explore cell-based strategies for enhancing Achilles tendon (AT) healing.
Main Methods:
- Literature review of pathophysiological features in tendon healing.
- Analysis of cell-extracellular matrix interactions and soluble mediators.
- Discussion of cell biological optimization strategies for AT repair.
Main Results:
- Failed healing involves cellular issues like aberrant differentiation, senescence, and progenitor loss.
- Inflammation and excessive blood vessel growth (neoangiogenesis) hinder proper repair.
- Achieving mature extracellular matrix (ECM) with appropriate mechanical properties is vital.
Conclusions:
- Optimizing AT healing requires addressing cellular dysfunction and the inflammatory environment.
- Strategies include mechanostimulation, controlling neoangiogenesis, and modulating stem cell niches.
- Tissue engineering and immune cell modulation offer promising therapeutic avenues.

