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March 31, 2026ACS Biomaterials Science & Engineering0 citationsOpen Access

In Situ Characterization Reveals an Impaired Fibril Response to Loading Following Unloading during Early Achilles Tendon Healing

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IBIsabella Silva BarretoKSK. K. SharmaMPMaria Pierantoni

Key Points

  • The study aims to understand how unloading affects the mechanical response of healing Achilles tendons at different scales.
  • Combined synchrotron small-angle X-ray scattering with in situ tensile stress relaxation.
  • Examined early healing rat Achilles tendons at 1, 2, and 3 weeks post-injury.
  • Compared tendons subjected to full activity versus immobilization.
  • Unloading altered the nanoscale mechanical response after one week of healing.
  • Higher spatial variations and less fibril recruitment were observed in unloaded tendons.
  • No significant differences were detected at the tissue scale.

Abstract

The Achilles tendon is the most frequently injured tendon in humans. Despite extensive research to understand its healing, there are still no clear rehabilitation guidelines to ensure full recovery and prevent reruptures. This could partly be due to limited understanding of how loading during tendon healing affects the multiscale mechanical response and in particular the nanoscale. We combined synchrotron small-angle X-ray scattering mapping with in situ tensile stress relaxation of early healing (1-, 2-, and 3 weeks) rat Achilles tendons subjected to either full activity or immobilization. Initially, in vivo unloading resulted in a similar collagen fibril structure and spatial distribution, but then, as healing progressed, the unloaded group exhibited more alterations in tissue distribution. While no clear differences were observed at the tissue scale, unloading clearly altered the nanoscale mechanical response already after 1 week of healing. Unloading led to an impaired nanoscale response, characterized by higher spatial variations, less fibril recruitment, and capacity for elongation. This indicates that the nanoscale of healing tendons is more susceptible to changes in the loading environment compared to the tissue scale. These insights contribute to a better understanding of the effects of in vivo loading on multiple length scales of the healing Achilles tendon.

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Cite This Study

Barreto et al. (2026) studied this question.

synapsesocial.com/papers/69cb645fe6a8c024954b89c7https://doi.org/10.1021/acsbiomaterials.5c01976
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