Characterizing Microstructural and Mechanical Properties of Dancer Achilles Tendon Using Ultrashort Echo Time MRI and Shear Wave Elastography Ultrasound.

Horner, Anna M; Gonzalez, Felix M; Gleason, Courtney N; Blackmon, Amanda; Faulkner, Emma; Dyckman, Damian; Umpierrez, Monica B; Wong, Philip K-W et al. · J Orthop Res · 2025

cross_sectional · Level IV

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Abstract

Previous observations of multi-echo ultrashort echo time (UTE) magnetic resonance imaging (MRI) decay data from the Achilles tendon (AT) report an off-resonance non-water signal associated with non-collagenous extracellular matrix (ECM) constituents. This cross-sectional study investigates the relationship between this MRI-derived tissue matrix signal and mechanical stiffness of the AT in professional ballet dancers and non-dancer adults. Multiexponential analysis of multi-echo UTE MRI was used to quantify water components and an off-resonance AT matrix component. To compare AT structure with its functionality, shear wave elastography (SWE) ultrasound US was used to measure tendon stiffness along both longitudinal (V<sub>L</sub>) and transverse (V<sub>S</sub>) axes. 34 participants, including 15 ballet dancers and 19 non-dancers, were studied. Dancers exhibited significantly larger V<sub>S</sub> (p = 0.013) compared to non-dancers, consistent with prior observations of a training effect in tendon from repeated loading with exercise. UTE-derived off-resonance relaxation component amplitude, β<sub>3</sub>, was positively associated with V<sub>L</sub> in dancers (p = 0.029) and V<sub>S</sub> in non-dancers (p = 0.024), suggesting a microstructural role of this matrix component. While additional work is needed to unambiguously assign this off-resonance signal, these findings suggest its association with non-collagenous ECM and show potential for combined use of UTE and SWE imaging to assess tendon structure-function relationships and adaptations to mechanical loading in vivo.

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