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bioRxiv · 10.1101/2023.02.01.526670

Acute repair of meniscus root tear partially restores joint displacements as measured with MRI and loading in a porcine knee

Abstract

The meniscus serves important load-bearing functions and protects the underlying articular cartilage. Unfortunately, meniscus tears are common and impair the ability of the meniscus to distribute loads, greatly increasing the risk for developing osteoarthritis. Therefore, surgical repair of the meniscus is a frequently performed procedure; however, this repair does not always prevent osteoarthritis. This is hypothesized to be due to altered joint loading post injury and repair, where the functional deficit of the meniscus prevents it from performing its role of distributing forces. However, many studies of meniscus function required opening the joint, which alters kinematics. The objective of this study was to use novel MRI methods to image the intact joint under axial load and measure the acute meniscus and femur displacements in an intact joint, after a meniscus root tear, and after suture repair in the porcine knee, a frequently used in vivo model. We found that anterior root tear led to large meniscus and femur displacements under physiological axial loading, and that suture anchor repair reduced these displacements, but did not fully restore intact joint kinematics. After tear and repair, the anterior region of the meniscus moved posteriorly and medially as it was forced out of the joint space under loading, while the posterior region had small displacements as the posterior attachment acted as a hinge about which the meniscus rotated in the axial plane. This technique can be applied to evaluate the effect of knee injuries and to develop improved repair strategies to restore joint kinematics.

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BibTeXRIS

Meadows, K. D., Peloquin, J. M., Markhali, M. I., Zgonis, M. H., Schaer, T. P., Mauck, R., Elliott, D.. 2023-02-03. Acute repair of meniscus root tear partially restores joint displacements as measured with MRI and loading in a porcine knee. https://doi.org/10.1101/2023.02.01.526670

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