Obesity alters the collagen organization and mechanical properties of murine cartilage.

Abstract

Osteoarthritis is a debilitating disease characterized by cartilage degradation and altered cartilage mechanical properties. Furthermore, it is well established that obesity is a primary risk factor for osteoarthritis. The purpose of this study was to investigate the influence of obesity on the mechanical properties of murine knee cartilage. Two-month old wild type mice were fed either a normal diet or a high fat diet for 16 weeks. Atomic force microscopy-based nanoindentation was used to quantify the effective indentation modulus of medial femoral condyle cartilage. Osteoarthritis progression was graded using the OARSI system. Additionally, collagen organization was evaluated with picrosirius red staining imaged using polarized light microscopy. Significant differences between diet groups were assessed using t tests with p < 0.05. Following 16 weeks of a high fat diet, no significant differences in OARSI scoring were detected. However, we detected a significant difference in the effective indentation modulus between diet groups. The reduction in cartilage stiffness is likely the result of disrupted collagen organization in the superficial zone, as indicated by altered birefringence on polarized light microscopy. Collectively, these results suggest obesity is associated with changes in knee cartilage mechanical properties, which may be an early indicator of disease progression.

Department

Description

Provenance

Subjects

Cartilage, Articular, Liver, Animals, Mice, Inbred C57BL, Mice, Osteoarthritis, Obesity, Disease Models, Animal, Collagen, Microscopy, Atomic Force, Glucose Tolerance Test, Male, Elastic Modulus, SOX9 Transcription Factor, Diet, High-Fat

Citation

Published Version (Please cite this version)

10.1038/s41598-020-80599-1

Publication Info

Collins, Amber T, Guoli Hu, Hunter Newman, Michael H Reinsvold, Monique R Goldsmith, John N Twomey-Kozak, Holly A Leddy, Deepika Sharma, et al. (2021). Obesity alters the collagen organization and mechanical properties of murine cartilage. Scientific reports, 11(1). p. 1626. 10.1038/s41598-020-80599-1 Retrieved from https://hdl.handle.net/10161/32200.

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Scholars@Duke

Leddy

Holly Leddy

Research Scientist

Holly A. Leddy, PhD

Holly Leddy holds a PhD in biomedical engineering from Duke University and an BA in biology from Bowdoin College. She is currently the Assistant Director of the Shared Materials and Instrumentation Facility (SMIF) at Duke University, where she leads both the Outreach and the Characterization teams.  She has expertise in many types of microscopy and worked for many years in the field of cartilage mechanobiology.  She has also created a vibrant outreach program at SMIF that brings the excitement of nanoscale science to thousands of people annually through both virtual and hands-on experiences.

DeFrate

Louis Edwin DeFrate

Laszlo Ormandy Distinguished Professor of Orthopaedic Surgery

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