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Quantitative evaluation of degenerated tendon model using combined optical coherence elastography and acoustic radiation force method

Guan, Guangying; Li, Chunhui; Ling, Yuting; Yang, Ying; Vorstius, Jan B.; Keatch, Robert P.; Wang, Ruikang K.; Huang, Zhihong

Authors

Guangying Guan

Chunhui Li

Yuting Ling

Jan B. Vorstius

Robert P. Keatch

Ruikang K. Wang

Zhihong Huang



Abstract

Damage of collagen fibers in tendons is often directly related to changes in a tendon’s mechanical properties. Direct quantitative elasticity measurement of tendons will provide important information in tendon dysfunction diagnosis and treatment assessment. A feasibility study of quantifying the mechanical properties of a degenerated tendon model by a nondestructive imaging modality, which combines optical coherence elastography and acoustic radiation force (ARF) method, is presented. The degenerated tendon model was produced by the partial degradation of chicken tendons through incubation with collagenase at different concentrations and incubation times. A 30-kHz longitudinal ultrasound transducer was used to provide an ARF signal, which was detected by an ultra-high sensitive phase sensitive optical coherence tomography (PhS-OCT) system. The experimental results demonstrate that the combination of ARF method and PhS-OCT can measure the elasticity of tendon quantitatively. The corresponding changes in tendon elasticity due to the application of collagenase have been revealed by this new imaging modality. This method can potentially be used in the assessment of tissue engineering products and in the diagnosis and treatment progression of tendon diseases.

Citation

Guan, G., Li, C., Ling, Y., Yang, Y., Vorstius, J. B., Keatch, R. P., …Huang, Z. (2013). Quantitative evaluation of degenerated tendon model using combined optical coherence elastography and acoustic radiation force method. Journal of Biomedical Optics, 18(11), 111417. https://doi.org/10.1117/1.jbo.18.11.111417

Journal Article Type Article
Online Publication Date Nov 5, 2013
Publication Date Nov 5, 2013
Deposit Date Jun 12, 2023
Journal Journal of Biomedical Optics
Print ISSN 1083-3668
Publisher Society of Photo-optical Instrumentation Engineers
Peer Reviewed Peer Reviewed
Volume 18
Issue 11
Pages 111417
DOI https://doi.org/10.1117/1.jbo.18.11.111417
Keywords Biomedical Engineering; Atomic and Molecular Physics, and Optics; Biomaterials; Electronic, Optical and Magnetic Materials