Absorption and scattering of laser radiation in articular cartilage during the treatment of the focus of chondropathy
https://doi.org/10.17238/2226-2016-2023-1-47-55
Abstract
Justification: Osteoarthritis is one of the most common diseases that lead to disability. Arthroscopic laser treatment of articular cartilage is an effective and promising method of treating osteoarthritis, but its technique can be improved due to the results of this study.
Purpose: to experimentally evaluate the absorption and scattering coefficients of laser radiation with wavelengths λ=1.55 microns and λ=0.97 microns in articular cartilage tissues and to establish the role of these radiations in the mechanism of laser exposure in the treatment of chondropathy.
Materials and methods: Thin slices with a thickness of 100 microns and 200 microns were made from samples of pig cartilage tissue. The slices were exposed to laser radiation with wavelengths λ=1.55 microns and λ=0.97 microns. The "method of mobile integrating spheres" was used to measure the optical properties of images.
Results: When passing through cartilage tissue, the absorption coefficient for radiation λ=0.97 microns was 0.14±0.02 mm-1 for radiation λ=1.55 microns - 0.8±0.1 mm-1. The scattering coefficient for radiations with λ=0.97 and with λ=1.55 was 19±2 mm-1 and 3.7±0.4 mm-1, respectively.
Conclusion: 1) When passing through the thickness of articular cartilage, the absorption coefficient (μa) of laser radiation with λ = 0.97 microns is significantly lower than that of laser radiation with λ = 1.55 microns. 2) When passing through the thickness of articular cartilage, the scattering coefficient (μs) of laser radiation with λ= 0.97 microns is significantly higher than that of laser radiation with λ = 1.55 microns. With laser treatment of the focus of chondropathy with combined radiation λ=0.97 microns + λ=1.55 microns, radiation λ=1.55 microns «smoothes» the surface of articular cartilage in the focus of chondromalacia, allowing to achieve restoration of the structure of the articular surface, and the radiation parameters λ=0.97 microns in the thickness of articular cartilage allow to trigger photobiomodulation mechanisms in the articular cartilage and the underlying subchondral bone.
Keywords
About the Authors
A. V. LychaginRussian Federation
Lychagin Alexey Vladimirovich – MD, Head of the Department of Traumatology, Orthopedics and Surgery of Catastrophes
127994, Moscow
V. I. Yusupov
Russian Federation
Yusupov Vladimir Isaakovich – Candidate of Technical Sciences, Senior Researcher
Moscow
V. V. Surin
Russian Federation
Surin Vladimir Vladimirovich – Postgraduate Student of the Department of Traumatology, Orthopedics and Surgery of Catastrophes
127994, Moscow
S. V. Ivannikov
Russian Federation
Ivannikov Sergey Viktorovich – Doctor of Medical Sciences, Professor, Professor of the Department of Traumatology, Orthopedics and Disaster Surgery
127994, Moscow
P. I. Petrov
Russian Federation
Petrov Pavel Igorevich – Assistant of the Department of Traumatology, Orthopedics and Surgery of Catastrophes
127994, Moscow
O. I. Batsayeva
Russian Federation
Batsayeva Olga Igorevna – Research Associate of the Department of Laser Physics
115409, Moscow
T. K. Malikova
Russian Federation
Malikova Tatiana Kirillovna – researcher
129281, Moscow
N. V. Kovalenko
Russian Federation
Kovalenko Nikita Valeryevich – researcher
129281, Moscow
E. D. Shevelkina
Russian Federation
Shevelkina Ekaterina Dmitrievna – researcher
129281, Moscow
A. Yu. Zarov
Russian Federation
Zarov Alexey Yurievich – Assistant of the Department of Traumatology, Orthopedics and Disaster Surgery
127994, Moscow
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Review
For citations:
Lychagin A.V., Yusupov V.I., Surin V.V., Ivannikov S.V., Petrov P.I., Batsayeva O.I., Malikova T.K., Kovalenko N.V., Shevelkina E.D., Zarov A.Yu. Absorption and scattering of laser radiation in articular cartilage during the treatment of the focus of chondropathy. Department of Traumatology and Orthopaedics. 2023;(1):47-55. (In Russ.) https://doi.org/10.17238/2226-2016-2023-1-47-55
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