Broadband scattering properties of articular cartilage zones and their relationship with the heterogenous structure of articular cartilage extracellular matrix.

articular cartilage diffuse optical spectroscopy polarized light microscopy scattering anisotropy factor tissue optical properties

Journal

Journal of biomedical optics
ISSN: 1560-2281
Titre abrégé: J Biomed Opt
Pays: United States
ID NLM: 9605853

Informations de publication

Date de publication:
Dec 2023
Historique:
received: 22 06 2023
revised: 31 10 2023
accepted: 03 11 2023
medline: 14 12 2023
pubmed: 14 12 2023
entrez: 14 12 2023
Statut: ppublish

Résumé

Articular cartilage exhibits a zonal architecture, comprising three distinct zones: superficial, middle, and deep. Collagen fibers, being the main solid constituent of articular cartilage, exhibit unique angular and size distribution in articular cartilage zones. There is a gap in knowledge on how the unique properties of collagen fibers across articular cartilage zones affect the scattering properties of the tissue. This study hypothesizes that the structural properties of articular cartilage zones affect its scattering parameters. We provide scattering coefficient and scattering anisotropy factor of articular cartilage zones in the spectral band of 400 to 1400 nm. We enumerate the differences and similarities of the scattering properties of articular cartilage zones and provide reasoning for these observations. We utilized collimated transmittance and integrating sphere measurements to estimate the scattering coefficients of bovine articular cartilage zones and bulk tissue. We used the relationship between the scattering coefficients to estimate the scattering anisotropy factor. Polarized light microscopy was applied to estimate the depth-wise angular distribution of collagen fibers in bovine articular cartilage. We report that the Rayleigh scatterers contribution to the scattering coefficients, the intensity of the light scattered by the Rayleigh and Mie scatterers, and the angular distribution of collagen fibers across tissue depth are the key parameters that affect the scattering properties of articular cartilage zones and bulk tissue. Our results indicate that in the short visible region, the superficial and middle zones of articular cartilage affect the scattering properties of the tissue, whereas in the far visible and near-infrared regions, the articular cartilage deep zone determines articular cartilage scattering properties. This study provides scattering properties of articular cartilage zones. Such findings support future research to utilize optical simulation to estimate the penetration depth, depth-origin, and pathlength of light in articular cartilage for optical diagnosis of the tissue.

Identifiants

pubmed: 38094709
doi: 10.1117/1.JBO.28.12.125003
pii: 230175GRR
pmc: PMC10718485
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

125003

Informations de copyright

© 2023 The Authors.

Auteurs

Iman Kafian-Attari (I)

University of Eastern Finland, Department of Technical Physics, Kuopio, Finland.
Kuopio University Hospital, Diagnostic Imaging Center, Kuopio, Finland.

Ervin Nippolainen (E)

University of Eastern Finland, Department of Technical Physics, Kuopio, Finland.

Florian Bergmann (F)

University of Ulm, Institute for Laser Technologies in Medicine and Meteorology, Ulm, Germany.

Akuroma George (A)

University of Eastern Finland, Department of Technical Physics, Kuopio, Finland.

Petri Paakkari (P)

University of Eastern Finland, Department of Technical Physics, Kuopio, Finland.
Kuopio University Hospital, Diagnostic Imaging Center, Kuopio, Finland.

Arash Mirhashemi (A)

University of Eastern Finland, Department of Technical Physics, Kuopio, Finland.

Florian Foschum (F)

University of Ulm, Institute for Laser Technologies in Medicine and Meteorology, Ulm, Germany.

Alwin Kienle (A)

University of Ulm, Institute for Laser Technologies in Medicine and Meteorology, Ulm, Germany.

Juha Töyräs (J)

University of Eastern Finland, Department of Technical Physics, Kuopio, Finland.
Kuopio University Hospital, Science Service Center, Kuopio, Finland.
University of Queensland, School of Information Technology, and Electrical Engineering, Brisbane, Queensland, Australia.

Isaac O Afara (IO)

University of Eastern Finland, Department of Technical Physics, Kuopio, Finland.

Classifications MeSH