A Polarized Raman Spectroscopic Method for Advanced Analyses of the Osteon Lamellar Structure of Human Bone.

Raman human bone osteon polarized spectroscopy structure

Journal

Methods and protocols
ISSN: 2409-9279
Titre abrégé: Methods Protoc
Pays: Switzerland
ID NLM: 101720073

Informations de publication

Date de publication:
20 May 2022
Historique:
received: 16 02 2022
revised: 14 03 2022
accepted: 15 03 2022
entrez: 1 6 2022
pubmed: 2 6 2022
medline: 2 6 2022
Statut: epublish

Résumé

Raman spectroscopy has recently been used for quantitative analyses of cortical bone tissue and related materials, such as dentin and enamel. While those analyses have proven useful as potential diagnostic tools, the Raman spectrum of bone encrypts a wealth of additional molecular scale details about structure and crystal arrangement, which are yet to be unfolded. Such details directly link to both bone physiology and pathology. In this work, a triple monochromator spectrometer with high spectral resolution, employed in polarized light configurations, was used to extract quantitative details about the preferential crystallographic orientation of apatite and collagen components in a human proximal femoral cortical bone sample. This body of information was then used to model the bone structure at the nanometric scale through a methodology that could be key in assessments of bone structure in health and disease.

Identifiants

pubmed: 35645349
pii: mps5030041
doi: 10.3390/mps5030041
pmc: PMC9149888
pii:
doi:

Types de publication

Journal Article

Langues

eng

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Auteurs

Giuseppe Pezzotti (G)

Ceramic Physics Laboratory, Kyoto Institute of Technology, Sakyo-ku, Matsugasaki, Kyoto 606-8585, Japan.
Department of Dental Medicine, Graduate School of Medical Science, Kyoto Prefectural University of Medicine, Kamigyo-ku, Kyoto 602-8566, Japan.
Department of Immunology, Graduate School of Medical Science, Kyoto Prefectural University of Medicine Kami-gyo-ku, 465 Kajii-cho, Kawaramachi dori, Kyoto 602-0841, Japan.
The Center for Advanced Medical Engineering and Informatics, Osaka University, Osaka 565-0871, Japan.
Department of Orthopedic Surgery, Tokyo Medical University, 6-7-1 Nishi-Shinjuku, Shinjuku-ku, Tokyo 565-0871, Japan.

Eiji Ishimura (E)

Ceramic Physics Laboratory, Kyoto Institute of Technology, Sakyo-ku, Matsugasaki, Kyoto 606-8585, Japan.
Kyoto Municipal Science Center for Youth, Kyoto City Board of Education, Fushimi-ku, Fukakusa, Kyoto 612-1601, Japan.

Ryosuke Inai (R)

Ceramic Physics Laboratory, Kyoto Institute of Technology, Sakyo-ku, Matsugasaki, Kyoto 606-8585, Japan.

Wenliang Zhu (W)

Ceramic Physics Laboratory, Kyoto Institute of Technology, Sakyo-ku, Matsugasaki, Kyoto 606-8585, Japan.

Taigi Honma (T)

Ceramic Physics Laboratory, Kyoto Institute of Technology, Sakyo-ku, Matsugasaki, Kyoto 606-8585, Japan.

Nobuhiko Sugano (N)

Department of Orthopaedic Medical Engineering, Osaka University Graduate School of Medicine, Suita, Osaka 565-0871, Japan.

Wataru Ando (W)

Department of Orthopaedic Medical Engineering, Osaka University Graduate School of Medicine, Suita, Osaka 565-0871, Japan.

Ugo Pazzaglia (U)

Department of Medical and Surgical Specialties, Radiological Sciences & Public Health, University of Brescia, 11 Viale Europa, 25123 Brescia, Italy.

Elia Marin (E)

Ceramic Physics Laboratory, Kyoto Institute of Technology, Sakyo-ku, Matsugasaki, Kyoto 606-8585, Japan.
Department of Dental Medicine, Graduate School of Medical Science, Kyoto Prefectural University of Medicine, Kamigyo-ku, Kyoto 602-8566, Japan.

Classifications MeSH