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Raman Spectroscopy in Skeletal Tissue Disorders and Tissue Engineering: Present and Prospective

Musculoskeletal disorders are the most common reason of chronic pain and disability, representing an enormous socioeconomic burden worldwide. In this review, new biomedical application fields for Raman spectroscopy (RS) technique related to skeletal tissues are discussed, showing that it can provide...

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Autores principales: Fosca, Marco, Basoli, Valentina, Della Bella, Elena, Russo, Fabrizio, Vadalà, Gianluca, Alini, Mauro, Rau, Julietta V., Verrier, Sophie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Mary Ann Liebert, Inc., publishers 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9587790/
https://www.ncbi.nlm.nih.gov/pubmed/34579558
http://dx.doi.org/10.1089/ten.teb.2021.0139
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author Fosca, Marco
Basoli, Valentina
Della Bella, Elena
Russo, Fabrizio
Vadalà, Gianluca
Alini, Mauro
Rau, Julietta V.
Verrier, Sophie
author_facet Fosca, Marco
Basoli, Valentina
Della Bella, Elena
Russo, Fabrizio
Vadalà, Gianluca
Alini, Mauro
Rau, Julietta V.
Verrier, Sophie
author_sort Fosca, Marco
collection PubMed
description Musculoskeletal disorders are the most common reason of chronic pain and disability, representing an enormous socioeconomic burden worldwide. In this review, new biomedical application fields for Raman spectroscopy (RS) technique related to skeletal tissues are discussed, showing that it can provide a comprehensive profile of tissue composition in situ, in a rapid, label-free, and nondestructive manner. RS can be used as a tool to study tissue alterations associated to aging, pathologies, and disease treatments. The main advantage with respect to currently applied methods in clinics is its ability to provide specific information on molecular composition, which goes beyond other diagnostic tools. Being compatible with water, RS can be performed without pretreatment on unfixed, hydrated tissue samples, without any labeling and chemical fixation used in histochemical methods. This review first provides the description of the basic principles of RS as a biotechnology tool and is introduced into the field of currently available RS-based techniques, developed to enhance Raman signals. The main spectral processing, statistical tools, fingerprint identification, and available databases are mentioned. The recent literature has been analyzed for such applications of RS as tendon and ligaments, cartilage, bone, and tissue engineered constructs for regenerative medicine. Several cases of proof-of-concept preclinical studies have been described. Finally, advantages, limitations, future perspectives, and challenges for the translation of RS into clinical practice have been also discussed. IMPACT STATEMENT: Raman spectroscopy (RS) is a powerful noninvasive tool giving access to molecular vibrations and characteristics of samples in a wavelength window of 600 to 3200 cm(−1), thus giving access to a molecular fingerprint of biological samples in a nondestructive way. RS could not only be used in clinical diagnostics, but also be used for quality control of tissues and tissue-engineered constructs, reducing number of samples, time, and the variety of analysis required in the quality control chain before implantation.
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spelling pubmed-95877902022-10-26 Raman Spectroscopy in Skeletal Tissue Disorders and Tissue Engineering: Present and Prospective Fosca, Marco Basoli, Valentina Della Bella, Elena Russo, Fabrizio Vadalà, Gianluca Alini, Mauro Rau, Julietta V. Verrier, Sophie Tissue Eng Part B Rev Review Articles Musculoskeletal disorders are the most common reason of chronic pain and disability, representing an enormous socioeconomic burden worldwide. In this review, new biomedical application fields for Raman spectroscopy (RS) technique related to skeletal tissues are discussed, showing that it can provide a comprehensive profile of tissue composition in situ, in a rapid, label-free, and nondestructive manner. RS can be used as a tool to study tissue alterations associated to aging, pathologies, and disease treatments. The main advantage with respect to currently applied methods in clinics is its ability to provide specific information on molecular composition, which goes beyond other diagnostic tools. Being compatible with water, RS can be performed without pretreatment on unfixed, hydrated tissue samples, without any labeling and chemical fixation used in histochemical methods. This review first provides the description of the basic principles of RS as a biotechnology tool and is introduced into the field of currently available RS-based techniques, developed to enhance Raman signals. The main spectral processing, statistical tools, fingerprint identification, and available databases are mentioned. The recent literature has been analyzed for such applications of RS as tendon and ligaments, cartilage, bone, and tissue engineered constructs for regenerative medicine. Several cases of proof-of-concept preclinical studies have been described. Finally, advantages, limitations, future perspectives, and challenges for the translation of RS into clinical practice have been also discussed. IMPACT STATEMENT: Raman spectroscopy (RS) is a powerful noninvasive tool giving access to molecular vibrations and characteristics of samples in a wavelength window of 600 to 3200 cm(−1), thus giving access to a molecular fingerprint of biological samples in a nondestructive way. RS could not only be used in clinical diagnostics, but also be used for quality control of tissues and tissue-engineered constructs, reducing number of samples, time, and the variety of analysis required in the quality control chain before implantation. Mary Ann Liebert, Inc., publishers 2022-10-01 2022-10-11 /pmc/articles/PMC9587790/ /pubmed/34579558 http://dx.doi.org/10.1089/ten.teb.2021.0139 Text en © Marco Fosca, et al., 2022; Published by Mary Ann Liebert, Inc. https://creativecommons.org/licenses/by/4.0/This Open Access article is distributed under the terms of the Creative Commons License [CC-BY] (http://creativecommons.org/licenses/by/4.0 (https://creativecommons.org/licenses/by/4.0/) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Review Articles
Fosca, Marco
Basoli, Valentina
Della Bella, Elena
Russo, Fabrizio
Vadalà, Gianluca
Alini, Mauro
Rau, Julietta V.
Verrier, Sophie
Raman Spectroscopy in Skeletal Tissue Disorders and Tissue Engineering: Present and Prospective
title Raman Spectroscopy in Skeletal Tissue Disorders and Tissue Engineering: Present and Prospective
title_full Raman Spectroscopy in Skeletal Tissue Disorders and Tissue Engineering: Present and Prospective
title_fullStr Raman Spectroscopy in Skeletal Tissue Disorders and Tissue Engineering: Present and Prospective
title_full_unstemmed Raman Spectroscopy in Skeletal Tissue Disorders and Tissue Engineering: Present and Prospective
title_short Raman Spectroscopy in Skeletal Tissue Disorders and Tissue Engineering: Present and Prospective
title_sort raman spectroscopy in skeletal tissue disorders and tissue engineering: present and prospective
topic Review Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9587790/
https://www.ncbi.nlm.nih.gov/pubmed/34579558
http://dx.doi.org/10.1089/ten.teb.2021.0139
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