In Vivo, Non-Invasive Characterization of Human Bone by Hybrid Broadband (600-1200 nm) Diffuse Optical and Correlation Spectroscopies

Non-invasive in vivo diffuse optical characterization of human bone opens a new possibility of diagnosing bone related pathologies. We present an in vivo characterization performed on seventeen healthy subjects at six different superficial bone locations: radius distal, radius proximal, ulna distal,...

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Veröffentlicht in:PLOS ONE Jg. 11; H. 12; S. e0168426
Hauptverfasser: Konugolu Venkata Sekar, Sanathana, Pagliazzi, Marco, Negredo, Eugènia, Martelli, Fabrizio, Farina, Andrea, Dalla Mora, Alberto, Lindner, Claus, Farzam, Parisa, Pérez-Álvarez, Núria, Puig, Jordi, Taroni, Paola, Pifferi, Antonio, Durduran, Turgut
Format: Journal Article Verlag
Sprache:Englisch
Veröffentlicht: United States Public Library of Science (PLoS) 20.12.2016
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ISSN:1932-6203, 1932-6203
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Abstract Non-invasive in vivo diffuse optical characterization of human bone opens a new possibility of diagnosing bone related pathologies. We present an in vivo characterization performed on seventeen healthy subjects at six different superficial bone locations: radius distal, radius proximal, ulna distal, ulna proximal, trochanter and calcaneus. A tailored diffuse optical protocol for high penetration depth combined with the rather superficial nature of considered tissues ensured the effective probing of the bone tissue. Measurements were performed using a broadband system for Time-Resolved Diffuse Optical Spectroscopy (TRS) to assess mean absorption and reduced scattering spectra in the 600-1200 nm range and Diffuse Correlation Spectroscopy (DCS) to monitor microvascular blood flow. Significant variations among tissue constituents were found between different locations; with radius distal rich of collagen, suggesting it as a prominent location for bone related measurements, and calcaneus bone having highest blood flow among the body locations being considered. By using TRS and DCS together, we are able to probe the perfusion and oxygen consumption of the tissue without any contrast agents. Therefore, we predict that these methods will be able to evaluate the impairment of the oxygen metabolism of the bone at the point-of-care.
AbstractList Non-invasive in vivo diffuse optical characterization of human bone opens a new possibility of diagnosing bone related pathologies. We present an in vivo characterization performed on seventeen healthy subjects at six different superficial bone locations: radius distal, radius proximal, ulna distal, ulna proximal, trochanter and calcaneus. A tailored diffuse optical protocol for high penetration depth combined with the rather superficial nature of considered tissues ensured the effective probing of the bone tissue. Measurements were performed using a broadband system for Time-Resolved Diffuse Optical Spectroscopy (TRS) to assess mean absorption and reduced scattering spectra in the 600–1200 nm range and Diffuse Correlation Spectroscopy (DCS) to monitor microvascular blood flow. Significant variations among tissue constituents were found between different locations; with radius distal rich of collagen, suggesting it as a prominent location for bone related measurements, and calcaneus bone having highest blood flow among the body locations being considered. By using TRS and DCS together, we are able to probe the perfusion and oxygen consumption of the tissue without any contrast agents. Therefore, we predict that these methods will be able to evaluate the impairment of the oxygen metabolism of the bone at the point-of-care. Peer Reviewed
Non-invasive in vivo diffuse optical characterization of human bone opens a new possibility of diagnosing bone related pathologies. We present an in vivo characterization performed on seventeen healthy subjects at six different superficial bone locations: radius distal, radius proximal, ulna distal, ulna proximal, trochanter and calcaneus. A tailored diffuse optical protocol for high penetration depth combined with the rather superficial nature of considered tissues ensured the effective probing of the bone tissue. Measurements were performed using a broadband system for Time-Resolved Diffuse Optical Spectroscopy (TRS) to assess mean absorption and reduced scattering spectra in the 600-1200 nm range and Diffuse Correlation Spectroscopy (DCS) to monitor microvascular blood flow. Significant variations among tissue constituents were found between different locations; with radius distal rich of collagen, suggesting it as a prominent location for bone related measurements, and calcaneus bone having highest blood flow among the body locations being considered. By using TRS and DCS together, we are able to probe the perfusion and oxygen consumption of the tissue without any contrast agents. Therefore, we predict that these methods will be able to evaluate the impairment of the oxygen metabolism of the bone at the point-of-care.
Non-invasive in vivo diffuse optical characterization of human bone opens a new possibility of diagnosing bone related pathologies. We present an in vivo characterization performed on seventeen healthy subjects at six different superficial bone locations: radius distal, radius proximal, ulna distal, ulna proximal, trochanter and calcaneus. A tailored diffuse optical protocol for high penetration depth combined with the rather superficial nature of considered tissues ensured the effective probing of the bone tissue. Measurements were performed using a broadband system for Time-Resolved Diffuse Optical Spectroscopy (TRS) to assess mean absorption and reduced scattering spectra in the 600-1200 nm range and Diffuse Correlation Spectroscopy (DCS) to monitor microvascular blood flow. Significant variations among tissue constituents were found between different locations; with radius distal rich of collagen, suggesting it as a prominent location for bone related measurements, and calcaneus bone having highest blood flow among the body locations being considered. By using TRS and DCS together, we are able to probe the perfusion and oxygen consumption of the tissue without any contrast agents. Therefore, we predict that these methods will be able to evaluate the impairment of the oxygen metabolism of the bone at the point-of-care.Non-invasive in vivo diffuse optical characterization of human bone opens a new possibility of diagnosing bone related pathologies. We present an in vivo characterization performed on seventeen healthy subjects at six different superficial bone locations: radius distal, radius proximal, ulna distal, ulna proximal, trochanter and calcaneus. A tailored diffuse optical protocol for high penetration depth combined with the rather superficial nature of considered tissues ensured the effective probing of the bone tissue. Measurements were performed using a broadband system for Time-Resolved Diffuse Optical Spectroscopy (TRS) to assess mean absorption and reduced scattering spectra in the 600-1200 nm range and Diffuse Correlation Spectroscopy (DCS) to monitor microvascular blood flow. Significant variations among tissue constituents were found between different locations; with radius distal rich of collagen, suggesting it as a prominent location for bone related measurements, and calcaneus bone having highest blood flow among the body locations being considered. By using TRS and DCS together, we are able to probe the perfusion and oxygen consumption of the tissue without any contrast agents. Therefore, we predict that these methods will be able to evaluate the impairment of the oxygen metabolism of the bone at the point-of-care.
Audience Academic
Author Jordi Puig
Eugenia Negredo
Claus Lindner
Antonio Pifferi
Marco Pagliazzi
Turgut Durduran
Paola Taroni
Sanathana Konugolu Venkata Sekar
Andrea Farina
Núria Pérez-Álvarez
Parisa Farzam
Alberto Dalla Mora
Fabrizio Martelli
AuthorAffiliation 6 Consiglio Nazionale delle Ricerche - Istituto di Fotonica e Nanotecnologie, Milano, Italy
3 Lluita contra la Sida Foundation, Germans Trias i Pujol University Hospital, Badalona, Spain. Universitat Autònoma de Barcelona, Barcelona, Spain
4 Universitat de Vic-Universitat Central de Catalunya, Vic, Barcelona, Spain
5 Dipartimento di Fisica e Astronomia, Università degli Studi di Firenze, Sesto Fiorentino, Firenze, Italy
1 Dipartimento di Fisica, Politecnico di Milano, Milano, Italy
7 Statistics and Operations Research Department, Universitat Politècnica de Catalunya, Barcelona, Spain
2 ICFO-Institut de Ciències Fotòniques, The Barcelona Institute of Science and Technology, Castelldefels, Barcelona, Spain
8 Institució Catalana de Recerca i Estudis Avançats (ICREA), Barcelona, Spain
Medical Photonics Research Center, Hamamatsu University School of Medicine, JAPAN
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BackLink https://cir.nii.ac.jp/crid/1873961342369083904$$DView record in CiNii
https://www.ncbi.nlm.nih.gov/pubmed/27997565$$D View this record in MEDLINE/PubMed
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Cites_doi 10.1117/1.JBO.18.7.076001
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Contributor Universitat Politècnica de Catalunya. Departament d'Estadística i Investigació Operativa
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Copyright COPYRIGHT 2016 Public Library of Science
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2016 Konugolu Venkata Sekar et al 2016 Konugolu Venkata Sekar et al
Copyright_xml – notice: COPYRIGHT 2016 Public Library of Science
– notice: 2016 Konugolu Venkata Sekar et al. This is an open access article distributed under the terms of the Creative Commons Attribution License: http://creativecommons.org/licenses/by/4.0/ (the “License”), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.
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Conceptualization: EN TD AP PT SKVS MP CL PF.Formal analysis: SKVS MP CL.Funding acquisition: AP TD.Investigation: MP CL.Methodology: EN.Resources: MP CL FM PT AF ADM NP JP EN.Software: AF FM.Supervision: AP TD.Validation: SKVS.Visualization: SKVS.Writing – original draft: SKVS.Writing – review & editing: SKVS MP PT AP TD.
Competing Interests: ICFO has equity ownership in the spin-off company HemoPhotonics S.L. HemoPhotonics did not play any role on the decision on publication, data interpretation and analysis. Potential financial conflicts of interest and objectivity of research have been monitored by ICFO’s Knowledge & Technology Transfer Department. No financial conflicts of interest were identified. This does not alter our adherence to PLOS ONE policies on sharing data and materials.
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PublicationDate 2016-12-20
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Snippet Non-invasive in vivo diffuse optical characterization of human bone opens a new possibility of diagnosing bone related pathologies. We present an in vivo...
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SubjectTerms 90 Operations research, mathematical programming
90 Operations research, mathematical programming [Classificació AMS]
Adult
Biology and Life Sciences
Blood
Blood flow
bone
Bone blood flow
Bone density
Bones
Broadband
Calcaneus
Classificació AMS
Classificació AMS::90 Operations research
Classificació AMS::90 Operations research, mathematical programming
Collagen
Contrast agents
Correlation
Diagnostic imaging
diffuse spectroscopy
diffuse-correlation spectroscopy
Female
Human Bone, Diffuse Correlation Spectroscopy
Humans
Innovations
Investigació operativa
Lipids
Male
Matemàtiques i estadística
Matemàtiques i estadística::Investigació operativa [Àrees temàtiques de la UPC]
mathematical programming
Medical imaging
Medicine
Medicine and Health Sciences
Metabolism
Microvasculature
Middle Aged
NMR
Nuclear magnetic resonance
Observations
Optical properties
Osteoporosis
Oxygen
Oxygen Consumption
Oxygen consumption (Metabolism)
Oxygen metabolism
Patient care
Penetration depth
Perfusion
Physical Sciences
Physiology
Point-of-Care Systems
Q
R
Radius
Radius - diagnostic imaging
Radius - metabolism
Research and Analysis Methods
Research Article
Science
Spectrophotometry
Spectrophotometry - instrumentation
Spectrophotometry - methods
Spectroscopy
Spectrum analysis
Technology application
TIME-RESOLVED REFLECTANCE; PENETRATION DEPTH; BLOOD-FLOW; HUMAN HEAD; TISSUE; DENSITY; LIGHT; OSTEOPOROSIS; TOMOGRAPHY; ABSORPTION
Tissues
Tomography, Optical Coherence
Tomography, Optical Coherence - instrumentation
Tomography, Optical Coherence - methods
Trochanter
Ulna
Ulna - diagnostic imaging
Ulna - metabolism
Àrees temàtiques de la UPC
Àrees temàtiques de la UPC::Matemàtiques i estadística::Investigació operativa
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Title In Vivo, Non-Invasive Characterization of Human Bone by Hybrid Broadband (600-1200 nm) Diffuse Optical and Correlation Spectroscopies
URI https://cir.nii.ac.jp/crid/1873961342369083904
https://www.ncbi.nlm.nih.gov/pubmed/27997565
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http://dx.doi.org/10.1371/journal.pone.0168426
Volume 11
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