Literature DB >> 16229641

Tissue characterization using high wave number Raman spectroscopy.

S Koljenović1, T C Bakker Schut, R Wolthuis, B de Jong, L Santos, P J Caspers, J M Kros, G J Puppels.   

Abstract

Raman spectroscopy is a powerful diagnostic tool, enabling tissue identification and classification. Mostly, the so-called fingerprint (approximately 400-1800 cm(-1)) spectral region is used. In vivo application often requires small flexible fiber-optic probes, and is hindered by the intense Raman signal that is generated in the fused silica core of the fiber. This necessitates filtering of laser light, which is guided to the tissue, and of the scattered light collected from the tissue, leading to complex and expensive designs. Fused silica has no Raman signal in the high wave number region (2400-3800 cm(-1)). This enables the use of a single unfiltered fiber to guide laser light to the tissue and to collect scattered light in this spectral region. We show, by means of a comparison of in vitro Raman microspectroscopic maps of thin tissue sections (brain tumors, bladder), measured both in the high wave number region and in the fingerprint region, that essentially the same diagnostic information is obtained in the two wave number regions. This suggests that for many clinical applications the technological hurdle of designing and constructing suitable fiber-optic probes may be eliminated by using the high wave number region and a simple piece of standard optical fiber.

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Year:  2005        PMID: 16229641     DOI: 10.1117/1.1922307

Source DB:  PubMed          Journal:  J Biomed Opt        ISSN: 1083-3668            Impact factor:   3.170


  24 in total

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Review 3.  Catheters: instrumental advancements in biomedical applications of optical fibers.

Authors:  Carlos J de Lima; Leonardo M Moreira; Juliana P Lyon; Antonio B Villaverde; Marcos T T Pacheco
Journal:  Lasers Med Sci       Date:  2008-09-09       Impact factor: 3.161

4.  Multifunctional optical imaging using dye-coated gold nanorods in a turbid medium.

Authors:  Fuhong Cai; Jun Qian; Li Jiang; Sailing He
Journal:  J Biomed Opt       Date:  2011 Jan-Feb       Impact factor: 3.170

Review 5.  Improving the accuracy of brain tumor surgery via Raman-based technology.

Authors:  Todd Hollon; Spencer Lewis; Christian W Freudiger; X Sunney Xie; Daniel A Orringer
Journal:  Neurosurg Focus       Date:  2016-03       Impact factor: 4.047

6.  2,4-dienoyl-CoA reductase regulates lipid homeostasis in treatment-resistant prostate cancer.

Authors:  Arnaud Blomme; Catriona A Ford; Ernest Mui; Rachana Patel; Chara Ntala; Lauren E Jamieson; Mélanie Planque; Grace H McGregor; Paul Peixoto; Eric Hervouet; Colin Nixon; Mark Salji; Luke Gaughan; Elke Markert; Peter Repiscak; David Sumpton; Giovanny Rodriguez Blanco; Sergio Lilla; Jurre J Kamphorst; Duncan Graham; Karen Faulds; Gillian M MacKay; Sarah-Maria Fendt; Sara Zanivan; Hing Y Leung
Journal:  Nat Commun       Date:  2020-05-19       Impact factor: 14.919

7.  Label-free detection of peripheral nerve tissues against adjacent tissues by spontaneous Raman microspectroscopy.

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8.  Rise of Raman spectroscopy in neurosurgery: a review.

Authors:  Damon DePaoli; Émile Lemoine; Katherine Ember; Martin Parent; Michel Prud'homme; Léo Cantin; Kevin Petrecca; Frédéric Leblond; Daniel C Côté
Journal:  J Biomed Opt       Date:  2020-05       Impact factor: 3.170

9.  Characterization of cholesterol crystals in atherosclerotic plaques using stimulated Raman scattering and second-harmonic generation microscopy.

Authors:  Jeffrey L Suhalim; Chao-Yu Chung; Magnus B Lilledahl; Ryan S Lim; Moshe Levi; Bruce J Tromberg; Eric O Potma
Journal:  Biophys J       Date:  2012-04-18       Impact factor: 4.033

10.  Real-time in vivo diagnosis of laryngeal carcinoma with rapid fiber-optic Raman spectroscopy.

Authors:  Kan Lin; Wei Zheng; Chwee Ming Lim; Zhiwei Huang
Journal:  Biomed Opt Express       Date:  2016-08-26       Impact factor: 3.732

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