Raman spectroscopy for medical diagnostics - From in-vitro biofluid assays to in-vivo cancer detection

被引:507
作者
Kong, Kenny [1 ]
Kendall, Catherine [2 ,3 ]
Stone, Nicholas [2 ,3 ]
Notingher, Ioan [1 ]
机构
[1] Univ Nottingham, Sch Phys & Astron, Nottingham NG7 2RD, England
[2] Univ Exeter, Coll Engn Math & Phys Sci, Exeter EX4 4QL, Devon, England
[3] Gloucestershire Hosp NHS Fdn Trust, Biophoton Res Unit, Gloucester GL1 3NN, England
基金
英国工程与自然科学研究理事会; 美国国家卫生研究院;
关键词
Raman spectroscopy; Diagnostics; Biophotonics; Tissue; Cells; Biofluids; BASAL-CELL CARCINOMA; HUMAN TEAR FLUID; BREAST-CANCER; LABEL-FREE; DIFFERENTIAL-DIAGNOSIS; ENDOSCOPIC DETECTION; CONSERVING SURGERY; FIBEROPTIC PROBES; BRAIN-TUMORS; BLOOD-PLASMA;
D O I
10.1016/j.addr.2015.03.009
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Raman spectroscopy is an optical technique based on inelastic scattering of light by vibrating molecules and can provide chemical fingerprints of cells, tissues or biofluids. The high chemical specificity, minimal or lack of sample preparation and the ability to use advanced optical technologies in the visible or near-infrared spectral range (lasers, microscopes, fibre-optics) have recently led to an increase in medical diagnostic applications of Raman spectroscopy. The key hypothesis underpinning this field is that molecular changes in cells, tissues or biofluids, that are either the cause or the effect of diseases, can be detected and quantified by Raman spectroscopy. Furthermore, multivariate calibration and classification models based on Raman spectra can be developed on large "training" datasets and used subsequently on samples from new patients to obtain quantitative and objective diagnosis. Historically, spontaneous Raman spectroscopy has been known as a low signal technique requiring relatively long acquisition times. Nevertheless, new strategies have been developed recently to overcome these issues: non-linear optical effects and metallic nanoparticles can be used to enhance the Raman signals, optimised fibre-optic Raman probes can be used for real-time in-vivo single-point measurements, while multi-modal integration with other optical techniques can guide the Raman measurements to increase the acquisition speed and spatial accuracy of diagnosis. These recent efforts have advanced Raman spectroscopy to the point where the diagnostic accuracy and speed are compatible with clinical use. This paper reviews the main Raman spectroscopy techniques used in medical diagnostics and provides an overview of various applications. (C) 2015 The Authors. Published by Elsevier B.V.
引用
收藏
页码:121 / 134
页数:14
相关论文
共 135 条
[1]   ANOMALOUSLY INTENSE RAMAN-SPECTRA OF PYRIDINE AT A SILVER ELECTRODE [J].
ALBRECHT, MG ;
CREIGHTON, JA .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1977, 99 (15) :5215-5217
[2]   Endoscopic Raman spectroscopy enables objective diagnosis of dysplasia in Barrett's esophagus [J].
Almond, L. Max ;
Hutchings, Jo ;
Lloyd, Gavin ;
Barr, Hugh ;
Shepherd, Neil ;
Day, John ;
Stevens, Oliver ;
Sanders, Scott ;
Wadley, Martin ;
Stone, Nick ;
Kendall, Catherine .
GASTROINTESTINAL ENDOSCOPY, 2014, 79 (01) :37-45
[3]  
AmericanCancerSociety, 2014, FIG CANC FACTS
[4]  
[Anonymous], PLOS ONE
[5]   New relationships between breast microcalcifications and cancer [J].
Baker, R. ;
Rogers, K. D. ;
Shepherd, N. ;
Stone, N. .
BRITISH JOURNAL OF CANCER, 2010, 103 (07) :1034-1039
[6]   Depth profiling of calcifications in breast tissue using picosecond Kerr-gated Raman spectroscopy [J].
Baker, Rebecca ;
Matousek, Pavel ;
Ronayne, Kate Louise ;
Parker, Anthony William ;
Rogers, Keith ;
Stone, Nicholas .
ANALYST, 2007, 132 (01) :48-53
[7]   Real-time image guidance for brain tumor surgery through stimulated Raman scattering microscopy [J].
Bentley, Jessica Nicole ;
Ji, Minbiao ;
Xie, Xiaoliang Sunney ;
Orringer, Daniel A. .
EXPERT REVIEW OF ANTICANCER THERAPY, 2014, 14 (04) :359-361
[8]   In Vivo Diagnosis of Esophageal Cancer Using Image-Guided Raman Endoscopy and Biomolecular Modeling [J].
Bergholt, M. S. ;
Zheng, W. ;
Lin, K. ;
Ho, K. Y. ;
Teh, M. ;
Yeoh, K. G. ;
So, J. B. Y. ;
Huang, Z. .
TECHNOLOGY IN CANCER RESEARCH & TREATMENT, 2011, 10 (02) :103-112
[9]   Quantification of C-Reactive protein in human blood plasma using near-infrared Raman spectroscopy [J].
Bergholt, M. S. ;
Hassing, S. .
ANALYST, 2009, 134 (10) :2123-2127
[10]   Characterizing variability in in vivo Raman spectra of different anatomical locations in the upper gastrointestinal tract toward cancer detection [J].
Bergholt, Mads Sylvest ;
Zheng, Wei ;
Lin, Kan ;
Ho, Khek Yu ;
Teh, Ming ;
Yeoh, Khay Guan ;
So, Jimmy Bok Yan ;
Huang, Zhiwei .
JOURNAL OF BIOMEDICAL OPTICS, 2011, 16 (03)