Literature DB >> 21468721

Classification model based on Raman spectra of selected morphological and biochemical tissue constituents for identification of atherosclerosis in human coronary arteries.

Marines Bertolo Peres1, Landulfo Silveira, Renato Amaro Zângaro, Marcos Tadeu Tavares Pacheco, Carlos Augusto Pasqualucci.   

Abstract

This study presents the results of Raman spectroscopy applied to the classification of arterial tissue based on a simplified model using basal morphological and biochemical information extracted from the Raman spectra of arteries. The Raman spectrograph uses an 830-nm diode laser, imaging spectrograph, and a CCD camera. A total of 111 Raman spectra from arterial fragments were used to develop the model, and those spectra were compared to the spectra of collagen, fat cells, smooth muscle cells, calcification, and cholesterol in a linear fit model. Non-atherosclerotic (NA), fatty and fibrous-fatty atherosclerotic plaques (A) and calcified (C) arteries exhibited different spectral signatures related to different morphological structures presented in each tissue type. Discriminant analysis based on Mahalanobis distance was employed to classify the tissue type with respect to the relative intensity of each compound. This model was subsequently tested prospectively in a set of 55 spectra. The simplified diagnostic model showed that cholesterol, collagen, and adipocytes were the tissue constituents that gave the best classification capability and that those changes were correlated to histopathology. The simplified model, using spectra obtained from a few tissue morphological and biochemical constituents, showed feasibility by using a small amount of variables, easily extracted from gross samples.

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Year:  2011        PMID: 21468721     DOI: 10.1007/s10103-011-0908-z

Source DB:  PubMed          Journal:  Lasers Med Sci        ISSN: 0268-8921            Impact factor:   3.161


  27 in total

Review 1.  Prospects for in vivo Raman spectroscopy.

Authors:  E B Hanlon; R Manoharan; T W Koo; K E Shafer; J T Motz; M Fitzmaurice; J R Kramer; I Itzkan; R R Dasari; M S Feld
Journal:  Phys Med Biol       Date:  2000-02       Impact factor: 3.609

Review 2.  Intravascular modalities for detection of vulnerable plaque: current status.

Authors:  Briain D MacNeill; Harry C Lowe; Masamichi Takano; Valentin Fuster; Ik-Kyung Jang
Journal:  Arterioscler Thromb Vasc Biol       Date:  2003-06-12       Impact factor: 8.311

3.  Detection of morphological markers of vulnerable atherosclerotic plaque using multimodal spectroscopy.

Authors:  Obrad R Sćepanović; Maryann Fitzmaurice; Joseph A Gardecki; George O Angheloiu; Samir Awasthi; Jason T Motz; John R Kramer; Ramachandra R Dasari; Michael S Feld
Journal:  J Biomed Opt       Date:  2006 Mar-Apr       Impact factor: 3.170

4.  In situ optical histochemistry of human artery using near infrared Fourier transform Raman spectroscopy.

Authors:  J J Baraga; M S Feld; R P Rava
Journal:  Proc Natl Acad Sci U S A       Date:  1992-04-15       Impact factor: 11.205

5.  Diagnosis of human coronary atherosclerosis by morphology-based Raman spectroscopy.

Authors:  H P Buschman; J T Motz; G Deinum; T J Römer; M Fitzmaurice; J R Kramer; A van der Laarse; A V Bruschke; M S Feld
Journal:  Cardiovasc Pathol       Date:  2001 Mar-Apr       Impact factor: 2.185

6.  In vivo Raman spectral pathology of human atherosclerosis and vulnerable plaque.

Authors:  Jason T Motz; Maryann Fitzmaurice; Arnold Miller; Saumil J Gandhi; Abigail S Haka; Luis H Galindo; Ramachandra R Dasari; John R Kramer; Michael S Feld
Journal:  J Biomed Opt       Date:  2006 Mar-Apr       Impact factor: 3.170

7.  Raman spectroscopy study of atherosclerosis in human carotid artery.

Authors:  Grazielle V Nogueira; Landulfo Silveira; Airton A Martin; Renato A Zângaro; Marcos T T Pacheco; Maria C Chavantes; Carlos A Pasqualucci
Journal:  J Biomed Opt       Date:  2005 May-Jun       Impact factor: 3.170

8.  Histopathology of human coronary atherosclerosis by quantifying its chemical composition with Raman spectroscopy.

Authors:  T J Römer; J F Brennan; M Fitzmaurice; M L Feldstein; G Deinum; J L Myles; J R Kramer; R S Lees; M S Feld
Journal:  Circulation       Date:  1998-03-10       Impact factor: 29.690

9.  Near-infrared Raman spectroscopy for optical diagnosis of lung cancer.

Authors:  Zhiwei Huang; Annette McWilliams; Harvey Lui; David I McLean; Stephen Lam; Haishan Zeng
Journal:  Int J Cancer       Date:  2003-12-20       Impact factor: 7.396

Review 10.  From vulnerable plaque to vulnerable patient: a call for new definitions and risk assessment strategies: Part I.

Authors:  Morteza Naghavi; Peter Libby; Erling Falk; S Ward Casscells; Silvio Litovsky; John Rumberger; Juan Jose Badimon; Christodoulos Stefanadis; Pedro Moreno; Gerard Pasterkamp; Zahi Fayad; Peter H Stone; Sergio Waxman; Paolo Raggi; Mohammad Madjid; Alireza Zarrabi; Allen Burke; Chun Yuan; Peter J Fitzgerald; David S Siscovick; Chris L de Korte; Masanori Aikawa; K E Juhani Airaksinen; Gerd Assmann; Christoph R Becker; James H Chesebro; Andrew Farb; Zorina S Galis; Chris Jackson; Ik-Kyung Jang; Wolfgang Koenig; Robert A Lodder; Keith March; Jasenka Demirovic; Mohamad Navab; Silvia G Priori; Mark D Rekhter; Raymond Bahr; Scott M Grundy; Roxana Mehran; Antonio Colombo; Eric Boerwinkle; Christie Ballantyne; William Insull; Robert S Schwartz; Robert Vogel; Patrick W Serruys; Goran K Hansson; David P Faxon; Sanjay Kaul; Helmut Drexler; Philip Greenland; James E Muller; Renu Virmani; Paul M Ridker; Douglas P Zipes; Prediman K Shah; James T Willerson
Journal:  Circulation       Date:  2003-10-07       Impact factor: 29.690

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  6 in total

1.  Raman spectroscopy detection of molecular changes associated with two experimental models of osteoarthritis in rats.

Authors:  Renato Aparecido de Souza; Murilo Xavier; Nilton Maciel Mangueira; Ana Paula Santos; Antonio Luiz Barbosa Pinheiro; Antonio Balbin Villaverde; Landulfo Silveira
Journal:  Lasers Med Sci       Date:  2013-08-25       Impact factor: 3.161

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

Authors:  Takeo Minamikawa; Yoshinori Harada; Noriaki Koizumi; Koji Okihara; Kazumi Kamoi; Akio Yanagisawa; Tetsuro Takamatsu
Journal:  Histochem Cell Biol       Date:  2012-08-15       Impact factor: 4.304

3.  Effect of low-level laser therapy in an experimental model of osteoarthritis in rats evaluated through Raman spectroscopy.

Authors:  Nilton Maciel Mangueira; Murilo Xavier; Renato Aparecido de Souza; Miguel Angel Castillo Salgado; Landulfo Silveira; Antonio Balbin Villaverde
Journal:  Photomed Laser Surg       Date:  2015-02-25       Impact factor: 2.796

4.  Could the bone mineral density (T-score) be correlated with the Raman spectral features of keratin from women's nails and be used to predict osteoporosis?

Authors:  Julio Cesar Mussatto; Mauro Coura Perez; Renato Aparecido de Souza; Marcos Tadeu T Pacheco; Renato Amaro Zângaro; Landulfo Silveira
Journal:  Lasers Med Sci       Date:  2014-09-21       Impact factor: 3.161

5.  Investigation of noise-induced instabilities in quantitative biological spectroscopy and its implications for noninvasive glucose monitoring.

Authors:  Ishan Barman; Narahara Chari Dingari; Gajendra Pratap Singh; Jaqueline S Soares; Ramachandra R Dasari; Janusz M Smulko
Journal:  Anal Chem       Date:  2012-09-19       Impact factor: 6.986

Review 6.  Molecular imaging of atherosclerosis: spotlight on Raman spectroscopy and surface-enhanced Raman scattering.

Authors:  Neil MacRitchie; Gianluca Grassia; Jonathan Noonan; Paul Garside; Duncan Graham; Pasquale Maffia
Journal:  Heart       Date:  2017-10-23       Impact factor: 5.994

  6 in total

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