Literature DB >> 25987969

Role of optical spectroscopic methods in neuro-oncological sciences.

Maryam Bahreini1.   

Abstract

In the surgical treatment of malignant tumors, it is crucial to characterize the tumor as precisely as possible. The determination of the exact tumor location as well as the analysis of its properties is very important in order to obtain an accurate diagnosis as early as possible. In neurosurgical applications, the optical, non-invasive and in situ techniques allow for the label-free analysis of tissue, which is helpful in neuropathology. In the past decades, optical spectroscopic methods have been investigated drastically in the management of cancer. In the optical spectroscopic techniques, tissue interrogate with sources of light which are ranged from the ultraviolet to the infrared wavelength in the spectrum. The information accumulation of light can be in a reflection which is named reflectance spectroscopy; or interactions with tissue at different wavelengths which are called fluorescence and Raman spectroscopy. This review paper introduces the optical spectroscopic methods which are used to characterize brain tumors (neuro-oncology). Based on biochemical information obtained from these spectroscopic methods, it is possible to identify tumor from normal brain tissues, to indicate tumor margins, the borders towards normal brain tissue and infiltrating gliomas, to distinguish radiation damage of tissues, to detect particular central nervous system (CNS) structures to identify cell types using particular neurotransmitters, to detect cells or drugs which are optically labeled within therapeutic intermediations and to estimate the viability of tissue and the prediction of apoptosis beginning in vitro and in vivo. The label-free, optical biochemical spectroscopic methods can provide clinically relevant information and need to be further exploited to develop a safe and easy-to-use technology for in situ diagnosis of malignant tumors.

Entities:  

Keywords:  neuro-oncologic; optic; spectroscopy

Year:  2015        PMID: 25987969      PMCID: PMC4431964     

Source DB:  PubMed          Journal:  J Lasers Med Sci        ISSN: 2008-9783


  77 in total

1.  Brain tumor demarcation using optical spectroscopy; an in vitro study.

Authors:  W C Lin; S A Toms; M Motamedi; E D Jansen; A Mahadevan-Jansen
Journal:  J Biomed Opt       Date:  2000-04       Impact factor: 3.170

2.  Hollow-fiber-based flexible probe for remote measurement of infrared attenuated total reflection.

Authors:  Yuji Matsuura; Saiko Kino; Takashi Katagiri
Journal:  Appl Opt       Date:  2009-10-01       Impact factor: 1.980

3.  Ex vivo and in vivo diagnosis of C6 glioblastoma development by Raman spectroscopy coupled to a microprobe.

Authors:  Abdelilah Beljebbar; Sylvain Dukic; Nadia Amharref; Michel Manfait
Journal:  Anal Bioanal Chem       Date:  2010-06-26       Impact factor: 4.142

4.  Differentiation between recurrent brain tumour and post-radiation necrosis: the value of 201Tl SPET versus 18F-FDG PET using a dual-headed coincidence camera--a pilot study.

Authors:  M Stokkel; H Stevens; M Taphoorn; P Van Rijk
Journal:  Nucl Med Commun       Date:  1999-05       Impact factor: 1.690

Review 5.  FTIR spectro-imaging of collagens for characterization and grading of gliomas.

Authors:  Razia Noreen; Michel Moenner; Yeukuang Hwu; Cyril Petibois
Journal:  Biotechnol Adv       Date:  2012-03-30       Impact factor: 14.227

Review 6.  Poly(ADP-ribose) polymerase-1 cleavage during apoptosis: an update.

Authors:  C Soldani; A Ivana Scovassi
Journal:  Apoptosis       Date:  2002-08       Impact factor: 4.677

7.  Diagnosis of recurrent brain tumor: value of 201Tl SPECT vs 18F-fluorodeoxyglucose PET.

Authors:  D Kahn; K A Follett; D L Bushnell; M A Nathan; J G Piper; M Madsen; P T Kirchner
Journal:  AJR Am J Roentgenol       Date:  1994-12       Impact factor: 3.959

8.  Re-evaluation of model-based light-scattering spectroscopy for tissue spectroscopy.

Authors:  Condon Lau; Obrad Sćepanović; Jelena Mirkovic; Sasha McGee; Chung-Chieh Yu; Stephen Fulghum; Michael Wallace; James Tunnell; Kate Bechtel; Michael Feld
Journal:  J Biomed Opt       Date:  2009 Mar-Apr       Impact factor: 3.170

9.  Diffuse reflectance spectroscopy measurements for tissue-type discrimination during deep brain stimulation.

Authors:  Johan Antonsson; Ola Eriksson; Patric Blomstedt; A Tommy Bergenheim; Marwan I Hariz; Johan Richter; Peter Zsigmond; Karin Wårdell
Journal:  J Neural Eng       Date:  2008-05-06       Impact factor: 5.379

10.  Methodology for fiber-optic Raman mapping and FTIR imaging of metastases in mouse brains.

Authors:  Christoph Krafft; Matthias Kirsch; Claudia Beleites; Gabriele Schackert; Reiner Salzer
Journal:  Anal Bioanal Chem       Date:  2007-07-17       Impact factor: 4.142

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  3 in total

Review 1.  Fluorescence-guided resection of brain tumor: review of the significance of intraoperative quantification of protoporphyrin IX fluorescence.

Authors:  Zheng Huang; Songsheng Shi; Haixia Qiu; Desheng Li; Jian Zou; Shaoshan Hu
Journal:  Neurophotonics       Date:  2017-01-12       Impact factor: 3.593

2.  Spectroscopic Characteristics of Xeloda Chemodrug.

Authors:  Sahar Abdollahi Jahdi; Parviz Parvin; Solaleh Seyedi; Saeid Jelvani; Mohammad Reza Razzaghi
Journal:  J Lasers Med Sci       Date:  2021-09-25

3.  Morphological and Biochemical Properties of Human Astrocytes, Microglia, Glioma, and Glioblastoma Cells Using Fourier Transform Infrared Spectroscopy.

Authors:  Dongsheng Kong; Wenyu Peng; Rui Zong; Gangqiang Cui; Xinguang Yu
Journal:  Med Sci Monit       Date:  2020-10-09
  3 in total

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