A look into the use of Raman spectroscopy for brain and breast cancer diagnostics: linear and non-linear optics in cancer research as a gateway to tumor cell identity

被引:33
作者
Abramczyk, Halina [1 ]
Brozek-Pluska, Beata [1 ]
Jarota, Arkadiusz [1 ]
Surmacki, Jakub [1 ]
Imiela, Anna [1 ]
Kopec, Monika [1 ]
机构
[1] Lodz Univ Technol, Lab Laser Mol Spect, Wroblewskiego 15 Str, PL-93590 Lodz, Poland
关键词
Cancer diagnostics by using Raman spectroscopy and imaging; virtual histopathology; Raman biopsy; Raman; guided; in; vivo surgery; linear and non-linear optics; RETINOIC ACID RECEPTORS; ANTITUMOR IMIDAZOTETRAZINES; MECHANICAL-PROPERTIES; PHASE-TRANSITIONS; PRIMARY EVENTS; MICROSCOPY; TEMOZOLOMIDE; MICROSPECTROSCOPY; GLIOBLASTOMA; SUPPRESSOR;
D O I
10.1080/14737159.2020.1724092
中图分类号
R36 [病理学];
学科分类号
100104 ;
摘要
Introduction: Currently, intensely developing of linear and non-linear optical methods for cancer detection provides a valuable tool to improve sensitivity and specificity. One of the main reasons for insufficient progress in cancer diagnostics is related to the fact that most cancer types are not only heterogeneous in their genetic composition but also reside in varying microenvironments and interact with different cell types. Until now, no technology has been fully proven for effective detecting of invasive cancer, which infiltrating the extracellular matrix. Areas covered: This review investigates the current status of Raman spectroscopy and Raman imaging for brain and breast cancer diagnostics. Moreover, the review provides a comprehensive overview of the applicability of atomic force microscopy (AFM), linear and non-linear optics in cancer research as a gateway to tumor cell identity. Expert commentary: A combination of linear and non-linear optics, particularly Raman-driven methods, has many additional advantages to identify alterations in cancer cells that are crucial for their proliferation and that distinguish them from normal cells.
引用
收藏
页码:99 / 115
页数:17
相关论文
共 106 条
[11]   The role of lipid droplets and adipocytes in cancer. Raman imaging of cell cultures: MCF10A, MCF7, and MDA-MB-231 compared to adipocytes in cancerous human breast tissue [J].
Abramczyk, Halina ;
Surmacki, Jakub ;
Kopec, Monika ;
Olejnik, Alicja Klaudia ;
Lubecka-Pietruszewska, Katarzyna ;
Fabianowska-Majewska, Krystyna .
ANALYST, 2015, 140 (07) :2224-2235
[12]   Raman Imaging in Biochemical and Biomedical Applications. Diagnosis and Treatment of Breast Cancer [J].
Abramczyk, Halina ;
Brozek-Pluska, Beata .
CHEMICAL REVIEWS, 2013, 113 (08) :5766-5781
[13]   Ultrafast Dynamics of Metal Complexes of Tetrasulfonated Phthalocyanines at Biological Interfaces: Comparison between Photochemistry in Solutions, Films, and Noncancerous and Cancerous Human Breast Tissues [J].
Abramczyk, Halina ;
Brozek-Pluska, Beata ;
Tondusson, Marc ;
Freysz, Eric .
JOURNAL OF PHYSICAL CHEMISTRY C, 2013, 117 (10) :4999-5013
[14]   Raman 'optical biopsy' of human breast cancer [J].
Abramczyk, Halina ;
Brozek-Pluska, Beata ;
Surmacki, Jakub ;
Jablonska-Gajewicz, Joanna ;
Kordek, Radzislaw .
PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 2012, 108 (1-2) :74-81
[15]   The label-free Raman imaging of human breast cancer [J].
Abramczyk, Halina ;
Brozek-Pluska, Beata ;
Surmacki, Jakub ;
Jablonska, Joanna ;
Kordek, Radzislaw .
JOURNAL OF MOLECULAR LIQUIDS, 2011, 164 (1-2) :123-131
[16]   EMP3, a myelin-related gene located in the critical 19q13.3 region, is epigenetically silenced and exhibits features of a candidate tumor suppressor in glioma and neuroblastoma [J].
Alaminos, M ;
Dávalos, V ;
Ropero, S ;
Setién, F ;
Paz, MF ;
Herranz, M ;
Fraga, MF ;
Mora, J ;
Cheung, NKV ;
Gerald, WL ;
Esteller, M .
CANCER RESEARCH, 2005, 65 (07) :2565-2571
[17]   Proteomics, Post-translational Modifications, and Integrative Analyses Reveal Molecular Heterogeneity within Medulloblastoma Subgroups [J].
Archer, Tenley C. ;
Ehrenberger, Tobias ;
Mundt, Filip ;
Gold, Maxwell P. ;
Krug, Karsten ;
Mah, Clarence K. ;
Mahoney, Elizabeth L. ;
Daniel, Colin J. ;
LeNail, Alexander ;
Ramamoorthy, Divya ;
Mertins, Philipp ;
Mani, D. R. ;
Zhang, Hailei ;
Gillette, Michael A. ;
Clauser, Karl ;
Noble, Michael ;
Tang, Lauren C. ;
Pierre-Francois, Jessica ;
Silterra, Jacob ;
Jensen, James ;
Tamayo, Pablo ;
Korshunov, Andrey ;
Pfister, Stefan M. ;
Kool, Marcel ;
Northcott, Paul A. ;
Sears, Rosalie C. ;
Lipton, Jonathan O. ;
Carr, Steven A. ;
Mesirov, Jill P. ;
Pomeroy, Scott L. ;
Fraenkel, Ernest .
CANCER CELL, 2018, 34 (03) :396-+
[18]   The blood-brain barrier and blood-tumour barrier in brain tumours and metastases [J].
Arvanitis, Costas D. ;
Ferraro, Gino B. ;
Jain, Rakesh K. .
NATURE REVIEWS CANCER, 2020, 20 (01) :26-41
[19]   Clinical applications of infrared and Raman spectroscopy: state of play and future challenges [J].
Baker, Matthew J. ;
Byrne, Hugh J. ;
Chalmers, John ;
Gardner, Peter ;
Goodacre, Royston ;
Henderson, Alex ;
Kazarian, Sergei G. ;
Martin, Francis L. ;
Moger, Julian ;
Stone, Nick ;
Sule-Suso, Josep .
ANALYST, 2018, 143 (08) :1735-1757
[20]   Nanoscopy in a Living Mouse Brain [J].
Berning, Sebastian ;
Willig, Katrin I. ;
Steffens, Heinz ;
Dibaj, Payam ;
Hell, Stefan W. .
SCIENCE, 2012, 335 (6068) :551-551