gms | German Medical Science

66. Jahrestagung der Deutschen Gesellschaft für Neurochirurgie (DGNC)
Friendship Meeting mit der Italienischen Gesellschaft für Neurochirurgie (SINch)

Deutsche Gesellschaft für Neurochirurgie (DGNC) e. V.

7. - 10. Juni 2015, Karlsruhe

Neuromodal: A new concept for classification and characterization of brain tumors by multimodal optical spectroscopy

Meeting Abstract

  • Rainer Ritz - Klinik für Neurochirurgie, Universitätsklinikum Marburg
  • Susan Noell - Klinik für Neurochirurgie, Universitätsklinikum Tübingen
  • Edwin Ostertag - Prozessanalytik und Technologie, Hochschule Reutlingen
  • Anita Lorenz - Prozessanalytik und Technologie, Hochschule Reutlingen
  • Jörg Bartsch - Klinik für Neurochirurgie, Universitätsklinikum Marburg
  • Frank Duffner - Klinik für Neurochirurgie, Universitätsklinikum Tübingen

Deutsche Gesellschaft für Neurochirurgie. 66. Jahrestagung der Deutschen Gesellschaft für Neurochirurgie (DGNC). Karlsruhe, 07.-10.06.2015. Düsseldorf: German Medical Science GMS Publishing House; 2015. DocP 076

doi: 10.3205/15dgnc474, urn:nbn:de:0183-15dgnc4747

Veröffentlicht: 2. Juni 2015

© 2015 Ritz et al.
Dieser Artikel ist ein Open-Access-Artikel und steht unter den Lizenzbedingungen der Creative Commons Attribution 4.0 License (Namensnennung). Lizenz-Angaben siehe http://creativecommons.org/licenses/by/4.0/.


Gliederung

Text

Objective: Tumor specific characteristics of tissue like cell density, pleomorphism, mitosis and necrosis are tightly linked with the chemistry and morphology and can be studied with methods of optical spectroscopy (like fluorescence-, absorption- and vibrational spectroscopy). In an in vitro study financed by the Baden-Württemberg Stiftung, we proved the concept that the new developed method is able to distinguish and characterize gliomas of different WHO grades.

Method: With the help of a reasonable composed set of reference samples, different marker-free spectroscopic methods were tested for their suitability to classify tumors. The sample sets were analyzed with the help of UV/VIS-, Raman, light scattering and autofluorescence spectroscopy to determine the leading optical markers to be used for a characterization according to their WHO grade. To extract the important information out of the spectra, a principal component analysis (PCA) was applied. Tumor classification was performed by linear discrimination analysis and correlated to the histological classification according to the WHO grading.

Results: Tumor grades can be detected by combined spectroscopic methods in fixated cross sections of glioma tissue. Different methods are complementary. UV/VIS- and light scattering spectroscopy (dark field) supplement each other with their complementary information of chemistry and morphology. Infrared- and Raman spectroscopy are also generally suitable, but should be seen as a backup technology due to their longer measurement times and the much higher costs, as long the tumor typification in a larger sample set can't be achieved using only UV/VIS and light scattering spectroscopy. Two dimensional autofluorescence spectroscopy also appears to be promising.

Conclusions: The integration of spectroscopic characterization methods can be used to speed up and to increase the validation of the pathological findings ex situ. Added to an imaging platform, multimodal optical spectroscopy can be a promising approach to characterize tumor in situ and distinguish it from normal tissue.