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Proceedings Paper

Non-invasive intraoperative optical coherence tomography of the resection cavity during surgery of intrinsic brain tumors
Author(s): A. Giese; H. J. Böhringer; J. Leppert; S. R. Kantelhardt; E. Lankenau; P. Koch; R. Birngruber; G. Hüttmann
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Paper Abstract

Optical coherence tomography (OCT) is a non-invasive imaging technique with a micrometer resolution. It allows non-contact / non-invasive analysis of central nervous system tissues with a penetration depth of 1-3,5 mm reaching a spatial resolution of approximately 4-15 μm. We have adapted spectral-domain OCT (SD-OCT) and time-domain OCT (TD-OCT) for intraoperative detection of residual tumor during brain tumor surgery. Human brain tumor tissue and areas of the resection cavity were analyzed during the resection of gliomas using this new technology. The site of analysis was registered using a neuronavigation system and biopsies were taken and submitted to routine histology. We have used post image acquisition processing to compensate for movements of the brain and to realign A-scan images for calculation of a light attenuation factor. OCT imaging of normal cortex and white matter showed a typical light attenuation profile. Tumor tissue depending on the cellularity of the specimen showed a loss of the normal light attenuation profile resulting in altered light attenuation coefficients compared to normal brain. Based on this parameter and the microstructure of the tumor tissue, which was entirely absent in normal tissue, OCT analysis allowed the discrimination of normal brain tissue, invaded brain, solid tumor tissue, and necrosis. Following macroscopically complete resections OCT analysis of the resection cavity displayed the typical microstructure and light attenuation profile of tumor tissue in some specimens, which in routine histology contained microscopic residual tumor tissue. We have demonstrated that this technology may be applied to the intraoperative detection of residual tumor during resection of human gliomas.

Paper Details

Date Published: 22 February 2006
PDF: 8 pages
Proc. SPIE 6078, Photonic Therapeutics and Diagnostics II, 60782Z (22 February 2006); doi: 10.1117/12.674436
Show Author Affiliations
A. Giese, Univ. Hospital of Schleswig-Holstein (Germany)
H. J. Böhringer, Univ. Hospital of Schleswig-Holstein (Germany)
J. Leppert, Univ. Hospital of Schleswig-Holstein (Germany)
S. R. Kantelhardt, Univ. Hospital of Schleswig-Holstein (Germany)
E. Lankenau, Medical Laser Ctr. (Germany)
Univ. Luebeck (Germany)
P. Koch, Medical Laser Ctr. (Germany)
Univ. Luebeck (Germany)
R. Birngruber, Medical Laser Ctr. (Germany)
Univ. Luebeck (Germany)
G. Hüttmann, Medical Laser Ctr. (Germany)
Univ. Luebeck (Germany)

Published in SPIE Proceedings Vol. 6078:
Photonic Therapeutics and Diagnostics II
Kenton W. Gregory; Nikiforos Kollias; Reza S. Malek; Michael D. Lucroy; Henry Hirschberg; Brian Jet-Fei Wong; Eugene A. Trowers; Werner T.W. de Riese; Justus F. R. Ilgner; Steen J. Madsen; Lloyd P. Tate; Haishan Zeng; Guillermo J. Tearney; Bernard Choi, Editor(s)

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