Characterization of brain tumor tissue by time-resolved, phase-sensitive optical coherence elastography at 3.2 MHz line rate

被引:0
|
作者
Burhan, Sazgar [1 ]
Detrez, Nicolas [2 ]
Rewerts, Katharina [1 ]
Goeb, Madita [1 ]
Hagel, Christian [3 ]
Bonsanto, Matteo Mario [4 ]
Theisen-Kunde, Dirk [2 ]
Huber, Robert [2 ]
Brinkmann, Ralf [1 ,2 ]
机构
[1] Univ Lubeck, Inst Biomed Opt, Peter Monnik Weg 4, D-23562 Lubeck, Germany
[2] Med Laserzentrum Lubeck GmbH, Peter Monnik Weg 4, D-23562 Lubeck, Germany
[3] Univ Klinikum Hamburg Eppendorf, Inst Neuropathol, Martinistr 52, D-20251 Hamburg, Germany
[4] Univ Klinikum Schleswig Holstein, Klin Neurochirurg, Campus Lubeck,Ratzeburger Allee 160, D-23562 Lubeck, Germany
关键词
Optical Coherence Tomography; Optical Coherence Elastography; Phase-sensitive OCT; Fourier Domain Mode Locking; Brain tumor; Phase Unwrapping; Tissue Characterization; Biomechanics;
D O I
暂无
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Optical coherence elastography (OCE) offers the possibility of obtaining the mechanical behavior of a tissue. When also using a non-contact mechanical excitation, it mimics palpation without interobserver variability. One of the most frequently used techniques is phase- sensitive OCE. Depending on the system, depth-resolved changes in the sub- mu m to nm range can be detected and visualized volumetrically. Such an approach is used in this work to investigate and detect transitions between healthy and tumorous brain tissue as well as inhomogeneities in the tumor itself to assist the operating surgeon during tumor resection in the future. We present time-resolved, phase-sensitive OCE measurements on various ex vivo brain tumor samples using an ultra-fast 3.2 MHz swept-source optical coherence tomography (SS- OCT) system with a frame rate of 2.45 kHz. 4 mm line scans are acquired which, in combination with the high imaging speed, allow monitoring and investigation of the sample's behavior in response to the mechanical load. Therefore, an air-jet system applies a 200 ms short air pulse to the sample, whose non-contact property facilitates the possibility for future in vivo measurements. Since we can temporally resolve the response of the sample over the entire acquisition time, the mechanical properties are evaluated at different time points with depth resolution. This is done by unwrapping the phase data and performing subsequent assessment. Systematic ex vivo brain tumor measurements were conducted and visualized as distribution maps. The study outcomes are supported by histological analyses and examined in detail.
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页数:6
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