We propose to develop functional imaging and sensing system combining common-path Fourier-Domain OCT with oxymetry for assisting in neurosurgery. We plan to develop this technology to enhance the safety and efficacy of endoscopic neurosurgery, needle brain biopsies, and anatomical target localization. This subspecialty requires very precise and delicate manipulation of surgical tools through tight spaces with surrounding critical tissues. Therefore, there is high potential value with providing real time intra-operative imaging and oxymetry sensing information which indicates the location of critical anatomical structures such as normal brain-tumor interface, corticospinal tract, and blood vessels, both tumor derived and normal. In order to achieve this objective, the system will have endoscopic micro-optical-fiber sensor that can be fully integrated with existing neurosurgical tools and can measure tissue boundaries relative to surgical tools, blood oxygenation level of surrounding tissues, and identify blood vessels within the tissue volume. We will evaluate the performance of this system for neurosurgery using animal models and human cadaveric specimens. Our proposed approach is novel in several ways. First, this represents the first study of use of a common-path OCT to obtain endoscopic imaging of brain structures and pathological brain abnormalities (in vivo tumor model). Second, this is the first common-path endoscopic sensor integrated with neurosurgical tools in hopes of help guiding endoscopic tools and provides critical tissue avoidance. Third, we will provide first evaluation of the common-path OCT implemented surgical tool for neurosurgery applications.

Public Health Relevance

The proposed work is designed to address and enhance the safety associated with endoscopic neurosurgery by providing surgeons with real-time critical anatomical structure information during surgery.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Exploratory/Developmental Grants (R21)
Project #
1R21NS063131-01A1
Application #
7739834
Study Section
Special Emphasis Panel (ZRG1-SBIB-J (90))
Program Officer
Babcock, Debra J
Project Start
2009-07-16
Project End
2011-06-30
Budget Start
2009-07-16
Budget End
2010-06-30
Support Year
1
Fiscal Year
2009
Total Cost
$240,989
Indirect Cost
Name
Johns Hopkins University
Department
Engineering (All Types)
Type
Schools of Engineering
DUNS #
001910777
City
Baltimore
State
MD
Country
United States
Zip Code
21218
Wicks, Robert T; Huang, Yong; Zhang, Kang et al. (2014) Extravascular optical coherence tomography: evaluation of carotid atherosclerosis and pravastatin therapy. Stroke 45:1123-1130
Kang, Jin U; Huang, Yong; Zhang, Kang et al. (2012) Real-time three-dimensional Fourier-domain optical coherence tomography video image guided microsurgeries. J Biomed Opt 17:081403-1
Xu, Daguang; Vaswani, Namrata; Huang, Yong et al. (2012) Modified compressive sensing optical coherence tomography with noise reduction. Opt Lett 37:4209-11
Liu, Xuan; Kang, Jin U (2011) Sparse OCT: Optimizing compressed sensing in spectral domain optical coherence tomography. Proc SPIE Int Soc Opt Eng 7904:
Zhang, Kang; Kang, Jin U (2011) Common-path low-coherence interferometry fiber-optic sensor guided microincision. J Biomed Opt 16:095003
Liu, Xuan; Huang, Yong; Kang, Jin U (2011) Dark-field illuminated reflectance fiber bundle endoscopic microscope. J Biomed Opt 16:046003
Liu, Xuan; Balicki, Marcin; Taylor, Russell H et al. (2011) Automatic online spectral calibration of Fourier-domain OCT for robotic surgery. Proc SPIE Int Soc Opt Eng 7890:
Liu, Xuan; Balicki, Marcin; Taylor, Russell H et al. (2010) Towards automatic calibration of Fourier-Domain OCT for robot-assisted vitreoretinal surgery. Opt Express 18:24331-43
Zhang, Kang; Kang, Jin U (2010) Real-time 4D signal processing and visualization using graphics processing unit on a regular nonlinear-k Fourier-domain OCT system. Opt Express 18:11772-84
Han, Jae-Ho; Lee, Junghoon; Kang, Jin U (2010) Pixelation effect removal from fiber bundle probe based optical coherence tomography imaging. Opt Express 18:7427-39

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