Intraoperative cone-beam CT spatial priors for diffuse optical fluorescence tomography

被引:2
|
作者
Daly, M. J. [1 ,2 ]
Chan, H. [2 ]
Muhanna, N. [2 ,3 ,4 ]
Akens, M. K. [2 ,5 ,6 ]
Wilson, B. C. [2 ,6 ,7 ]
Irish, J. C. [1 ,2 ,3 ,8 ]
Jaffray, D. A. [1 ,2 ,6 ,7 ,9 ]
机构
[1] Univ Toronto, Inst Med Sci, Toronto, ON, Canada
[2] Univ Hlth Network, TECHNA Inst, Toronto, ON, Canada
[3] Univ Toronto, Dept Otolaryngol Head & Neck Surg, Toronto, ON, Canada
[4] Tel Aviv Univ, Tel Aviv Sourasky Med Ctr, Dept Otolaryngol Head & Neck & Maxillofacial Surg, Tel Aviv, Israel
[5] Univ Toronto, Dept Surg, Toronto, ON, Canada
[6] Univ Toronto, Dept Med Biophys, Toronto, ON, Canada
[7] Univ Hlth Network, Princess Margaret Canc Ctr, Toronto, ON, Canada
[8] Univ Hlth Network, Dept Surg Oncol, Toronto, ON, Canada
[9] Univ Hlth Network, Dept Med Phys, Toronto, ON, Canada
来源
PHYSICS IN MEDICINE AND BIOLOGY | 2019年 / 64卷 / 21期
基金
加拿大健康研究院;
关键词
fluorescence-guided surgery; diffuse optical tomography; surgical navigation; cone-beam CT; spatial priors; IMAGE-GUIDED INTERVENTIONS; NEAR-INFRARED TOMOGRAPHY; COMPUTED-TOMOGRAPHY; IN-VIVO; MOLECULAR TOMOGRAPHY; BREAST-CANCER; NECK-SURGERY; GUIDANCE; REAL; ARM;
D O I
10.1088/1361-6560/ab4917
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A hybrid system for intraoperative cone-beam CT (CBCT) imaging and continuous-wave fluorescence tomography (FT) has been developed using an image-guidance framework. Intraoperative CBCT images with sub-millimeter spatial resolution are acquired with a flat-panel C-Arm. Tetrahedral meshes are generated from CBCT for finite element method implementation of diffuse optical tomography (NIRFAST). Structural data from CBCT is incorporated directly into the optical reconstruction process using Laplacian-type regularization ('soft spatial priors'). Experiments were performed using an in-house optical system designed for indocyanine green (ICG) fluorescence. A dynamic non-contact geometry was achieved using a stereoscopic optical tracker for real-time localization of a laser diode and CCD camera. Source and detector positions were projected onto the boundary elements of the tissue mesh using algorithms for ray-triangle intersection and camera lens calibration. Simulation studies showed the capabilities of a soft-prior approach, even in the presence of segmentation uncertainties. Experiments with ICG targets embedded in liquid phantoms determined the improvements in the quantification of the fluorophore yield, with errors of 85% and <20% for no priors and spatial priors, respectively. Similar results were observed with the ICG target embedded in ex vivo porcine loin, with errors of 52% and 12%, respectively. A proof-of-principal animal study was performed in a VX2-tumor in vivo rabbit model using liposomal nanoparticles co-encapsulating contrast for CT (iohexol) and fluorescence (ICG) imaging. Fusion of CBCT and FT reconstructions demonstrated concurrent anatomical and functional delineations of contrast enhancement around the periphery of the buccal tumor. These developments motivate future clinical translation of the FT system into an ongoing CBCT-guided head and neck surgery trial.
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Improving the spatial resolution characteristics of dedicated cone-beam breast CT technology
    Gazi, Peymon
    Boone, John M.
    MEDICAL IMAGING 2014: PHYSICS OF MEDICAL IMAGING, 2014, 9033
  • [22] Cone-beam CT dose and imaging performance evaluation with a modular, multipurpose phantom
    Siewerdsen, J. H.
    Uneri, A.
    Hernandez, A. M.
    Burkett, G. W.
    Boone, J. M.
    MEDICAL PHYSICS, 2020, 47 (02) : 467 - 479
  • [23] Intraoperative Use of Cone-Beam Computed Tomography in the Treatment of Atlantoaxial Rotatory Subluxation
    Maes, Honorine
    Janssen, Alexander
    De Muynck, Stijn
    Vantomme, Nikolaas
    WORLD NEUROSURGERY, 2020, 140 : 76 - 78
  • [24] Intraoperative verification of resection margins of maxillary malignancies by cone-beam computed tomography
    Ivashchenko, O.
    Pouw, B.
    de Witt, J. K.
    Koudounarakis, E.
    Nijkamp, J.
    van Veen, R. L. P.
    Ruers, T. J. M.
    Karakullukcu, B. M.
    BRITISH JOURNAL OF ORAL & MAXILLOFACIAL SURGERY, 2019, 57 (02): : 174 - 181
  • [25] Radiation Dose From Cone-Beam CT in Neuroradiology Applications
    Berris, Theocharis
    Gupta, Rajiv
    Rehani, Madan M.
    AMERICAN JOURNAL OF ROENTGENOLOGY, 2013, 200 (04) : 755 - 761
  • [26] Cone-beam CT reconstruction for planar object
    Liu, Tong
    NDT & E INTERNATIONAL, 2012, 45 (01) : 9 - 15
  • [27] A motion-compensated cone-beam CT using electrical impedance tomography imaging
    Pengpan, T.
    Smith, N. D.
    Qiu, W.
    Yao, A.
    Mitchell, C. N.
    Soleimani, M.
    PHYSIOLOGICAL MEASUREMENT, 2011, 32 (01) : 19 - 34
  • [28] Can real-time RGBD enhance intraoperative Cone-Beam CT?
    Javad Fotouhi
    Bernhard Fuerst
    Wolfgang Wein
    Nassir Navab
    International Journal of Computer Assisted Radiology and Surgery, 2017, 12 : 1211 - 1219
  • [29] Can real-time RGBD enhance intraoperative Cone-Beam CT?
    Fotouhi, Javad
    Fuerst, Bernhard
    Wein, Wolfgang
    Navab, Nassir
    INTERNATIONAL JOURNAL OF COMPUTER ASSISTED RADIOLOGY AND SURGERY, 2017, 12 (07) : 1211 - 1219
  • [30] Intraoperative CT and cone-beam CT imaging for minimally invasive evacuation of spontaneous intracerebral hemorrhage
    Nils Hecht
    Marcus Czabanka
    Paul Kendlbacher
    Julia-Helene Raff
    Georg Bohner
    Peter Vajkoczy
    Acta Neurochirurgica, 2020, 162 : 3167 - 3177