Quantitative Bioluminescence Tomography-guided System for Conformal Irradiation In Vivo
Xiangkun Xu, Zijian Deng, Hamid Dehghani, Iulian Iordachita, Michael, Lim, John W. Wong, Ken Kang-Hsin Wang

TL;DR
This paper introduces a quantitative bioluminescence tomography system that accurately localizes soft tissue targets in vivo, guiding conformal radiotherapy with improved tumor coverage and reduced uncertainty, especially in low-contrast environments.
Contribution
The study develops a novel QBLT system with spectral derivative imaging and margin design, enhancing target localization accuracy and guiding effective conformal radiotherapy in vivo.
Findings
Localization accuracy <1mm for GBM targets.
Tumor coverage increased from 75% to 98% with added margin.
QBLT-guided RT irradiates 99.4% of GTV, outperforming conventional methods.
Abstract
Although cone-beam CT (CBCT) has been used to guide irradiation for pre-clinical radiotherapy(RT) research, it is limited to localize soft tissue target especially in a low imaging contrast environment. Knowledge of target shape is a fundamental need for RT. Without such information to guide radiation, normal tissue can be irradiated unnecessarily, leading to experimental uncertainties. Recognition of this need led us to develop quantitative bioluminescence tomography (QBLT), which provides strong imaging contrast to localize optical targets. We demonstrated its capability of guiding conformal RT using an orthotopic bioluminescent glioblastoma (GBM) model. With multi-projection and multi-spectral bioluminescence imaging and a novel spectral derivative method, our QBLT system is able to reconstruct GBM with localization accuracy <1mm. An optimal threshold was determined to delineate QBLT…
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Taxonomy
TopicsPhotoacoustic and Ultrasonic Imaging · Advanced Radiotherapy Techniques · Optical Imaging and Spectroscopy Techniques
