Literature DB >> 30980725

Cherenkov-excited luminescence scanned imaging using scanned beam differencing and iterative deconvolution in dynamic plan radiation delivery in a human breast phantom geometry.

Mengyu Jeremy Jia1, Petr Bruza1, Jacqueline M Andreozzi1, Lesley A Jarvis2, David J Gladstone1,3,2, Brian W Pogue1,3.   

Abstract

PURPOSE: The purpose of this study was to demonstrate high resolution optical luminescence sensing, referred to as Cherenkov excited luminescence scanning imaging (CELSI), could be achieved during a standard dynamic treatment plan for a whole breast radiotherapy geometry.
METHODS: The treatment plan beams induce Cherenkov light within tissue, and this excitation projects through the beam trajectory across the medium, inducing luminescence where there can be molecular reporter. Broad beams generally produce higher signal but low spatial resolution, yet for dynamic plans the scanning of the multileaf collimator allows for a beam-narrowing strategy by recursively temporal differencing each of the Cherenkov images and associated luminescence images. Then reconstruction from each of these size-reduced beamlets defined by the differenced Cherenkov images provides a well-conditioned matrix inversion, where the spatial frequencies are limited by the higher signal-to-noise ratio beamlets. A built-in stepwise convergence relies on stepwise beam size reduction, which is associated with a widening of the bandwidth of Cherenkov spatial frequency and resultant increase in spatial resolution. For the phantom experiments, europium nanoparticles were used as luminescent probes and embedded at depths ranging from 3 to 8 mm. An intensity modulated radiotherapy (IMRT) plan was used to test this.
RESULTS: The Cherenkov images spatially guided where the luminescence was measured from, providing high lateral resolution, and iterative reconstruction convergence showed that optimization of the initial and stopping beamlet widths could be achieved with 15 and 4.5 mm, respectively, using a luminescence imaging frame rate of 5/s. With the IMRT breast plan, the original lateral resolution was improved 2X, that is, 0.08-0.24 mm for target depths of 3-8 mm. In comparison, a dynamic wedge (DW) plan showed an inferior image fidelity, with relative contrast recovery decreasing from 0.86 to 0.79. The methodology was applied to a three-dimensional dataset to reconstruct Cherenkov excited luminescence intensity distributions showing volumetric recovery of a 0.5 mm diameter object composed of 0.5 μM luminescent microbeads.
CONCLUSIONS: High resolution CELSI was achieved with a clinical breast external beam radiotherapy (EBRT) plan. It is anticipated that this method can allow visualization and localization for luminescence/fluorescence tagged vasculature, lymph nodes, or superficial tagged regions with most dynamic treatment plans.
© 2019 American Association of Physicists in Medicine.

Entities:  

Keywords:  zzm321990EBRTzzm321990; zzm321990IMRTzzm321990; Cerenkov; Deconvolution; external beam radiotherapy; intensity modulated radiotherapy; molecular imaging; tomography

Mesh:

Year:  2019        PMID: 30980725      PMCID: PMC7189122          DOI: 10.1002/mp.13545

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  20 in total

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9.  A joint Richardson-Lucy deconvolution algorithm for the reconstruction of multifocal structured illumination microscopy data.

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10.  Maps of in vivo oxygen pressure with submillimetre resolution and nanomolar sensitivity enabled by Cherenkov-excited luminescence scanned imaging.

Authors:  Brian W Pogue; Jinchao Feng; Ethan P LaRochelle; Petr Bruža; Huiyun Lin; Rongxiao Zhang; Jennifer R Shell; Hamid Dehghani; Scott C Davis; Sergei A Vinogradov; David J Gladstone; Lesley A Jarvis
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1.  Tissue pO2 distributions in xenograft tumors dynamically imaged by Cherenkov-excited phosphorescence during fractionated radiation therapy.

Authors:  Xu Cao; Srinivasa Rao Allu; Shudong Jiang; Mengyu Jia; Jason R Gunn; Cuiping Yao; Ethan P LaRochelle; Jennifer R Shell; Petr Bruza; David J Gladstone; Lesley A Jarvis; Jie Tian; Sergei A Vinogradov; Brian W Pogue
Journal:  Nat Commun       Date:  2020-01-29       Impact factor: 14.919

2.  Review of in vivo optical molecular imaging and sensing from x-ray excitation.

Authors:  Brian W Pogue; Rongxiao Zhang; Xu Cao; Jeremy Mengyu Jia; Arthur Petusseau; Petr Bruza; Sergei A Vinogradov
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3.  Cerenkov luminescence imaging is an effective preclinical tool for assessing colorectal cancer PD-L1 levels in vivo.

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  3 in total

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