Literature DB >> 21716501

Multispectral Cerenkov luminescence tomography for small animal optical imaging.

Antonello E Spinelli1, Chaincy Kuo, Brad W Rice, Riccardo Calandrino, Pasquina Marzola, Andrea Sbarbati, Federico Boschi.   

Abstract

Quite recently Cerenkov luminescence imaging (CLI) has been introduced as a novel pre-clinical imaging for the in vivo imaging of small animals such as mice. The CLI method is based on the detection of Cerenkov radiation (CR) generated by beta particles as they travel into the animal tissues with an energy such that Cerenkov emission condition is satisfied. This paper describes an image reconstruction method called multi spectral diffuse Cerenkov luminescence tomography (msCLT) in order to obtain 3D images from the detection of CR. The multispectral approach is based on a set of 2D planar images acquired using a number of narrow bandpass filters, and the distinctive information content at each wavelength is used in the 3D image reconstruction process. The proposed msCLT method was tested both in vitro and in vivo using 32P-ATP and all the images were acquired by using the IVIS 200 small animal optical imager (Caliper Life Sciences, Alameda USA). Source depth estimation and spatial resolution measurements were performed using a small capillary source placed between several slices of chicken breast. The theoretical Cerenkov emission spectrum and optical properties of chicken breast were used in the modelling of photon propagation. In vivo imaging was performed by injecting control nude mice with 10 MBq of 32P-ATP and the 3D tracer bio-distribution was reconstructed. Whole body MRI was acquired to provide an anatomical localization of the Cerenkov emission. The spatial resolution obtained from the msCLT reconstructed images of the capillary source showed that the FWHM is about 1.5 mm for a 6 mm depth. Co-registered MRI images showed that the Cerenkov emission regions matches fairly well with anatomical regions, such as the brain, heart and abdomen. Ex vivo imaging of the different organs such as intestine, brain, heart and ribs further confirms these findings. We conclude that in vivo 3D bio-distribution of a pure beta-minus emitting radiopharmaceutical such as 32P-ATP can be obtained using the msCLT reconstruction approach.

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Year:  2011        PMID: 21716501     DOI: 10.1364/OE.19.012605

Source DB:  PubMed          Journal:  Opt Express        ISSN: 1094-4087            Impact factor:   3.894


  35 in total

1.  Review of biomedical Čerenkov luminescence imaging applications.

Authors:  Kaveh Tanha; Ali Mahmoud Pashazadeh; Brian W Pogue
Journal:  Biomed Opt Express       Date:  2015-07-28       Impact factor: 3.732

Review 2.  Innovations in Nuclear Imaging Instrumentation: Cerenkov Imaging.

Authors:  Ryo Tamura; Edwin C Pratt; Jan Grimm
Journal:  Semin Nucl Med       Date:  2018-03-16       Impact factor: 4.446

3.  Cherenkov luminescence imaging in transparent media and the imaging of thin or shallow sources.

Authors:  Sergey Komarov; Dong Zhou; Yongjian Liu; Yuan-Chuan Tai
Journal:  J Biomed Opt       Date:  2015-03       Impact factor: 3.170

4.  Enhanced Cerenkov luminescence tomography analysis based on Y2O3:Eu3+ rare earth oxide nanoparticles.

Authors:  Yongheng Gao; Xiaowei Ma; Fei Kang; Weidong Yang; Yi Liu; Zhengjie Wang; Wenhui Ma; Zhe Wang; Guoquan Li; Xu Cao; Jing Wang
Journal:  Biomed Opt Express       Date:  2018-11-08       Impact factor: 3.732

5.  Cerenkov imaging - a new modality for molecular imaging.

Authors:  Daniel Lj Thorek; Robbie Robertson; Wassifa A Bacchus; Jaeseung Hahn; Julie Rothberg; Bradley J Beattie; Jan Grimm
Journal:  Am J Nucl Med Mol Imaging       Date:  2012-03-28

6.  Probability method for Cerenkov luminescence tomography based on conformance error minimization.

Authors:  Xintao Ding; Kun Wang; Biao Jie; Yonglong Luo; Zhenhua Hu; Jie Tian
Journal:  Biomed Opt Express       Date:  2014-06-09       Impact factor: 3.732

7.  Cherenkov excited phosphorescence-based pO2 estimation during multi-beam radiation therapy: phantom and simulation studies.

Authors:  Robert W Holt; Rongxiao Zhang; Tatiana V Esipova; Sergei A Vinogradov; Adam K Glaser; David J Gladstone; Brian W Pogue
Journal:  Phys Med Biol       Date:  2014-08-22       Impact factor: 3.609

Review 8.  Systematic imaging in medicine: a comprehensive review.

Authors:  Kai Zhang; Yujie Sun; Shuang Wu; Min Zhou; Xiaohui Zhang; Rui Zhou; Tingting Zhang; Yuanxue Gao; Ting Chen; Yao Chen; Xin Yao; Yasuyoshi Watanabe; Mei Tian; Hong Zhang
Journal:  Eur J Nucl Med Mol Imaging       Date:  2020-11-19       Impact factor: 9.236

9.  Intraoperative imaging of tumors using Cerenkov luminescence endoscopy: a feasibility experimental study.

Authors:  Hongguang Liu; Colin M Carpenter; Han Jiang; Guillem Pratx; Conroy Sun; Michael P Buchin; Sanjiv S Gambhir; Lei Xing; Zhen Cheng
Journal:  J Nucl Med       Date:  2012-08-17       Impact factor: 10.057

10.  MARS: a mouse atlas registration system based on a planar x-ray projector and an optical camera.

Authors:  Hongkai Wang; David B Stout; Richard Taschereau; Zheng Gu; Nam T Vu; David L Prout; Arion F Chatziioannou
Journal:  Phys Med Biol       Date:  2012-09-12       Impact factor: 3.609

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