Literature DB >> 22025733

Imaging of ventilation with dual-energy CT during breath hold after single vital-capacity inspiration of stable xenon.

Norinari Honda1, Hisato Osada, Wataru Watanabe, Mitsuo Nakayama, Keiichiro Nishimura, Bernhard Krauss, Katharina Otani.   

Abstract

PURPOSE: To assess single-breath-hold technique for ventilation mapping by using dual-energy computed tomography (CT) in phantom experiments and volunteers.
MATERIALS AND METHODS: Institutional review board approved this study, and written informed consent was obtained from all volunteers. A rubber bag filled with a mixture of xenon (0%-35.4%) and oxygen was scanned with dual-source dual-energy CT (80 kV and 140 kV with tin [Sn] filter [Sn/140 kV] and 100 kV and Sn/140 kV). A cylinder containing six tubes of identical sizes with different apertures was ventilated once with a mixture of 35% xenon and 65% oxygen and was scanned in dual-energy mode (80 kV and Sn/140 kV). Xenon-enhanced images were derived by using three-material decomposition technique. Four volunteers were scanned twice in dual-energy mode (80 kV and Sn/140 kV) during breath hold after a single vital-capacity inspiration of air (nonenhanced) and of 35% xenon. Xenon-enhanced images were obtained by using two methods: three-material decomposition and subtraction of nonenhanced from xenon-enhanced images. Regression analysis with t and F tests was applied to the data of the rubber bag scans, with the significance level set at .05.
RESULTS: Mean pixel values of gas in the bag were linearly related to xenon concentration for all x-ray tube voltages (r(2) = 1.00, P < .00001). Pixel values of the xenon-enhanced images of the tubes were related to their aperture size. Nearly homogeneous (coefficient of variation: 0.22, 0.23, and 0.34) pixel values were found in the lungs of healthy volunteers, with higher pixel values in the trachea and lower pixel values in the bullae. Xenon-enhanced images calculated by using three-material decomposition had better image quality on visual comparison than those calculated by using subtraction.
CONCLUSION: Xenon-enhanced dual-energy CT with the single-breath-hold technique could depict ventilation in phantoms and in four volunteers. © RSNA, 2011.

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Year:  2011        PMID: 22025733     DOI: 10.1148/radiol.11110569

Source DB:  PubMed          Journal:  Radiology        ISSN: 0033-8419            Impact factor:   11.105


  15 in total

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Authors:  Hyun Woo Goo
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3.  Prediction of postoperative pulmonary function: preliminary comparison of single-breath dual-energy xenon CT with three conventional methods.

Authors:  Hisami Yanagita; Norinari Honda; Mitsuo Nakayama; Wataru Watanabe; Yuji Shimizu; Hisato Osada; Kei Nakada; Takemichi Okada; Hitoshi Ohno; Takeo Takahashi; Katharina Otani
Journal:  Jpn J Radiol       Date:  2013-04-02       Impact factor: 2.374

4.  Assessment of regional emphysema, air-trapping and Xenon-ventilation using dual-energy computed tomography in chronic obstructive pulmonary disease patients.

Authors:  Sang Min Lee; Joon Beom Seo; Hye Jeon Hwang; Namkug Kim; Sang Young Oh; Jae Seung Lee; Sei Won Lee; Yeon-Mok Oh; Tae Hoon Kim
Journal:  Eur Radiol       Date:  2016-11-23       Impact factor: 5.315

5.  Ventilation/Perfusion Relationships and Gas Exchange: Measurement Approaches.

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Journal:  Compr Physiol       Date:  2020-07-08       Impact factor: 9.090

6.  Systems for lung volume standardization during static and dynamic MDCT-based quantitative assessment of pulmonary structure and function.

Authors:  Matthew K Fuld; Randall W Grout; Junfeng Guo; John H Morgan; Eric A Hoffman
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7.  VMAT Planning With Xe-CT Functional Images Enables Radiotherapy Planning With Consideration of Lung Function.

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Review 8.  X-ray-computed tomography contrast agents.

Authors:  Hrvoje Lusic; Mark W Grinstaff
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9.  Pulmonary ventilation imaging based on 4-dimensional computed tomography: comparison with pulmonary function tests and SPECT ventilation images.

Authors:  Tokihiro Yamamoto; Sven Kabus; Cristian Lorenz; Erik Mittra; Julian C Hong; Melody Chung; Neville Eclov; Jacqueline To; Maximilian Diehn; Billy W Loo; Paul J Keall
Journal:  Int J Radiat Oncol Biol Phys       Date:  2014-08-04       Impact factor: 7.038

10.  Optimization of dual-energy xenon-computed tomography for quantitative assessment of regional pulmonary ventilation.

Authors:  Matthew K Fuld; Ahmed F Halaweish; John D Newell; Bernhard Krauss; Eric A Hoffman
Journal:  Invest Radiol       Date:  2013-09       Impact factor: 6.016

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