Literature DB >> 29131773

Update on Cardiovascular Applications of Multienergy CT.

Kevin Kalisz1, Sandra Halliburton1, Suhny Abbara1, Jonathon A Leipsic1, Moritz H Albrecht1, U Joseph Schoepf1, Prabhakar Rajiah1.   

Abstract

Advances in scanner technology enabling shorter scan times, improvements in spatial and temporal resolution, and more dose-efficient data reconstruction coupled with rapidly growing evidence from clinical trials have established computed tomography (CT) as an important imaging modality in the evaluation of cardiovascular disorders. Multienergy (or spectral or dual-energy) CT is a relatively recent advance in which attenuation data from different energies are used to characterize materials beyond what is possible at conventional CT. Current technologies for multienergy CT are either source based (ie, dual source, rapid kilovoltage switching, dual spin, and split beam) or detector based (ie, dual layer and photon counting), and material-based decomposition occurs in either image or projection space. In addition to conventional diagnostic images, multienergy CT provides image sets such as iodine maps, virtual nonenhanced, effective atomic number, and virtual monoenergy (VM) images as well as data at the elemental level (CT fingerprinting), which can complement and in some areas overcome the limitations posed by conventional CT methods. In myocardial perfusion imaging, iodine maps improve the sensitivity of perfusion defects, and VM images improve the specificity by decreasing artifacts. Iodine maps are also useful in improving the performance of CT in delayed-enhancement imaging. In pulmonary perfusion imaging, iodine maps enhance the sensitivity of detection of both acute and chronic pulmonary emboli. Low-energy (as measured in kiloelectron volts) VM images allow enhancement of vascular contrast, which can either be used to lower contrast dose or salvage a suboptimal contrast-enhanced study. High-energy VM images can be used to decrease or eliminate artifacts such as beam-hardening and metallic artifacts. Virtual nonenhanced images have similar attenuation as true nonenhanced images and help in reducing radiation dose by eliminating the need for the latter in multiphasic vascular studies. Other potential applications of multienergy CT include calcium scoring from virtual nonenhanced images created from coronary CT angiograms and myocardial iron quantification. Online supplemental material is available for this article. ©RSNA, 2017.

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Year:  2017        PMID: 29131773     DOI: 10.1148/rg.2017170100

Source DB:  PubMed          Journal:  Radiographics        ISSN: 0271-5333            Impact factor:   5.333


  15 in total

Review 1.  State of the art: utility of multi-energy CT in the evaluation of pulmonary vasculature.

Authors:  Prabhakar Rajiah; Yuki Tanabe; Sasan Partovi; Alastair Moore
Journal:  Int J Cardiovasc Imaging       Date:  2019-05-02       Impact factor: 2.357

2.  Initial exploration of coronary stent image subtraction using dual-layer spectral CT.

Authors:  Le Qin; ShengJia Gu; ChiHua Chen; Huan Zhang; ZhenBin Zhu; XingBiao Chen; Qun Han; FuHua Yan; WenJie Yang
Journal:  Eur Radiol       Date:  2019-01-21       Impact factor: 5.315

3.  Clinical feasibility of using effective atomic number maps derived from non-contrast spectral computed tomography to identify non-calcified atherosclerotic plaques: a preliminary study.

Authors:  Wenping Chen; Ran Li; Kejie Yin; Jing Liang; Hui Li; Xingbiao Chen; Zhihong Sheng; Hongming Yu; Dan Mu
Journal:  Quant Imaging Med Surg       Date:  2022-04

4.  Quantitative assessment of motion effects in dual-source dual-energy CT and dual-source photon-counting detector CT.

Authors:  Zaki Ahmed; Kishore Rajendran; Hao Gong; Cynthia McCollough; Shuai Leng
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2022-04-04

Review 5.  [Beyond Coronary CT Angiography: CT Fractional Flow Reserve and Perfusion].

Authors:  Moon Young Kim; Dong Hyun Yang; Ki Seok Choo; Whal Lee
Journal:  Taehan Yongsang Uihakhoe Chi       Date:  2022-01-21

Review 6.  Overview of spontaneous intraabdominal tumor hemorrhage: etiologies, imaging findings, and management.

Authors:  Kevin Kalisz; Michael Enzerra; Bahar Mansoori
Journal:  Abdom Radiol (NY)       Date:  2020-07-20

7.  Dual-Energy CT Images: Pearls and Pitfalls.

Authors:  Anushri Parakh; Simon Lennartz; Chansik An; Prabhakar Rajiah; Benjamin M Yeh; Frank J Simeone; Dushyant V Sahani; Avinash R Kambadakone
Journal:  Radiographics       Date:  2021 Jan-Feb       Impact factor: 5.333

Review 8.  Assessment of Left Ventricular Myocardial Diseases with Cardiac Computed Tomography.

Authors:  Sung Min Ko; Tae Hoon Kim; Eun Ju Chun; Jin Young Kim; Sung Ho Hwang
Journal:  Korean J Radiol       Date:  2019-03       Impact factor: 3.500

9.  In vitro optimization and comparison of CT angiography versus radial cardiovascular magnetic resonance for the quantification of cross-sectional areas and coronary endothelial function.

Authors:  Jérôme Yerly; Fabio Becce; Ruud B van Heeswijk; Francis R Verdun; Danilo Gubian; Reto Meuli; Matthias Stuber
Journal:  J Cardiovasc Magn Reson       Date:  2019-02-07       Impact factor: 5.364

Review 10.  Computed tomographic evaluation of myocardial ischemia.

Authors:  Yuki Tanabe; Akira Kurata; Takuya Matsuda; Kazuki Yoshida; Dhiraj Baruah; Teruhito Kido; Teruhito Mochizuki; Prabhakar Rajiah
Journal:  Jpn J Radiol       Date:  2020-02-05       Impact factor: 2.374

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