Literature DB >> 34352805

High-Pitch Photon-Counting Detector Computed Tomography Angiography of the Aorta: Intraindividual Comparison to Energy-Integrating Detector Computed Tomography at Equal Radiation Dose.

André Euler1, Kai Higashigaito1, Victor Mergen1, Thomas Sartoretti, Bettina Zanini1, Bernhard Schmidt2, Thomas G Flohr2, Stefan Ulzheimer2, Matthias Eberhard1, Hatem Alkadhi1.   

Abstract

PURPOSE: The aims of this study were to determine the objective and subjective image quality of high-pitch computed tomography (CT) angiography of the aorta in clinical dual-source photon-counting detector CT (PCD-CT) and to compare the image quality to conventional dual-source energy-integrating detector CT (EID-CT) in the same patients at equal radiation dose.
MATERIALS AND METHODS: Patients with prior CT angiography of the thoracoabdominal aorta acquired on third-generation dual-source EID-CT in the high-pitch mode and with automatic tube voltage selection (ATVS, reference tube voltage 100 kV) were included. Follow-up imaging was performed on a first-generation, clinical dual-source PCD-CT scanner in the high-pitch and multienergy (QuantumPlus) mode at 120 kV using the same contrast media protocol as with EID-CT. Radiation doses between scans were matched by adapting the tube current of PCD-CT. Polychromatic images for both EID-CT and PCD-CT (called T3D) and virtual monoenergetic images at 40, 45, 50, and 55 keV for PCD-CT were reconstructed. Computed tomography attenuation was measured in the aorta; noise was defined as the standard deviation of attenuation; contrast-to-noise ratio (CNR) was calculated. Subjective image quality (noise, vessel attenuation, vessel sharpness, and overall quality) was rated by 2 blinded, independent radiologists.
RESULTS: Forty patients were included (mean age, 63 years; 8 women; mean body mass index [BMI], 26 kg/m2). There was no significant difference in BMI, effective diameter, or radiation dose between scans (all P's > 0.05). The ATVS in EID-CT selected 70, 80, 90, 100, 110, and 120 kV in 2, 14, 14, 7, 2, and 1 patients, respectively. Mean CNR was 17 ± 8 for EID-CT and 22 ± 7, 20 ± 6, 18 ± 5, 16 ± 5, and 12 ± 4 for PCD-CT at 40, 45, 50, 55 keV, and T3D, respectively. Contrast-to-noise ratio was significantly higher for 40 and 45 keV of PCD-CT as compared with EID-CT (both P's < 0.05). The linear regression model (adjusted R2, 0.38; P < 0.001) revealed that PCD-CT reconstruction (P < 0.001), BMI group (P = 0.007), and kV of the EID-CT scan (P = 0.01) were significantly associated with CNR difference, with an increase by 34% with PCD-CT for overweight as compared with normal weight patients. Subjective image quality reading revealed slight differences between readers for subjective vessel attenuation and sharpness, whereas subjective noise was rated significantly higher for 40 and 45 keV (P < 0.001) and overall quality similar (P > 0.05) between scans.
CONCLUSIONS: High-pitch PCD-CT angiography of the aorta with VMI at 40 and 45 keV resulted in significantly increased CNR compared with EID-CT with ATVS at matched radiation dose. The CNR gain of PCD-CT increased in overweight patients. Taking into account the subjective analysis, VMI at 45 to 50 keV is proposed as the best trade-off between objective and subjective image quality.
Copyright © 2021 Wolters Kluwer Health, Inc. All rights reserved.

Entities:  

Mesh:

Year:  2022        PMID: 34352805     DOI: 10.1097/RLI.0000000000000816

Source DB:  PubMed          Journal:  Invest Radiol        ISSN: 0020-9996            Impact factor:   6.016


  11 in total

1.  Ultra-high-resolution imaging of the shoulder and pelvis using photon-counting-detector CT: a feasibility study in patients.

Authors:  Francis I Baffour; Kishore Rajendran; Katrina N Glazebrook; Jamison E Thorne; Nicholas B Larson; Shuai Leng; Cynthia H McCollough; Joel G Fletcher
Journal:  Eur Radiol       Date:  2022-06-11       Impact factor: 7.034

2.  Photon Counting CT Angiography of the Head and Neck: Image Quality Assessment of Polyenergetic and Virtual Monoenergetic Reconstructions.

Authors:  Arwed Elias Michael; Jan Boriesosdick; Denise Schoenbeck; Ingo Lopez-Schmidt; Jan Robert Kroeger; Christoph Moenninghoff; Sebastian Horstmeier; Lenhard Pennig; Jan Borggrefe; Julius Henning Niehoff
Journal:  Diagnostics (Basel)       Date:  2022-05-24

Review 3.  An introduction to photon-counting detector CT (PCD CT) for radiologists.

Authors:  Yuko Nakamura; Toru Higaki; Shota Kondo; Ikuo Kawashita; Isao Takahashi; Kazuo Awai
Journal:  Jpn J Radiol       Date:  2022-10-18       Impact factor: 2.701

4.  Optimal Conspicuity of Liver Metastases in Virtual Monochromatic Imaging Reconstructions on a Novel Photon-Counting Detector CT-Effect of keV Settings and BMI.

Authors:  Stefanie Bette; Josua A Decker; Franziska M Braun; Judith Becker; Mark Haerting; Thomas Haeckel; Michael Gebhard; Franka Risch; Piotr Woźnicki; Christian Scheurig-Muenkler; Thomas J Kroencke; Florian Schwarz
Journal:  Diagnostics (Basel)       Date:  2022-05-14

5.  Quantum Iterative Reconstruction for Low-Dose Ultra-High-Resolution Photon-Counting Detector CT of the Lung.

Authors:  Thomas Sartoretti; Damien Racine; Victor Mergen; Lisa Jungblut; Pascal Monnin; Thomas G Flohr; Katharina Martini; Thomas Frauenfelder; Hatem Alkadhi; André Euler
Journal:  Diagnostics (Basel)       Date:  2022-02-18

6.  Photon-Counting Detector CT-Based Vascular Calcium Removal Algorithm: Assessment Using a Cardiac Motion Phantom.

Authors:  Thomas Allmendinger; Tristan Nowak; Thomas Flohr; Ernst Klotz; Junia Hagenauer; Hatem Alkadhi; Bernhard Schmidt
Journal:  Invest Radiol       Date:  2022-01-13       Impact factor: 10.065

7.  Assessment of Iodine Contrast-To-Noise Ratio in Virtual Monoenergetic Images Reconstructed from Dual-Source Energy-Integrating CT and Photon-Counting CT Data.

Authors:  Ronald Booij; Niels R van der Werf; Marcel L Dijkshoorn; Aad van der Lugt; Marcel van Straten
Journal:  Diagnostics (Basel)       Date:  2022-06-14

8.  First in-human quantitative plaque characterization with ultra-high resolution coronary photon-counting CT angiography.

Authors:  Victor Mergen; Matthias Eberhard; Robert Manka; André Euler; Hatem Alkadhi
Journal:  Front Cardiovasc Med       Date:  2022-09-06

9.  Virtual Non-Contrast Reconstructions of Photon-Counting Detector CT Angiography Datasets as Substitutes for True Non-Contrast Acquisitions in Patients after EVAR-Performance of a Novel Calcium-Preserving Reconstruction Algorithm.

Authors:  Josua A Decker; Stefanie Bette; Christian Scheurig-Muenkler; Bertram Jehs; Franka Risch; Piotr Woźnicki; Franziska M Braun; Mark Haerting; Claudia Wollny; Thomas J Kroencke; Florian Schwarz
Journal:  Diagnostics (Basel)       Date:  2022-02-22

10.  Extracellular Volume Quantification With Cardiac Late Enhancement Scanning Using Dual-Source Photon-Counting Detector CT.

Authors:  Victor Mergen; Thomas Sartoretti; Ernst Klotz; Bernhard Schmidt; Lisa Jungblut; Kai Higashigaito; Robert Manka; André Euler; Markus Kasel; Matthias Eberhard; Hatem Alkadhi
Journal:  Invest Radiol       Date:  2022-01-21       Impact factor: 10.065

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.