» Articles » PMID: 33332626

Technical Note: KV-independent Coronary Calcium Scoring: A Phantom Evaluation of Score Accuracy and Potential Radiation Dose Reduction

Overview
Journal Med Phys
Specialty Biophysics
Date 2020 Dec 17
PMID 33332626
Citations 6
Authors
Affiliations
Soon will be listed here.
Abstract

Purpose: To determine the accuracy of CT number and calcium score of a kV-independent technique based on an artificial 120 kV reconstruction, and its potential to reduce radiation dose.

Methods: Anthropomorphic chest phantoms were scanned on a third-generation dual-source CT system equipped with the artificial 120 kV reconstruction. First, a phantom module containing a 20-mm diameter hydroxyapatite (HA) insert was scanned inside the chest phantoms at different tube potentials (70-140 kV) to evaluate calcium CT number accuracy. Next, three small HA inserts (diameter/length = 5 mm) were inserted into a pork steak and scanned inside the phantoms to evaluate calcium score accuracy at different kVs. Finally, the same setup was scanned using automatic exposure control (AEC) at 120 kV, and then with automatic kV selection (auto-kV). Phantoms were also scanned at 120 kV using a size-dependent mA chart. CT numbers of soft tissue and calcium were measured from different kV images. Calcium score of each small HA insert was measured using commercial software.

Results: The CT number difference from 120 kV was small with tube potentials from 90 to 140 kV for both soft tissue and calcium (maximal difference of 4/5 HU, respectively). Consistent calcium scores were obtained from images of different kVs compared to 120 kV, with a relative difference <8%. Auto-kV provided a 25-34% dose reduction compared to AEC alone.

Conclusion: A kV-independent calcium scoring technique can produce artificial 120 kV images with consistent soft tissue and calcium CT numbers compared to standard 120 kV examinations. When coupled with auto-kV, this technique can reduce radiation by 25-34% compared to that with AEC alone, while providing consistent calcium scores as that of standard 120 kV examinations.

Citing Articles

Feasibility analysis of non-electrocardiogram-triggered chest low-dose computed tomography using a kV-independent reconstruction algorithm for predicting cardiovascular disease risk in patients receiving maintenance hemodialysis.

Wang X, Liu A, Zhao Y, Yu X, Cao Y, Li M BMC Cardiovasc Disord. 2025; 25(1):48.

PMID: 39849362 PMC: 11759427. DOI: 10.1186/s12872-025-04499-w.


Intraindividual Comparison of Dose Reduction and Coronary Calcium Scoring Accuracy Using Kilovolt-independent and Tin Filtration CT Protocols.

Zook S, Tayal B, Kragholm K, Abdelkarim O, Tran D, Cocker M Radiol Cardiothorac Imaging. 2024; 6(3):e230246.

PMID: 38934769 PMC: 11211948. DOI: 10.1148/ryct.230246.


Radiation Dose Reduction for Coronary Artery Calcium Scoring Using a Virtual Noniodine Algorithm on Photon-Counting Detector Computed-Tomography Phantom Data.

Fink N, Zsarnoczay E, Schoepf U, ODoherty J, Griffith 3rd J, Pinos D Diagnostics (Basel). 2023; 13(9).

PMID: 37174932 PMC: 10177425. DOI: 10.3390/diagnostics13091540.


Radiation dose optimization for photon-counting CT coronary artery calcium scoring for different patient sizes: a dynamic phantom study.

Dobrolinska M, van der Werf N, van der Bie J, de Groen J, Dijkshoorn M, Booij R Eur Radiol. 2023; 33(7):4668-4675.

PMID: 36729174 PMC: 10290002. DOI: 10.1007/s00330-023-09434-1.


Standardization and Quantitative Imaging With Photon-Counting Detector CT.

McCollough C, Rajendran K, Leng S Invest Radiol. 2023; 58(7):451-458.

PMID: 36728452 PMC: 10272018. DOI: 10.1097/RLI.0000000000000948.


References
1.
Fareed A, Vavere A, Zimmermann E, Tanami Y, Steveson C, Matheson M . Impact of iterative reconstruction vs. filtered back projection on image quality in 320-slice CT coronary angiography: Insights from the CORE320 multicenter study. Medicine (Baltimore). 2018; 96(48):e8452. PMC: 5728730. DOI: 10.1097/MD.0000000000008452. View

2.
Geyer L, Schoepf U, Meinel F, Nance Jr J, Bastarrika G, Leipsic J . State of the Art: Iterative CT Reconstruction Techniques. Radiology. 2015; 276(2):339-57. DOI: 10.1148/radiol.2015132766. View

3.
Gebhard C, Fiechter M, Fuchs T, Ghadri J, Herzog B, Kuhn F . Coronary artery calcium scoring: Influence of adaptive statistical iterative reconstruction using 64-MDCT. Int J Cardiol. 2012; 167(6):2932-7. DOI: 10.1016/j.ijcard.2012.08.003. View

4.
Vingiani V, Abadia A, Schoepf U, Fischer A, Varga-Szemes A, Sahbaee P . Individualized coronary calcium scoring at any tube voltage using a kV-independent reconstruction algorithm. Eur Radiol. 2020; 30(11):5834-5840. DOI: 10.1007/s00330-020-06951-1. View

5.
Blaha M, Mortensen M, Kianoush S, Tota-Maharaj R, Cainzos-Achirica M . Coronary Artery Calcium Scoring: Is It Time for a Change in Methodology?. JACC Cardiovasc Imaging. 2017; 10(8):923-937. DOI: 10.1016/j.jcmg.2017.05.007. View