Skip to main content
Top
Published in: Emergency Radiology 2/2017

01-04-2017 | Original Article

Efficacy of model-based iterative reconstruction technique in non-enhanced CT of the renal tracts for ureteric calculi

Authors: T. J. Tan, Kenneth K. Lau, Dana Jackson, Nicholas Ardley, Adina Borasu

Published in: Emergency Radiology | Issue 2/2017

Login to get access

Abstract

The purpose of this study was to assess the efficacy of model-based iterative reconstruction (MBIR), statistical iterative reconstruction (SIR), and filtered back projection (FBP) image reconstruction algorithms in the delineation of ureters and overall image quality on non-enhanced computed tomography of the renal tracts (NECT-KUB). This was a prospective study of 40 adult patients who underwent NECT-KUB for investigation of ureteric colic. Images were reconstructed using FBP, SIR, and MBIR techniques and individually and randomly assessed by two blinded radiologists. Parameters measured were overall image quality, presence of ureteric calculus, presence of hydronephrosis or hydroureters, image quality of each ureteric segment, total length of ureters unable to be visualized, attenuation values of image noise, and retroperitoneal fat content for each patient. There were no diagnostic discrepancies between image reconstruction modalities for urolithiasis. Overall image qualities and for each ureteric segment were superior using MBIR (67.5 % rated as ‘Good to Excellent’ vs. 25 % in SIR and 2.5 % in FBP). The lengths of non-visualized ureteric segments were shortest using MBIR (55.0 % measured ‘less than 5 cm’ vs. ASIR 33.8 % and FBP 10 %). MBIR was able to reduce overall image noise by up to 49.36 % over SIR and 71.02 % over FBP. MBIR technique improves overall image quality and visualization of ureters over FBP and SIR.
Literature
1.
go back to reference Bartoletti R, Cai T, Mondaini N, Melone F, Travaglini F, Carini M, Rizzo M (2007) Epidemiology and risk factors in urolithiasis. Urol Int 79(1):3–7CrossRefPubMed Bartoletti R, Cai T, Mondaini N, Melone F, Travaglini F, Carini M, Rizzo M (2007) Epidemiology and risk factors in urolithiasis. Urol Int 79(1):3–7CrossRefPubMed
2.
go back to reference Trinchieri A (1996) Epidemiology of urolithiasis. Arch Ital Urol Androl 68(4):203–249PubMed Trinchieri A (1996) Epidemiology of urolithiasis. Arch Ital Urol Androl 68(4):203–249PubMed
4.
go back to reference Boulay I, Holtz P, Foley WD, White B, Begun FP (1999) Ureteral calculi: diagnostic efficacy of helical CT and implications for treatment of patients. AJR 172:1485–1490CrossRefPubMed Boulay I, Holtz P, Foley WD, White B, Begun FP (1999) Ureteral calculi: diagnostic efficacy of helical CT and implications for treatment of patients. AJR 172:1485–1490CrossRefPubMed
5.
go back to reference Katz DS, Hines J, Rausch DR et al (1999) Unenhanced helical CT for suspected renal colic. AJR Am J Roentgenol 173(2):425–430CrossRefPubMed Katz DS, Hines J, Rausch DR et al (1999) Unenhanced helical CT for suspected renal colic. AJR Am J Roentgenol 173(2):425–430CrossRefPubMed
6.
go back to reference Liu W, Esler SJ, Kenny BJ, Goh RH, Rainbow AJ, Stevenson GW (2000) Low-dose nonenhanced helical CT of renal colic: assessment of ureteric stone detection and measurement of effective dose equivalent. Radiology 215(1):51–54CrossRefPubMed Liu W, Esler SJ, Kenny BJ, Goh RH, Rainbow AJ, Stevenson GW (2000) Low-dose nonenhanced helical CT of renal colic: assessment of ureteric stone detection and measurement of effective dose equivalent. Radiology 215(1):51–54CrossRefPubMed
7.
go back to reference Darylmple N et al (1998) The value of unenhanced helical computerized tomography in the management of acute flank pain. Clinical Urology 159(3):735–740CrossRef Darylmple N et al (1998) The value of unenhanced helical computerized tomography in the management of acute flank pain. Clinical Urology 159(3):735–740CrossRef
8.
go back to reference McNicholas MM, Raptopoulos VD, Schwartz RK et al (1998) Excretory phase CT urography for opacification of the urinary collecting system. AJR Am J Roentgenol 170:1261–1267CrossRefPubMed McNicholas MM, Raptopoulos VD, Schwartz RK et al (1998) Excretory phase CT urography for opacification of the urinary collecting system. AJR Am J Roentgenol 170:1261–1267CrossRefPubMed
9.
go back to reference McTavish JD, Jinzaki M, Zou KH, Nawfel RD, Silverman SG (2002) Multi-detector row CT urography: comparison of strategies for depicting the normal urinary collecting system. Radiology 225:783–790CrossRefPubMed McTavish JD, Jinzaki M, Zou KH, Nawfel RD, Silverman SG (2002) Multi-detector row CT urography: comparison of strategies for depicting the normal urinary collecting system. Radiology 225:783–790CrossRefPubMed
10.
go back to reference Singh S, Kalra MK, Hsieh J et al (2010) Abdominal CT: comparison of adaptive statistical iterative and filtered back projection reconstruction techniques. Radiology 257:373–383CrossRefPubMed Singh S, Kalra MK, Hsieh J et al (2010) Abdominal CT: comparison of adaptive statistical iterative and filtered back projection reconstruction techniques. Radiology 257:373–383CrossRefPubMed
11.
go back to reference Sagara Y, Hara AK, Pavlicek W et al (2010) Abdominal CT: comparison of lowdose CT with adaptive statistical iterative reconstruction and routine-dose CT with filtered back projection in 53 patients. AJR Am J Roentgenol 195:713–719CrossRefPubMed Sagara Y, Hara AK, Pavlicek W et al (2010) Abdominal CT: comparison of lowdose CT with adaptive statistical iterative reconstruction and routine-dose CT with filtered back projection in 53 patients. AJR Am J Roentgenol 195:713–719CrossRefPubMed
12.
go back to reference Mitsumori LM, Shuman WP, Busey JM et al (2011) Adaptive statistical iterative reconstruction versus filtered back projection in the same patient: 64 channel liver CT image quality and patient radiation dose. Eur Radiol 18 Mitsumori LM, Shuman WP, Busey JM et al (2011) Adaptive statistical iterative reconstruction versus filtered back projection in the same patient: 64 channel liver CT image quality and patient radiation dose. Eur Radiol 18
13.
go back to reference Marin D, Nelson RC, Schindera ST, et al. (2010) Low-tube-voltage, high-tube current multidetector abdominal CT: improved image quality and decreased radiation dose with adaptive statistical iterative reconstruction algorithm—initial clinical experience. Radiology Marin D, Nelson RC, Schindera ST, et al. (2010) Low-tube-voltage, high-tube current multidetector abdominal CT: improved image quality and decreased radiation dose with adaptive statistical iterative reconstruction algorithm—initial clinical experience. Radiology
14.
go back to reference Leipsic J, Labounty TM, Heilbron B, Min JK, Mancini GB, Lin FY, Taylor C, Dunning A, Earls JP (2010) Estimated radiation dose reduction using adaptive statistical iterative reconstruction in coronary CT angiography: the ERASIR study. AJR Am J Roentgenol 195(3):655–660CrossRefPubMed Leipsic J, Labounty TM, Heilbron B, Min JK, Mancini GB, Lin FY, Taylor C, Dunning A, Earls JP (2010) Estimated radiation dose reduction using adaptive statistical iterative reconstruction in coronary CT angiography: the ERASIR study. AJR Am J Roentgenol 195(3):655–660CrossRefPubMed
15.
go back to reference Hara AK, Paden RG, Silva AC, Kujak JL, Lawder HJ, Pavlicek W (2009) Iterative reconstruction technique for reducing body radiation dose at CT: feasibility study. AJR Am J Roentgenol 193(3):764–771CrossRefPubMed Hara AK, Paden RG, Silva AC, Kujak JL, Lawder HJ, Pavlicek W (2009) Iterative reconstruction technique for reducing body radiation dose at CT: feasibility study. AJR Am J Roentgenol 193(3):764–771CrossRefPubMed
16.
go back to reference Thibault JB, Sauer KD, Bouman CA, Hsieh J (2007) A three-dimensional statistical approach to improved image quality for multislice helical CT. Med Phys 34(11):4526–4544CrossRefPubMed Thibault JB, Sauer KD, Bouman CA, Hsieh J (2007) A three-dimensional statistical approach to improved image quality for multislice helical CT. Med Phys 34(11):4526–4544CrossRefPubMed
17.
go back to reference Pickhardt PJ, Lubner MG, Kim DH, Tang J, Ruma JA, del Rio AM, Chen G-H (2012) Abdominal CT with model-based iterative reconstruction (MBIR): initial results of a prospective trial comparing ultralow-dose with standard-dose imaging. AJR Am J Roentgenol 199(6):1266–1274CrossRefPubMedPubMedCentral Pickhardt PJ, Lubner MG, Kim DH, Tang J, Ruma JA, del Rio AM, Chen G-H (2012) Abdominal CT with model-based iterative reconstruction (MBIR): initial results of a prospective trial comparing ultralow-dose with standard-dose imaging. AJR Am J Roentgenol 199(6):1266–1274CrossRefPubMedPubMedCentral
18.
go back to reference Chang W, Lee JM, Lee K, Yoon J, Yu M, Han J, Choi B (2013) Assessment of a model-based, iterative reconstruction algorithm (MBIR) regarding image quality and dose reduction in liver computed tomography. Investig Radiol 48(8):598–606CrossRef Chang W, Lee JM, Lee K, Yoon J, Yu M, Han J, Choi B (2013) Assessment of a model-based, iterative reconstruction algorithm (MBIR) regarding image quality and dose reduction in liver computed tomography. Investig Radiol 48(8):598–606CrossRef
19.
go back to reference Baiyu Chen, Huiman Barnhart, Samuel Richard, Marthony Robins, James Colsher and Ehsan Samei. (2013) Volumetric quantification of lung nodules in CT with iterative reconstruction (ASiR and MBIR). Medical Physics; 40(11) Baiyu Chen, Huiman Barnhart, Samuel Richard, Marthony Robins, James Colsher and Ehsan Samei. (2013) Volumetric quantification of lung nodules in CT with iterative reconstruction (ASiR and MBIR). Medical Physics; 40(11)
20.
go back to reference Paul Butler, Adam Mitchell, Jeremiah C. Healy (2012) Applied radiological anatomy, 2nd ed Paul Butler, Adam Mitchell, Jeremiah C. Healy (2012) Applied radiological anatomy, 2nd ed
21.
go back to reference Brenner DJ, Hall EJ (2007) Computed tomography: an increasing source of radiation exposure. N Engl J Med 357:2277–2284CrossRefPubMed Brenner DJ, Hall EJ (2007) Computed tomography: an increasing source of radiation exposure. N Engl J Med 357:2277–2284CrossRefPubMed
22.
go back to reference Uppot R et al (2007) Impact of obesity on medical imaging and image-guided intervention. Am J Roentgenol 188(2):433–440CrossRef Uppot R et al (2007) Impact of obesity on medical imaging and image-guided intervention. Am J Roentgenol 188(2):433–440CrossRef
23.
go back to reference Dalrymple NC, Casford B, Raiken DP, Elsass KD, Pagan RA (2000) Pearls and pitfalls in the diagnosis of ureterolithiasis with unenhanced helical CT. Radiographics 20(2):439–447CrossRefPubMed Dalrymple NC, Casford B, Raiken DP, Elsass KD, Pagan RA (2000) Pearls and pitfalls in the diagnosis of ureterolithiasis with unenhanced helical CT. Radiographics 20(2):439–447CrossRefPubMed
Metadata
Title
Efficacy of model-based iterative reconstruction technique in non-enhanced CT of the renal tracts for ureteric calculi
Authors
T. J. Tan
Kenneth K. Lau
Dana Jackson
Nicholas Ardley
Adina Borasu
Publication date
01-04-2017
Publisher
Springer Berlin Heidelberg
Published in
Emergency Radiology / Issue 2/2017
Print ISSN: 1070-3004
Electronic ISSN: 1438-1435
DOI
https://doi.org/10.1007/s10140-016-1454-6

Other articles of this Issue 2/2017

Emergency Radiology 2/2017 Go to the issue