Dose development in sinonasal imaging over the last decade – a retrospective patient study

Fokkens WJ, Lund VJ, Hopkins C, Hellings PW, Kern R, Reitsma S, et al. European position paper on Rhinosinusitis and nasal polyps 2020. Rhinology. 2020;58:1–464.

Article  PubMed  Google Scholar 

Younis RT, Anand VK, Davidson B. The role of computed tomography and magnetic resonance imaging in patients with Sinusitis with Complications. Laryngoscope. 2002;112:224–9.

Article  PubMed  Google Scholar 

O’Brien WT, Hamelin S, Weitzel EK. The preoperative sinus CT: avoiding a “CLOSE” call with Surgical Complications. Radiology. 2016;281:10–21.

Article  PubMed  Google Scholar 

Truong TA. Initial Assessment and evaluation of traumatic facial injuries. Semin Plast Surg. 2017;31:69–72.

Article  PubMed  PubMed Central  Google Scholar 

Schegerer AA, Nagel H-D, Stamm G, Adam G, Brix G. Current CT practice in Germany: results and implications of a nationwide survey. Eur J Radiol. 2017;90:114–28.

Article  PubMed  Google Scholar 

Smith-Bindman R, Kwan ML, Marlow EC, Theis MK, Bolch W, Cheng SY, et al. Trends in Use of Medical Imaging in US Health Care Systems and in Ontario, Canada, 2000–2016. JAMA. 2019;322:843.

Article  PubMed  PubMed Central  Google Scholar 

Yuan M-K, Tsai D-C, Chang S-C, Yuan M-C, Chang S-J, Chen H-W, et al. The risk of Cataract Associated with repeated Head and Neck CT Studies: a Nationwide Population-Based study. Am J Roentgenol. 2013;201:626–30.

Article  Google Scholar 

Booij R, Budde RPJ, Dijkshoorn ML, van Straten M. Technological developments of X-ray computed tomography over half a century: user’s influence on protocol optimization. Eur J Radiol. 2020;131:109261.

Article  PubMed  Google Scholar 

Willemink MJ, Noël PB. The evolution of image reconstruction for CT—from filtered back projection to artificial intelligence. Eur Radiol European Radiology. 2019;29:2185–95.

Article  PubMed  Google Scholar 

Raman SP, Johnson PT, Deshmukh S, Mahesh M, Grant KL, Fishman EK. CT dose reduction applications: available tools on the latest generation of CT scanners. J Am Coll Radiol. 2013;10:37–41.

Article  PubMed  Google Scholar 

Grant K, Flohr T. Iterative Reconstruction in Image Space (IRIS). 2010. https://www.static.healthcare.siemens.com/. p. Accessed 12 Nov 2019.

Grant K, Raupach RSAFIRE. Sinogram Affirmed Iterative Reconstruction. 2012. https://cdn0.scrvt.com/39b415fb07de4d9656c7b516d8e2d907/1800000000306520/d80046026fd1/ct_SAFIRE_White_Paper_1800000000306520.pdf. p. Assessed 12 Nov 2019.

Ramirez-Giraldo JC, Grant KL, Raupach R. ADMIRE: Advanced Modeled Iterative Reconstruction. 2018. https://cdn0.scrvt.com/39b415fb07de4d9656c7b516d8e2d907/1800000005678345/c5bb3dd343ed/CT_Whitepaper_ADMIRE_1800000005678345.pdf. p. Assessed 12 Nov 2019.

Messerli M, Kluckert T, Knitel M, Wälti S, Desbiolles L, Rengier F, et al. Ultralow dose CT for pulmonary nodule detection with chest x-ray equivalent dose – a prospective intra-individual comparative study. Eur Radiol. 2017;27:3290–9.

Article  PubMed  Google Scholar 

Weis M, Henzler T, Nance JW, Haubenreisser H, Meyer M, Sudarski S, et al. Radiation dose comparison between 70 kVp and 100 kVp with spectral beam shaping for non-contrast-enhanced pediatric chest computed tomography. Invest Radiol. 2017;52:155–62.

Article  PubMed  Google Scholar 

May MS, Brand M, Lell MM, Sedlmair M, Allmendinger T, Uder M, et al. Radiation dose reduction in parasinus CT by spectral shaping. Neuroradiology. 2017;59:169–76.

Article  PubMed  Google Scholar 

Wuest W, May M, Saake M, Brand M, Uder M, Lell M. Low-dose CT of the Paranasal Sinuses: minimizing X-Ray exposure with spectral shaping. Eur Radiol. 2016;26:4155–61.

Article  PubMed  Google Scholar 

Lell MM, May MS, Brand M, Eller A, Buder T, Hofmann E, et al. Imaging the Parasinus Region with a third-generation dual-source CT and the Effect of Tin Filtration on Image Quality and Radiation Dose. Am J Neuroradiol. 2015;36:1225–30.

Article  CAS  PubMed  PubMed Central  Google Scholar 

Schüle S, Strobel JRB, Lorenz KJ, Beer M, Hackenbroch C. Tin filter compared to low kV protocols - optimizing sinonasal imaging in computed tomography. PLoS ONE. 2023;18:e0279907.

Article  PubMed  PubMed Central  Google Scholar 

Petritsch B, Kosmala A, Weng AM, Bley TA. Tin-filtered 100 kV ultra-low-dose CT of the paranasal sinus: initial clinical results. PLoS ONE. 2019;14:1–10.

Article  Google Scholar 

Han M, Kim HJ, Choi JW, Park DY, Han JG. Diagnostic usefulness of cone-beam computed tomography versus multi-detector computed tomography for sinonasal structure evaluation. Laryngoscope Investig Otolaryngol. 2022;7:662–70.

Article  PubMed  PubMed Central  Google Scholar 

Al Abduwani J, ZilinSkiene L, Colley S, Ahmed S. Cone beam CT paranasal sinuses versus standard multidetector and low dose multidetector CT studies. Am J Otolaryngol. 2016;37:59–64.

Article  PubMed  Google Scholar 

Hofmann E, Schmid M, Sedlmair M, Banckwitz R, Hirschfelder U, Lell M. Comparative study of image quality and radiation dose of cone beam and low-dose multislice computed tomography - an in-vitro investigation. Clin Oral Investig. 2014;18:301–11.

Article  PubMed  Google Scholar 

Veldhoen S, Schöllchen M, Hanken H, Precht C, Henes FO, Schön G, et al. Performance of cone-beam computed tomography and multidetector computed tomography in diagnostic imaging of the midface: a comparative study on Phantom and cadaver head scans. Eur Radiol. 2017;27:790–800.

Article  PubMed  Google Scholar 

Hagiwara M, Policeni B, Juliano AF, Agarwal M, Burns J, Dubey P, et al. ACR appropriateness Criteria® Sinonasal Disease: 2021 update. J Am Coll Radiol. 2022;19:175–93.

Article  Google Scholar 

Ulzheimer S, Freund J. The Stellar Detector (White Paper). 2013. https://sgcimages.s3.amazonaws.com/SiemensOutsert_TheStellarDetector_ITN0913.pdf. p. Assessed 21 Feb 2023.

Schulz B, Beeres M, Bodelle B, Bauer R, Al-Butmeh F, Thalhammer A, et al. Performance of iterative image reconstruction in CT of the paranasal sinuses: a phantom study. Am J Neuroradiol. 2013;34:1072–6.

Article  CAS  PubMed  PubMed Central  Google Scholar 

Bang M, Choi SH, Park J, Kang BS, Kwon WJ, Lee TH, et al. Radiation Dose reduction in Paranasal Sinus CT. Otolaryngol Neck Surg. 2016;155:982–7.

Article  Google Scholar 

Hoxworth JM, Lal D, Fletcher GP, Patel AC, He M, Paden RG, et al. Radiation dose reduction in paranasal sinus CT using model-based iterative reconstruction. Am J Neuroradiol. 2014;35:644–9.

Article  CAS  PubMed  PubMed Central  Google Scholar 

Veit R, Guggenberger R, Noßke D, Brix G. Diagnostic reference levels for X-ray examinations: Update 2010. Radiologe. 2010;50:907–12.

Article  CAS  PubMed  Google Scholar 

Schegerer A, Loose R, Heuser LJ, Brix G, Schegerer A. Diagnostic Reference Levels for Diagnostic and Interventional X-Ray Procedures in Germany: Update and Handling Diagnostische Referenzwerte für diagnostische und interventionelle Röntgenanwendungen in Deutschland: Aktualisierung und Handhabung. Diagnostic Ref Levels? Fortschr Röntgenstr. 2019;191:739–51

Bundesamt für Strahlenschutz (BfS). Bekanntmachung der aktualisierten diagnostischen Referenzwerte für diagnostische und interventionelle Röntgenanwendungen. 2022. https://www.bfs.de/SharedDocs/Downloads/BfS/DE/fachinfo/ion/drw-roentgen.pdf?__blob=publicationFile&v=11. p. Assessed 21 Feb 2023.

Kanal KM, Butler PF, Sengupta D, Bhargavan-Chatfield M, Coombs LP, Morin RL. U.S. diagnostic reference levels and achievable doses for 10 adult CT examinations. Radiology. 2017;284:120–33.

Article  PubMed  Google Scholar 

American College of Radiology. PRACTICE PARAMETER FOR DIAGNOSTIC REFERENCE LEVELS AND ACHIEVABLE DOSES IN MEDICAL X-RAY IMAGING. 2018. https://www.acr.org/-/media/ACR/Files/Practice-Parameters/diag-ref-levels.pdf. p. Assessed 21 Feb 2023.

UK Health Security Agengy. National Diagnostic Reference Levels (NDRLs) from 13 October 2022. 2022. https://www.gov.uk/government/publications/diagnostic-radiology-national-diagnostic-reference-levels-ndrls/ndrl#fn:1. p. Assessed 21 Feb 2023.

Lorenzen M, Wedegärtner U, Weber C, Lockemann U, Adam G, Lorenzen J. Dosisoptimierung der mehrzeilen-spiral-CT (MSCT) des mittelgesichts. RoFo Fortschr auf dem Gebiet der Rontgenstrahlen und der Bildgeb Verfahren. 2005;177:265–71.

Article  CAS  Google Scholar 

Wedegärtner U, Thurmann H, Schmidt R, Adam G. Strahlenexposition bei der mehrschicht-spiral-CT (MSCT) von kopf, mittelgesicht und beckenskelett: Vergleich mit dem einzeilen-spiral-CT (SSCT). RoFo Fortschritte auf dem Gebiet der Rontgenstrahlen und der Bildgeb Verfahren. 2003;175:234–8.

Langner S. Optimized imaging of the midface and orbits. Laryngorhinootologie. 2015;94(Suppl 1):248–71.

Google Scholar 

Grunz JP, Petritsch B, Luetkens KS, Kunz AS, Lennartz S, Ergün S, et al. Ultra-Low-Dose Photon-Counting CT imaging of the Paranasal Sinus with Tin Prefiltration: how low can we go? Invest Radiol. 2022;57:728–33.

Article  CAS  PubMed  Google Scholar 

Rajendran K, Voss BA, Zhou W, Tao S, Delone DR, Lane JI, et al. Dose reduction for sinus and temporal bone imaging using photon-counting detector CT with an additional tin Filter. Invest Radiol. 2020;55:91–100.

Article  PubMed  PubMed Central  Google Scholar 

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