Technique de réalisation d’un examen tomodensitométrique hépatique
Tài liệu tham khảo
Lautt, 2009
Foley, 2000, Multiphase hepatic CT with a multirow detector CT scanner, AJR Am J Roentgenol, 175, 679, 10.2214/ajr.175.3.1750679
Fleischmann, 2009, Optimal vascular and parenchymal contrast enhancement: the current state of the art, Radiol Clin North Am, 47, 13, 10.1016/j.rcl.2008.10.009
Brink, 2003, Contrast optimization and scan timing for single and multidetector-row computed tomography, J Comput Assist Tomogr, 27, 10.1097/00004728-200305001-00003
Ji, 2001, Hepatic imaging with multidetector CT, RadioGraphics, 21, S71, 10.1148/radiographics.21.suppl_1.g01oc04s71
Kagawa, 2013, Optimal scan timing of hepatic arterial-phase imaging of hypervascular hepatocellular carcinoma determined by multiphasic fast CT imaging technique, Acta Radiol, 54, 843, 10.1177/0284185113485571
Bae, 2010, Intravenous contrast medium administration and scan timing at CT: considerations and approaches, Radiology, 256, 32, 10.1148/radiol.10090908
Lim, 2002, Detection of hepatocellular carcinoma: value of adding delayed phase imaging to dual-phase helical CT, Am J Roentgenol, 179, 67, 10.2214/ajr.179.1.1790067
Klotz, 2013, Hepatic haemangioma: common and uncommon imaging features, Diagn Interv Imaging, 94, 849, 10.1016/j.diii.2013.04.008
Yanaga, 2007, Optimal dose and injection duration (injection rate) of contrast material for depiction of hypervascular hepatocellular carcinomas by multidetector CT, Radiat Med, 25, 278, 10.1007/s11604-007-0138-2
Heiken, 1995, Dynamic incremental CT: effect of volume and concentration of contrast material and patient weight on hepatic enhancement, Radiology, 195, 353, 10.1148/radiology.195.2.7724752
Chan, 2011, Optimising the scan delay for arterial phase imaging of the liver using the bolus tracking technique, Biomed Imaging Interv J, 7
Yamaguchi, 2011, Optimizing scan timing of hepatic arterial phase by physiologic pharmacokinetic analysis in bolus-tracking technique by multi-detector row computed tomography, Radiol Phys Technol, 4, 43, 10.1007/s12194-010-0105-y
Kondo, 2008, Abdominal multidetector CT in patients with varying body fat percentages: estimation of optimal contrast material dose, Radiology, 249, 872, 10.1148/radiol.2492080033
Awai, 2016, The optimal body size index with which to determine iodine dose for hepatic dynamic CT: a prospective multicenter study, Radiology, 278, 773, 10.1148/radiol.2015142941
Svensson, 2014, Automatic individualized contrast medium dosage during hepatic computed tomography by using computed tomography dose index volume (CTDI(vol)), Eur Radiol, 24, 1959, 10.1007/s00330-014-3220-z
Marin, 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, 254, 145, 10.1148/radiol.09090094
Aschoff, 2017, Low radiation dose in computed tomography: the role of iodine, Br J Radiol, 90, 20170079, 10.1259/bjr.20170079
Seyal, 2015, CT of the abdomen with reduced tube voltage in adults: a practical approach, Radiogr Rev Publ Radiol Soc N Am Inc, 35, 1922
Nakaura, 2015, Low contrast dose protocol involving a 100 kVp tube voltage for hypervascular hepatocellular carcinoma in patients with renal dysfunction, Jpn J Radiol, 33, 566, 10.1007/s11604-015-0457-7
Noda, 2015, Reducing iodine load in hepatic CT for patients with chronic liver disease with a combination of low-tube-voltage and adaptive statistical iterative reconstruction, Eur J Radiol, 84, 11, 10.1016/j.ejrad.2014.10.008
Kanematsu, 2015, Low-iodine-load and low-tube-voltage CT angiographic imaging of the kidney by using bolus tracking with saline flushing, Radiology, 275, 832, 10.1148/radiol.14141457
Noda, 2014, Reduction of iodine load in CT imaging of pancreas acquired with low tube voltage and an adaptive statistical iterative reconstruction technique, J Comput Assist Tomogr, 38, 714, 10.1097/RCT.0000000000000106
Marin, 2014, State of the art: dual-energy CT of the abdomen, Radiology, 271, 327, 10.1148/radiol.14131480
Lv, 2012, Spectral CT in patients with small HCC: investigation of image quality and diagnostic accuracy, Eur Radiol, 22, 2117, 10.1007/s00330-012-2485-3
Chung, 2015, Possible contrast media reduction with low keV monoenergetic images in the detection of focal liver lesions: a dual-energy CT animal study, PLoS ONE, 10, 10.1371/journal.pone.0133170
Leng, 2015, Size-specific dose estimates for chest, abdominal, and pelvic CT: effect of intrapatient variability in water-equivalent diameter, Radiology, 277, 308, 10.1148/radiol.2015151209
De Cecco, 2010, Dual energy CT (DECT) of the liver: conventional versus virtual unenhanced images, Eur Radiol, 20, 2870, 10.1007/s00330-010-1874-8
Patino, 2016, Material separation using dual-energy CT: current and emerging applications, RadioGraphics, 36, 1087, 10.1148/rg.2016150220
Behrendt, 2010, Intra-individual comparison of different contrast media concentrations (300mg, 370mg and 400mg iodine) in MDCT, Eur Radiol, 20, 1644, 10.1007/s00330-010-1717-7
Kartalis, 2017, Multi-detector CT: liver protocol and recent developments, Eur J Radiol, 97, 101, 10.1016/j.ejrad.2017.10.026
Ichikawa, 2006, Multiphasic contrast-enhanced multidetector-row CT of liver: contrast-enhancement theory and practical scan protocol with a combination of fixed injection duration and patients’ body-weight-tailored dose of contrast material, Eur J Radiol, 58, 165, 10.1016/j.ejrad.2005.11.037
LI-RADS [Internet]. [cité 6 mai 2019]. Disponible sur : https://www.acr.org/Clinical-Resources/Reporting-and-Data-Systems/LI-RADS.
