Author:
Pedersen Michael,Irrera Pietro,Dastrù Walter,Zöllner Frank G.,Bennett Kevin M.,Beeman Scott C.,Bretthorst G. Larry,Garbow Joel R.,Longo Dario Livio
Abstract
AbstractDynamic contrast-enhanced (DCE) MRI monitors the transit of contrast agents, typically gadolinium chelates, through the intrarenal regions, the renal cortex, the medulla, and the collecting system. In this way, DCE-MRI reveals the renal uptake and excretion of the contrast agent. An optimal DCE-MRI acquisition protocol involves finding a good compromise between whole-kidney coverage (i.e., 3D imaging), spatial and temporal resolution, and contrast resolution. By analyzing the enhancement of the renal tissues as a function of time, one can determine indirect measures of clinically important single-kidney parameters as the renal blood flow, glomerular filtration rate, and intrarenal blood volumes. Gadolinium-containing contrast agents may be nephrotoxic in patients suffering from severe renal dysfunction, but otherwise DCE-MRI is clearly useful for diagnosis of renal functions and for assessing treatment response and posttransplant rejection.Here we introduce the concept of renal DCE-MRI, describe the existing methods, and provide an overview of preclinical DCE-MRI applications to illustrate the utility of this technique to measure renal perfusion and glomerular filtration rate in animal models.This publication is based upon work from the COST Action PARENCHIMA, a community-driven network funded by the European Cooperation in Science and Technology (COST) program of the European Union, which aims to improve the reproducibility and standardization of renal MRI biomarkers. This introduction is complemented by two separate publications describing the experimental procedure and data analysis.
Reference85 articles.
1. Hauser W, Atkins HL, Nelson KG, Richards P (1970) Technetium-99m DTPA: a new radiopharmaceutical for brain and kidney scanning. Radiology 94(3):679–684. https://doi.org/10.1148/94.3.679
2. Taylor A (1999) Radionuclide renography: a personal approach. Semin Nucl Med 29(2):102–127
3. Gaspari F, Perico N, Remuzzi G (1997) Measurement of glomerular filtration rate. Kidney Int Suppl 63:S151–S154
4. Barbour GL, Crumb CK, Boyd CM, Reeves RD, Rastogi SP, Patterson RM (1976) Comparison of inulin, iothalamate, and 99mTc-DTPA for measurement of glomerular filtration rate. J Nucl Med 17(4):317–320
5. Soveri I, Berg UB, Bjork J, Elinder CG, Grubb A, Mejare I, Sterner G, Back SE, SBU GFR Review Group (2014) Measuring GFR: a systematic review. Am J Kidney Dis 64(3):411–424. https://doi.org/10.1053/j.ajkd.2014.04.010
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