Perfusion-ventilation CT via three-material differentiation in dual-layer CT: a feasibility study

Andreas P. Sauter, Johannes Hammel, Sebastian Ehn, Klaus Achterhold, Felix K. Kopp, Melanie A. Kimm, Kai Mei, Alexis Laugerette, Franz Pfeiffer, Ernst J. Rummeny, Daniela Pfeiffer, Peter B. Noël

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7 Scopus citations

Abstract

Dual-Energy Computed Tomography is of significant clinical interest due to the possibility of material differentiation and quantification. In current clinical routine, primarily two materials are differentiated, e.g., iodine and soft-tissue. A ventilation-perfusion-examination acquired within a single CT scan requires two contrast agents, e.g., xenon and gadolinium, and a three-material differentiation. In the current study, we have developed a solution for three-material differentiation for a ventilation-perfusion-examination. A landrace pig was examined using a dual-layer CT, and three scans were performed: (1) native; (2) xenon ventilation only; (3) xenon ventilation and gadolinium perfusion. An in-house developed algorithm was used to obtain xenon- and gadolinium-density maps. Firstly, lung tissue was segmented from other tissue. Consequently, a two-material decomposition was performed for lung tissue (xenon/soft-tissue) and for remaining tissue (gadolinium/soft-tissue). Results reveal that it was possible to differentiate xenon and gadolinium in a ventilation/perfusion scan of a pig, resulting in xenon and gadolinium density maps. By summation of both density maps, a three-material differentiation (xenon/gadolinium/soft tissue) can be performed and thus, xenon ventilation and gadolinium perfusion can be visualized in a single CT scan. In an additionally performed phantom study, xenon and gadolinium quantification showed very accurate results (r > 0.999 between measured and known concentrations).

Original languageEnglish
Article number5837
JournalScientific Reports
Volume9
Issue number1
DOIs
StatePublished - 1 Dec 2019

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