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Research ArticleBrain
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Cerebral CT Perfusion Using an Interventional C-Arm Imaging System: Cerebral Blood Flow Measurements

A. Ganguly, A. Fieselmann, M. Marks, J. Rosenberg, J. Boese, Y. Deuerling-Zheng, M. Straka, G. Zaharchuk, R. Bammer and R. Fahrig
American Journal of Neuroradiology September 2011, 32 (8) 1525-1531; DOI: https://doi.org/10.3174/ajnr.A2518
A. Ganguly
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A. Fieselmann
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M. Marks
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J. Rosenberg
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J. Boese
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Y. Deuerling-Zheng
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M. Straka
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G. Zaharchuk
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R. Bammer
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R. Fahrig
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Abstract

BACKGROUND AND PURPOSE: CTP imaging in the interventional suite could reduce delays to the start of image-guided interventions and help determine the treatment progress and end point. However, C-arms rotate slower than clinical CT scanners, making CTP challenging. We developed a cerebral CTP protocol for C-arm CBCT and evaluated it in an animal study.

MATERIALS AND METHODS: Five anesthetized swine were imaged by using C-arm CBCT and conventional CT. The C-arm rotates in 4.3 seconds plus a 1.25-second turnaround, compared with 0.5 seconds for clinical CT. Each C-arm scan had 6 continuous bidirectional sweeps. Multiple scans each with a different delay to the start of an aortic arch iodinated contrast injection and a novel image reconstruction algorithm were used to increase temporal resolution. Three different scan sets (consisting of 6, 3, or 2 scans) and 3 injection protocols (3-mL/s 100%, 3-mL/s 67%, and 6-mL/s 50% contrast concentration) were studied. CBF maps for each scan set and injection were generated. The concordance and Pearson correlation coefficients (ρ and r) were calculated to determine the injection providing the best match between the following: the left and right hemispheres, and CT and C-arm CBCT.

RESULTS: The highest ρ and r values (both 0.92) for the left and right hemispheres were obtained by using the 6-mL 50% iodinated contrast concentration injection. The same injection gave the best match for CT and C-arm CBCT for the 6-scan set (ρ = 0.77, r = 0.89). Some of the 3-scan and 2-scan protocols provided matches similar to those in CT.

CONCLUSIONS: This study demonstrated that C-arm CBCT can produce CBF maps that correlate well with those from CTP.

Abbreviations

AIF
arterial input function
CBCT
conebeam CT
CBF
cerebral blood flow
CBV
cerebral blood volume
CCA
common carotid artery
CCC
concordance correlation coefficient
CTP
CT perfusion
MTT
mean transit time
DSA
digital subtraction angiography
DWI
diffusion-weighted imaging
FLAIR
fluid-attenuated inversion recovery
HCl
hydrchloric acid
IA
intra-arterial
IV
intravenous
mAs
milliampere second
pCO2
end-tidal partial pressure of CO2
PWI
perfusion-weighted imaging
ROI
region of interest
TDC
time-density curve
Tmax
time-to-maximum
TTP
time-to-peak
  • © 2011 by American Journal of Neuroradiology

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American Journal of Neuroradiology: 32 (8)
American Journal of Neuroradiology
Vol. 32, Issue 8
1 Sep 2011
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A. Ganguly, A. Fieselmann, M. Marks, J. Rosenberg, J. Boese, Y. Deuerling-Zheng, M. Straka, G. Zaharchuk, R. Bammer, R. Fahrig
Cerebral CT Perfusion Using an Interventional C-Arm Imaging System: Cerebral Blood Flow Measurements
American Journal of Neuroradiology Sep 2011, 32 (8) 1525-1531; DOI: 10.3174/ajnr.A2518

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Cerebral CT Perfusion Using an Interventional C-Arm Imaging System: Cerebral Blood Flow Measurements
A. Ganguly, A. Fieselmann, M. Marks, J. Rosenberg, J. Boese, Y. Deuerling-Zheng, M. Straka, G. Zaharchuk, R. Bammer, R. Fahrig
American Journal of Neuroradiology Sep 2011, 32 (8) 1525-1531; DOI: 10.3174/ajnr.A2518
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