Robust arterial input function surrogate measurement from the superior sagittal sinus complex signal for fast dynamic contrast-enhanced MRI in the brain

被引:1
作者
Bourassa-Moreau, Benoit [1 ]
Lebel, Rejean [1 ]
Gilbert, Guillaume [2 ]
Mathieu, David [3 ,4 ]
Lepage, Martin [1 ,4 ]
机构
[1] Univ Sherbrooke, Ctr Imagerie Mol Sherbrooke, Dept Med Nucl & Radiobiol, Sherbrooke, PQ, Canada
[2] Philips Healthcare Canada, MR Clin Sci, Markham, ON, Canada
[3] Univ Sherbrooke, Dept Chirurg, Serv Neurochirurg, Sherbrooke, PQ, Canada
[4] Ctr Rech Ctr Hosp Univ Sherbrooke, Ctr Integre Sante & Serv Sociaux Estrie, Sherbrooke, PQ, Canada
关键词
arterial input function; brain perfusion; complex signal; dynamic contrast-enhanced MRI; inflow; superior sagittal sinus; DCE-MRI; BLOOD; PARAMETERS; MAGNITUDE; PERFUSION; INFLOW;
D O I
10.1002/mrm.28922
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Purpose: Accurately estimating the arterial input function for dynamic contrast-enhanced MRI is challenging. An arterial input function is typically determined from signal magnitude changes related to a contrast agent, often leading to underestimation of peak concentrations. Alternatively, signal phase recovers the accurate peak concentration for straight vessels but suffers from high noise. A recent method proposed to fit the signal in the complex plane by combining the advantages of the previous 2 methods. The purpose of this work is to refine this complex-based method to determine the venous output function (VOF), an arterial input function surrogate, from the superior sagittal sinus. Methods: We propose a state-of-the-art complex-based method that includes direct compensation for blood inflow and signal phase correction accounting for the curvature of the superior sagittal sinus, generally assumed collinear with B-0. We compared the magnitude-, phase-, and complex-based VOF determination methods against various simulated biases as well as for 29 brain metastases patients. Results: Angulation of the superior sagittal sinus relative to B-0 varied widely within patients, and its effect on the signal phase caused an underestimation of peak concentrations of up to 65%. Correction significantly increased the VOF peak concentration for the phase-and complex-based VOFs in the cohort. The phase-based method recovered accurate peak concentrations but lacked precision in the tail of the VOF. Our complex-based VOF completely recovered the effect of inflow and resulted in a high-peak concentration with limited noise. Conclusion: The new complex-based method resulted in high-quality VOF robust against superior sagittal sinus curvature and variations in patient positioning.
引用
收藏
页码:3052 / 3066
页数:15
相关论文
共 27 条
[11]   Phase-based arterial input functions in humans applied to dynamic contrast-enhanced MRI: potential usefulness and limitations [J].
Garpebring, Anders ;
Wirestam, Ronnie ;
Yu, Jun ;
Asklund, Thomas ;
Karlsson, Mikael .
MAGNETIC RESONANCE MATERIALS IN PHYSICS BIOLOGY AND MEDICINE, 2011, 24 (04) :233-245
[12]   Effects of Inflow and Radiofrequency Spoiling on the Arterial Input Function in Dynamic Contrast-Enhanced MRI: A Combined Phantom and Simulation Study [J].
Garpebring, Anders ;
Wirestam, Ronnie ;
Ostlund, Nils ;
Karlsson, Mikael .
MAGNETIC RESONANCE IN MEDICINE, 2011, 65 (06) :1670-1679
[13]   A functional form for a representative individual arterial input function measured from a population using high temporal resolution DCE MRI [J].
Georgiou, Leonidas ;
Wilson, Daniel J. ;
Sharma, Nisha ;
Perren, Timothy J. ;
Buckley, David L. .
MAGNETIC RESONANCE IN MEDICINE, 2019, 81 (03) :1955-1963
[14]   Assessment of blood-brain barrier disruption using dynamic contrast-enhanced MRI. A systematic review [J].
Heye, Anna K. ;
Culling, Ross D. ;
Valdes Hernandez, Maria del C. ;
Thrippleton, Michael J. ;
Wardlaw, Joanna M. .
NEUROIMAGE-CLINICAL, 2014, 6 :262-274
[15]   A functional form for injected MRI Gd-chelate contrast agent concentration incorporating recirculation, extravasation and excretion [J].
Horsfield, Mark A. ;
Thornton, John S. ;
Gill, Andrew ;
Jager, H. Rolf ;
Priest, Andrew N. ;
Morgan, Bruno .
PHYSICS IN MEDICINE AND BIOLOGY, 2009, 54 (09) :2933-2949
[16]   Effects of arterial input function selection on kinetic parameters in brain dynamic contrast-enhanced MRI [J].
Keil, Vera C. ;
Maedler, Burkhard ;
Gieseke, Juergen ;
Fimmers, Rolf ;
Hattingen, Elke ;
Schild, Hans H. ;
Hadizadeh, Dariusch R. .
MAGNETIC RESONANCE IMAGING, 2017, 40 :83-90
[17]   Theoretical model of intravascular paramagnetic tracers effect on tissue relaxation [J].
Kjolby, B. F. ;
Ostergaard, L. ;
Kiselev, V. G. .
MAGNETIC RESONANCE IN MEDICINE, 2006, 56 (01) :187-197
[18]   Reproducibility of the gadolinium concentration measurements and of the fitting parameters of the vascular input function in the superior sagittal sinus in a patient population [J].
Lavini, Cristina ;
Verhoeff, Joost J. C. .
MAGNETIC RESONANCE IMAGING, 2010, 28 (10) :1420-1430
[19]   Robust Phase Unwrapping for MR Temperature Imaging Using a Magnitude-Sorted List, Multi-Clustering Algorithm [J].
Maier, Florian ;
Fuentes, David ;
Weinberg, Jeffrey S. ;
Hazle, John D. ;
Stafford, R. Jason .
MAGNETIC RESONANCE IN MEDICINE, 2015, 73 (04) :1662-1668
[20]   DREAM - a novel approach for robust, ultrafast, multislice B1 mapping [J].
Nehrke, Kay ;
Boernert, Peter .
MAGNETIC RESONANCE IN MEDICINE, 2012, 68 (05) :1517-1526