Steady-state imaging with inhomogeneous magnetization transfer contrast using multiband radiofrequency pulses

被引:13
作者
Malik, Shaihan J. [1 ,2 ]
Teixeira, Rui P. A. G. [1 ,2 ]
West, Daniel J. [1 ,2 ]
Wood, Tobias C. [3 ]
Hajnal, Joseph V. [1 ,2 ]
机构
[1] Kings Coll London, Sch Biomed Engn & Imaging Sci, London, England
[2] Kings Coll London, Ctr Developing Brain, London, England
[3] Kings Coll London, Inst Psychiat Psychol & Neurosci, Neuroimaging Dept, London, England
基金
英国工程与自然科学研究理事会;
关键词
dipolar order; ihMT; inhomogeneous MT; magnetization transfer; myelin imaging; BROADENED LINES; IN-VIVO; IHMT; SENSITIVITY; EXCHANGE; ORIGIN; MODEL;
D O I
10.1002/mrm.27984
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: Inhomogeneous magnetization transfer (ihMT) is an emerging form of MRI contrast that may offer high specificity for myelinated tissue. Existing ihMT and pulsed MT sequences often use separate radiofrequency pulses for saturation and signal excitation. This study investigates the use of nonselective multiband radiofrequency pulses for simultaneous off-resonance saturation and on-resonance excitation specifically for generation of ihMT contrast within rapid steady-state pulse sequences. Theory and Methods: A matrix-based signal modeling approach was developed and applied for both balanced steady state free precession and spoiled gradient echo sequences, accounting specifically for multiband pulses. Phantom experiments were performed using a combination of balanced steady state free precession and spoiled gradient echo sequences, and compared with model fits. A human brain imaging exam was performed using balanced steady state free precession sequences to demonstrate the achieved contrast. Results: A simple signal model derived assuming instantaneous radiofrequency pulses was shown to agree well with full integration of the governing equations and provided fits to phantom data for materials with strong ihMT contrast (PL161 root mean square error = 0.9%, and hair conditioner root mean square error = 2.4%). In vivo ihMT ratio images showed the expected white matter contrast that has been seen by other ihMT investigations, and the observed ihMT ratios corresponded well with predictions. Conclusions: ihMT contrast can be generated by integrating multiband radiofrequency pulses directly into both spoiled gradient echo and balanced steady state free precession sequences, and the presented signal modeling approach can be used to understand the acquired signals.
引用
收藏
页码:935 / 949
页数:15
相关论文
共 50 条
  • [21] Approximated analytical characterization of the steady-state chemical exchange saturation transfer (CEST) signals
    Jin, Tao
    Kim, Seong-Gi
    MAGNETIC RESONANCE IN MEDICINE, 2019, 82 (05) : 1876 - 1889
  • [22] A comparison of inhomogeneous magnetization transfer, myelin volume fraction, and diffusion tensor imaging measures in healthy children
    Geeraert, Bryce L.
    Lebel, R. Marc
    Mah, Alyssa C.
    Deoni, Sean C.
    Alsop, David C.
    Varma, Gopal
    Lebel, Catherine
    NEUROIMAGE, 2018, 182 : 343 - 350
  • [23] Unbiased signal equation for quantitative magnetization transfer mapping in balanced steady-state free precession MRI
    Bayer, Fritz M.
    Bock, Michael
    Jezzard, Peter
    Smith, Alex K.
    MAGNETIC RESONANCE IN MEDICINE, 2022, 87 (01) : 446 - 456
  • [24] Magnetization transfer based contrast for imaging denatured collagen
    Harel, Amir
    Eliav, Uzi
    Akselrod, Solange
    Navon, Gil
    JOURNAL OF MAGNETIC RESONANCE IMAGING, 2008, 27 (05) : 1155 - 1163
  • [25] Magnetic relaxation contrast agents in magnetization transfer imaging
    Danek, AN
    Bryant, RG
    INVESTIGATIVE RADIOLOGY, 1998, 33 (11) : 773 - 778
  • [26] Whole-body magnetization transfer contrast imaging
    Boss, Andreas
    Martirosian, Petros
    Kueper, Klaus
    Fierlbeck, Gerhard
    Claussen, Claus D.
    Schick, Fritz
    JOURNAL OF MAGNETIC RESONANCE IMAGING, 2006, 24 (05) : 1183 - 1187
  • [27] Spectrally selective three-dimensional dynamic balanced steady-state free precession for hyperpolarized C-13 metabolic imaging with spectrally selective radiofrequency pulses
    Shang, Hong
    Sukumar, Subramaniam
    von Morze, Cornelius
    Bok, Robert A.
    Marco-Rius, Irene
    Kerr, Adam
    Reed, Galen D.
    Milshteyn, Eugene
    Ohliger, Michael A.
    Kurhanewicz, John
    Larson, Peder E. Z.
    Pauly, John M.
    Vigneron, Daniel B.
    MAGNETIC RESONANCE IN MEDICINE, 2017, 78 (03) : 963 - 975
  • [28] Optimization of magnetization transfer contrast for EPI FLAIR brain imaging
    Demir, Serdest
    Clifford, Bryan
    Lo, Wei-Ching
    Tabari, Azadeh
    Goncalves Filho, Augusto Lio M.
    Lang, Min
    Cauley, Stephen F.
    Setsompop, Kawin
    Bilgic, Berkin
    Lev, Michael H.
    Schaefer, Pamela W.
    Rapalino, Otto
    Huang, Susie Y.
    Hilbert, Tom
    Feiweier, Thorsten
    Conklin, John
    MAGNETIC RESONANCE IN MEDICINE, 2022, 87 (05) : 2380 - 2387
  • [29] A deep learning approach for magnetization transfer contrast MR fingerprinting and chemical exchange saturation transfer imaging
    Kim, Byungjai
    Schaer, Michael
    Park, HyunWook
    Heo, Hye-Young
    NEUROIMAGE, 2020, 221
  • [30] Steady-state dynamics of an inhomogeneous two-channel TASEP with Langmuir kinetics
    Dhiman, Isha
    Gupta, Arvind Kumar
    INTERNATIONAL JOURNAL OF MODERN PHYSICS C, 2018, 29 (04):