Intracranial vessel wall imaging framework-Data acquisition, processing, and visualization

被引:8
|
作者
Guggenberger, Konstanze [1 ]
Krafft, Axel J. [2 ]
Ludwig, Ute [2 ]
Raithel, Esther [3 ]
Forman, Christoph [3 ]
Meckel, Stephan [4 ]
Hennig, Juergen [2 ]
Bley, Thorsten A. [1 ]
Vogel, Patrick [1 ,5 ]
机构
[1] Univ Hosp Wurzburg, Dept Diagnost & Intervent Radiol, Wurzburg, Germany
[2] Univ Freiburg, Med Ctr Univ Freiburg, Fac Med, Dept Radiol,Med Phys, Freiburg, Germany
[3] Siemens Healthcare GmbH, Erlangen, Germany
[4] Univ Freiburg, Med Ctr Univ Freiburg, Fac Med, Dept Neuroradiol,Med Phys, Freiburg, Germany
[5] Univ Wurzburg, Dept Expt Phys Biophys 5, Wurzburg, Germany
关键词
Vessel wall imaging; MRI; GUI; CPR; Compressed sensing; Vasculitis; Atherosclerosis; Visualization; CURVED PLANAR REFORMATION; BLACK-BLOOD MRI; THINNING ALGORITHM; TREE; QUANTIFICATION; EXTRACTION;
D O I
10.1016/j.mri.2021.08.004
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
Objective: Assessment of vessel walls is an integral part in diagnosis and disease monitoring of vascular diseases such as vasculitis. Vessel wall imaging (VWI), in particular of intracranial arteries, is the domain of Magnetic Resonance Imaging (MRI) - but still remains a challenge. The tortuous anatomy of intracranial arteries and the need for high resolution within clinically acceptable scan times require special technical conditions regarding the hardware and software environments. Materials and methods: In this work a dedicated framework for intracranial VWI is presented offering an optimized, black-blood 3D T1-weighted post-contrast Compressed Sensing (CS)-accelerated MRI sequence prototype combined with dedicated 3D-GUI supported post-processing tool for the CPR visualization of tortuous arbitrary vessel structures. Results: Using CS accelerated MRI sequence, the scanning time for high-resolution 3D black-blood CS-space data could be reduced to under 10 min. These data are adequate for a further processing to extract straightened visualizations (curved planar reformats - CPR). First patient data sets could be acquired in clinical environment. Conclusion: A highly versatile framework for VWI visualization was demonstrated utilizing a post-processing tool to extract CPR reformats from high-resolution 3D black-blood CS-SPACE data, enabling simplified and optimized assessment of intracranial arteries in intracranial vascular disorders, especially in suspected intracranial vasculitis, by stretching their tortuous course. The processing time from about 15-20 min per patient (data acquisition and further processing) allows the integration into clinical routine.
引用
收藏
页码:114 / 124
页数:11
相关论文
共 50 条
  • [21] Current Clinical Applications of Intracranial Vessel Wall MR Imaging
    Mattay, Raghav R.
    Saucedo, Jose F.
    Lehman, Vance T.
    Xiao, Jiayu
    Obusez, Emmanuel C.
    Raymond, Scott B.
    Fan, Zhaoyang
    Song, Jae W.
    SEMINARS IN ULTRASOUND CT AND MRI, 2021, 42 (05) : 463 - 473
  • [22] Quantitative assessment of microstructural evolution of intracranial aneurysm wall by vessel wall imaging
    Hidenori Endo
    Naoko Mori
    Shunji Mugikura
    Kuniyasu Niizuma
    Shunsuke Omodaka
    Kei Takase
    Teiji Tominaga
    Neuroradiology, 2022, 64 : 1343 - 1350
  • [23] High-resolution intracranial vessel wall imaging: imaging beyond the lumen
    Alexander, Matthew D.
    Yuan, Chun
    Rutman, Aaron
    Tirschwell, David L.
    Palagallo, Gerald
    Gandhi, Dheeraj
    Sekhar, Laligam N.
    Mossa-Basha, Mahmud
    JOURNAL OF NEUROLOGY NEUROSURGERY AND PSYCHIATRY, 2016, 87 (06) : 589 - 597
  • [24] High-resolution intracranial vessel wall imaging in cerebral viral infections evaluations
    Sameer Vyas
    Neha Choudhary
    Manish Modi
    Naveen Sankhyan
    Renu Suthar
    Arushi Gahlot Saini
    Arun Bansal
    Navneet Sharma
    Paramjeet Singh
    Neuroradiology, 2022, 64 : 915 - 924
  • [25] Intracranial Vessel Wall Imaging with Magnetic Resonance Imaging: Current Techniques and Applications
    Tan, Haur Wey
    Chen, Xiao
    Maingard, Julian
    Barras, Christen D.
    Logan, Caitriona
    Thijs, Vincent
    Kok, Hong Kuan
    Lee, Michael J.
    Chandra, Ronil V.
    Brooks, Mark
    Asadi, Hamed
    WORLD NEUROSURGERY, 2018, 112 : 186 - 198
  • [26] High-resolution intracranial vessel wall imaging in cerebral viral infections evaluations
    Vyas, Sameer
    Choudhary, Neha
    Modi, Manish
    Sankhyan, Naveen
    Suthar, Renu
    Saini, Arushi Gahlot
    Bansal, Arun
    Sharma, Navneet
    Singh, Paramjeet
    NEURORADIOLOGY, 2022, 64 (05) : 915 - 924
  • [27] Predicting Progression of Intracranial Arteriopathies in Childhood Stroke With Vessel Wall Imaging
    Stence, Nicholas V.
    Pabst, Lisa L.
    Hollatz, Amanda L.
    Mirsky, David M.
    Herson, Paco S.
    Poisson, Sharon
    Traystman, Richard J.
    Bernard, Timothy J.
    STROKE, 2017, 48 (08) : 2274 - +
  • [28] Improved Black-Blood Imaging Using DANTE-SPACE for Simultaneous Carotid and Intracranial Vessel Wall Evaluation
    Xie, Yibin
    Yang, Qi
    Xie, Guoxi
    Pang, Jianing
    Fan, Zhaoyang
    Li, Debiao
    MAGNETIC RESONANCE IN MEDICINE, 2016, 75 (06) : 2286 - 2294
  • [29] Intracranial vessel wall magnetic resonance imaging features of infectious vasculitis
    Correa, Diogo Goulart
    Pacheco, Felipe Torres
    da Cruz Jr, Luiz Celso Hygino
    Nunes, Renato Hoffmann
    Maia Jr, Antonio Carlos Martins
    Godoy, Luis Filipe de Souza
    Bisolo, Louise
    da Silva Jr, Nivaldo Adolfo
    Soldatelli, Matheus Dorigatti
    Campos, Christiane Monteiro de Siqueira
    Vedolin, Leonardo Modesti
    do Amaral, Lazaro Luis Faria
    da Rocha, Antonio Jose
    CLINICAL IMAGING, 2023, 98 : 26 - 35
  • [30] The Use and Pitfalls of Intracranial Vessel Wall Imaging: How We Do It
    Lindenholz, Arjen
    van der Kolk, Anja G.
    Zwanenburg, Jaco J. M.
    Hendrikse, Jeroen
    RADIOLOGY, 2018, 286 (01) : 12 - 28