Regional Aneurysm Wall Enhancement is Affected by Local Hemodynamics: A 7T MRI Study

被引:23
作者
Hadad, S. [1 ,2 ]
Mut, F. [1 ,2 ]
Chung, B. J. [3 ]
Roa, J. A. [4 ]
Robertson, A. M. [6 ]
Hasan, D. M. [5 ]
Samaniego, E. A. [4 ]
Cebral, J. R. [1 ,2 ]
机构
[1] George Mason Univ, Dept Bioengn, Fairfax, VA 22030 USA
[2] George Mason Univ, Dept Mech Engn, Fairfax, VA 22030 USA
[3] Mountclair State Univ, Dept Appl Math & Stat, Mountclair, NJ USA
[4] Univ Iowa, Dept Neurol Neurosurg & Radiol, Iowa City, IA USA
[5] Univ Iowa, Dept Neurosurg, Iowa City, IA USA
[6] Univ Pittsburgh, Dept Mech Engn & Mat Sci, Pittsburgh, PA USA
基金
美国国家卫生研究院;
关键词
INTRACRANIAL ANEURYSMS;
D O I
10.3174/ajnr.A6927
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Aneurysm wall enhancement regions tend to have lower wall shear stress than nonenhanced regions of the same aneurysm. The association between flow conditions and aneurysm wall enhancement seems to depend on the location of the region on the aneurysm sac. Regions at the neck and close to the inflow tend to be exposed to higher wall shear stress and wall shear stress gradients. BACKGROUND AND PURPOSE: Aneurysm wall enhancement has been proposed as a biomarker for inflammation and instability. However, the mechanisms of aneurysm wall enhancement remain unclear. We used 7T MR imaging to determine the effect of flow in different regions of the wall. MATERIALS AND METHODS: Twenty-three intracranial aneurysms imaged with 7T MR imaging and 3D angiography were studied with computational fluid dynamics. Local flow conditions were compared between aneurysm wall enhancement and nonenhanced regions. Aneurysm wall enhancement regions were subdivided according to their location on the aneurysm and relative to the inflow and were further compared. RESULTS: On average, wall shear stress was lower in enhanced than in nonenhanced regions (P?=?.05). Aneurysm wall enhancement regions at the neck had higher wall shear stress gradients (P?=?.05) with lower oscillations (P?=?.05) than nonenhanced regions. In contrast, aneurysm wall enhancement regions at the aneurysm body had lower wall shear stress (P?=?.01) and wall shear stress gradients (P?=?.008) than nonenhanced regions. Aneurysm wall enhancement regions far from the inflow had lower wall shear stress (P?=?.006) than nonenhanced regions, while aneurysm wall enhancement regions close to the inflow tended to have higher wall shear stress than the nonenhanced regions, but this association was not significant. CONCLUSIONS: Aneurysm wall enhancement regions tend to have lower wall shear stress than nonenhanced regions of the same aneurysm. Moreover, the association between flow conditions and aneurysm wall enhancement seems to depend on the location of the region on the aneurysm sac. Regions at the neck and close to the inflow tend to be exposed to higher wall shear stress and wall shear stress gradients. Regions at the body, dome, or far from the inflow tend to be exposed to uniformly low wall shear stress and have more aneurysm wall enhancement.
引用
收藏
页码:464 / 470
页数:7
相关论文
共 29 条
[1]   Patient-specific computational modeling of cerebral aneurysms with multiple avenues of flow from 3D rotational angiography images [J].
Castro, Marcelo A. ;
Putman, Christopher M. ;
Cebral, Juan R. .
ACADEMIC RADIOLOGY, 2006, 13 (07) :811-821
[2]   Efficient pipeline for image-based patient-specific analysis of cerebral aneurysm hemodynamics: Technique and sensitivity [J].
Cebral, JR ;
Castro, MA ;
Appanaboyina, S ;
Putman, CM ;
Millan, D ;
Frangi, AF .
IEEE TRANSACTIONS ON MEDICAL IMAGING, 2005, 24 (04) :457-467
[3]   Vessel wall enhancement of intracranial aneurysms: fact or artifact? [J].
Cornelissen, Bart M. W. ;
Leemans, Eva L. ;
Slump, Cornelis H. ;
Marquering, Henk A. ;
Majoie, Charles B. L. M. ;
van den Berg, Rene .
NEUROSURGICAL FOCUS, 2019, 47 (01)
[4]   A data-driven approach for addressing the lack of flow waveform data in studies of cerebral arterial flow in older adults [J].
Durka, Michael J. ;
Wong, Isaac H. ;
Kallmes, David F. ;
Pasalic, Dario ;
Mut, Fernando ;
Jagani, Manoj ;
Blanco, Pablo J. ;
Cebral, Juan R. ;
Robertson, Anne M. .
PHYSIOLOGICAL MEASUREMENT, 2018, 39 (01)
[5]   Flow-induced, inflammation-mediated arterial wall remodeling in the formation and progression of intracranial aneurysms [J].
Frosen, Juhana ;
Cebral, Juan ;
Robertson, Anne M. ;
Aoki, Tomohiro .
NEUROSURGICAL FOCUS, 2019, 47 (01)
[6]   Increased Wall Enhancement During Follow-Up as a Predictor of Subsequent Aneurysmal Growth [J].
Gariel, Florent ;
Ben Hassen, Wagih ;
Boulouis, Gregoire ;
Bourcier, Romain ;
Trystram, Denis ;
Legrand, Laurence ;
Rodriguez-Regent, Christine ;
Saloner, David ;
Oppenheim, Catherine ;
Naggara, Olivier ;
Edjlali, Myriam .
STROKE, 2020, 51 (06) :1868-1872
[7]   Intracranial aneurysms at higher clinical risk for rupture demonstrate increased wall enhancement and thinning on multicontrast 3D vessel wall MRI [J].
Hartman, Jason Brett ;
Watase, Hiroko ;
Sun, Jie ;
Hippe, Daniel S. ;
Kim, Louis ;
Levitt, Michael ;
Sekhar, Laligam ;
Balu, Niranjan ;
Hatsukami, Thomas ;
Yuan, Chun ;
Mossa-Basha, Mahmud .
BRITISH JOURNAL OF RADIOLOGY, 2019, 92 (1096)
[8]   Vessel Wall Imaging Predicts the Presence of Atherosclerotic Lesions in Unruptured Intracranial Aneurysms [J].
Hashimoto, Yukishige ;
Matsushige, Toshinori ;
Shimonaga, Koji ;
Hosogai, Masahiro ;
Kaneko, Mayumi ;
Ono, Chiaki ;
Mizoue, Tatsuya .
WORLD NEUROSURGERY, 2019, 132 :e775-e782
[9]   Wall enhancement on high-resolution magnetic resonance imaging may predict an unsteady state of an intracranial saccular aneurysm [J].
Hu, Peng ;
Yang, Qi ;
Wang, Dan-Dan ;
Guan, Shao-Chen ;
Zhang, Hong-Qi .
NEURORADIOLOGY, 2016, 58 (10) :979-985
[10]   Association between aneurysm hemodynamics and wall enhancement on 3D vessel wall MRI [J].
Khan, Muhammad Owais ;
Arana, Veronica Toro ;
Rubbert, Christian ;
Cornelius, Jan F. ;
Fischer, Igor ;
Bostelmann, Richard ;
Mijderwijk, Hendrik-Jan ;
Turowski, Bernd ;
Steiger, Hans-Jakob ;
May, Rebecca ;
Petridis, Athanasios K. .
JOURNAL OF NEUROSURGERY, 2021, 134 (02) :565-575