scholarly journals Retrospective Analysis of the Prevalence of Asymptomatic Cerebral Aneurysm in 4518 Patients Undergoing Magnetic Resonance Angiography. When Does Cerebral Aneurysm Develop?

2002 ◽  
Vol 42 (3) ◽  
pp. 105-113 ◽  
Author(s):  
Toru HORIKOSHI ◽  
Iwao AKIYAMA ◽  
Zentaro YAMAGATA ◽  
Hideaki NUKUI
1995 ◽  
Vol 82 (2) ◽  
pp. 294-295 ◽  
Author(s):  
Alan Turtz ◽  
David Allen ◽  
Robert Koenigsberg ◽  
H. Warren Goldman

✓ The use of magnetic resonance (MR) angiography as a safe, accurate, and reliable substitute for invasive cerebral arteriography has been anticipated as refinements in this technique are introduced. We present the case of an unruptured, 11-mm pericallosal arterial aneurysm not visualized on high-resolution MR angiography. Although this case may be atypical, we caution against complete reliance on this test for exclusion of the presence of cerebral aneurysms.


2012 ◽  
Vol 117 (2) ◽  
pp. 309-315 ◽  
Author(s):  
Josser E. Delgado Almandoz ◽  
Bharathi D. Jagadeesan ◽  
Daniel Refai ◽  
Christopher J. Moran ◽  
DeWitte T. Cross ◽  
...  

Object The yield of CT angiography (CTA) and MR angiography (MRA) in patients with subarachnoid hemorrhage (SAH) who have a negative initial catheter angiogram is currently not well understood. This study aims to determine the yield of CTA and MRA in a prospective cohort of patients with SAH and a negative initial catheter angiogram. Methods From January 1, 2005, until September 1, 2010, the authors instituted a prospective protocol in which patients with SAH—as documented by noncontrast CT or CSF xanthochromia and a negative initial catheter angiogram— were evaluated using CTA and MRA to assess for causative cerebral aneurysms. Two neuroradiologists independently evaluated the noncontrast CT scans to determine the SAH pattern (perimesencephalic or not) and the CT and MR angiograms to assess for causative cerebral aneurysms. Results Seventy-seven patients were included, with a mean age of 52.8 years (median 54 years, range 19–88 years). Fifty patients were female (64.9%) and 27 male (35.1%). Forty-three patients had nonperimesencephalic SAH (55.8%), 29 patients had perimesencephalic SAH (37.7%), and 5 patients had CSF xanthochromia (6.5%). Computed tomography angiography demonstrated a causative cerebral aneurysm in 4 patients (5.2% yield), all of whom had nonperimesencephalic SAH (9.3% yield). Mean aneurysm size was 2.6 mm (range 2.1–3.3 mm). Magnetic resonance angiography demonstrated only 1 of these aneurysms. No causative cerebral aneurysms were found in patients with perimesencephalic SAH or CSF xanthochromia. Conclusions Computed tomography angiography is a valuable adjunct in the evaluation of patients with nonperimesencephalic SAH who have a negative initial catheter angiogram, demonstrating a causative cerebral aneurysm in 9.3% of patients.


1994 ◽  
Vol 128 (1-4) ◽  
pp. 132-136 ◽  
Author(s):  
K. Houkin ◽  
T. Aoki ◽  
A. Takahashi ◽  
H. Abe ◽  
M. Koiwa ◽  
...  

2020 ◽  
Vol 11 ◽  
pp. 224 ◽  
Author(s):  
Masahito Katsuki ◽  
Norio Narita ◽  
Dan Ozaki ◽  
Yoshimichi Sato ◽  
Saki Iwata ◽  
...  

Background: The assessment of the clipped cerebral aneurysm and the cerebral arteries after the treatment of subarachnoid hemorrhage (SAH) is important to find aneurysm regrowth or postoperative cerebral vasospasm. Usually, contrast-enhanced computed tomography angiography is performed for the evaluation of the arteries, but it has side effects of contrast medium. Time-of-flight magnetic resonance angiography (MRA) is a fast and non-invasive method, but clip-induced artifact limits assessment of the artery in the vicinity of the clip. 1.5T MRA with ultrashort echo time (UTE) reduces metal artifact, but the obtained image is too rough to evaluate the aneurysm remnant, and the description range is too narrow to assess the cerebral vasospasm. We routinely use SIGNA Pioneer 3.0T (GE Healthcare Life Sciences, Buckinghamshire, England) and perform SILENT SCAN with UTE-MRA for the postoperative assessment of the clipped aneurysm and cerebral arteries for SAH patients treated by clipping. It has better image quality and describes arteries with a wide description range, so it possesses the potential to overcome the disadvantages of 1.5T UTE-MRA. Case Description: We presented a representative SAH patient who postoperatively underwent 3.0T UTE- MRA after clipping. The artery near the clipped aneurysm was evaluated in detail, and the cerebral arteries were described from the main trunk to the peripheral parts with a wide description range, which enabled the assessment of cerebral vasospasm. Conclusion: 3.0T UTE-MRA may be helpful for the usual assessment of the arteries after clipping and cerebral vasospasm in the future.


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