Arterial spin labeling magnetic resonance imaging: toward noninvasive diagnosis and follow-up of pediatric brain arteriovenous malformations

被引:35
作者
Blauwblomme, Thomas [1 ,4 ,5 ]
Naggara, Olivier [2 ,4 ]
Brunelle, Francis [2 ,4 ,6 ]
Grevent, David [2 ,4 ,6 ]
Puget, Stephanie [1 ,4 ]
Di Rocco, Federico [1 ,4 ]
Beccaria, Kevin [1 ,4 ]
Paternoster, Giovanna [1 ,4 ]
Bourgeois, Marie [1 ]
Kossorotoff, Manoelle [3 ,4 ,7 ]
Zerah, Michel [1 ,4 ]
Sainte-Rose, Christian [1 ,4 ]
Boddaert, Nathalie [2 ,4 ,6 ]
机构
[1] Hop Necker Enfants Malad, AP HP, Dept Pediat Neurosurg, F-75015 Paris, France
[2] Hop Necker Enfants Malad, AP HP, Dept Neuroradiol, F-75015 Paris, France
[3] Hop Necker Enfants Malad, AP HP, Dept Pediat Neurol, F-75015 Paris, France
[4] Univ Paris 05, Sorbonne Paris Cite, Paris, France
[5] INSERM, U1129, Pediat Epilepsies & Brain Plast, Paris, France
[6] INSERM, Inst Imagine, U1000, Paris, France
[7] Ctr Hosp St Anne, INSERM, Dept Neuroradiol, UMR 894, Paris, France
关键词
arterial spin labeling; arteriovenous malformations; technique; BLOOD-FLOW; PERFUSION; IDENTIFICATION; EMBOLIZATION; RADIOSURGERY; MANAGEMENT; RADIATION; ACCURACY; CHILDREN; THERAPY;
D O I
10.3171/2014.9.PEDS14194
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
OBJECT Arterial spin labeling (ASL)-MRI is becoming a routinely used sequence for ischemic strokes, as it quantifies cerebral blood flow (CBF) without the need for contrast injection. As brain arteriovenous malformations (AVMs) are highflow vascular abnormalities, increased CBF can be identified inside the nidus or draining veins. The authors aimed to analyze the relevance of ASL-MRI in the diagnosis and follow-up of children with brain AVM. METHODS The authors performed a retrospective analysis of 21 patients who had undergone digital subtraction angiography (DSA) and pseudo-continuous ASL-MRI for the diagnosis or follow-up of brain AVM after radiosurgery or embolization. They compared the AVM nidus location between ASL-MRI and 3D contrast-enhanced T1 MRI, as well as the CBF values obtained in the nidus (CBFnidus) and the normal cortex (CBFcortex) before and after treatment. RESULTS The ASL-MRIcorrectly demonstrated the nidus location in all cases. Nidal perfusion (mean CBFnidus 137.7 ml/100 mg/min) was significantly higher than perfusion in the contralateral normal cortex (mean CBFcortex 58.6 Ml/100 mg/ min; p < 0.0001, Mann-Whitney test). Among 3 patients followed up after embolization, a reduction in both AVM size and CBF values was noted. Among 5 patients followed up after radiosurgery, a reduction in the nidus size was observed, whereas CBFnidus remained higher than CBFcortex. CONCLUSIONS In this study, ASL-MRI revealed nidus location and patency after treatment thanks to its ability to demonstrate focal increased CBF values. Absolute quantification of CBF values could be relevant in the follow-up of pediatric brain AVM after partial treatment, although this must be confirmed in larger prospective trials.
引用
收藏
页码:451 / 458
页数:8
相关论文
共 25 条
[1]   Towards complete and accurate reporting of studies of diagnostic accuracy: The STARD initiative [J].
Bossuyt, PM ;
Reitsma, JB ;
Bruns, DE ;
Gatsonis, CA ;
Glasziou, PP ;
Irwig, LM ;
Lijmer, JG ;
Moher, D ;
Rennie, D ;
de Vet, HCW .
RADIOLOGY, 2003, 226 (01) :24-28
[2]   Measuring cerebral blood flow using magnetic resonance imaging techniques [J].
Calamante, F ;
Thomas, DL ;
Pell, GS ;
Wiersma, J ;
Turner, R .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1999, 19 (07) :701-735
[3]   Management of Pediatric Intracranial Arteriovenous Malformations: Experience With Multimodality Therapy [J].
Darsaut, Tim E. ;
Guzman, Raphael ;
Marcellus, Mary L. ;
Edwards, Michael S. ;
Tian, Lu ;
Do, Huy M. ;
Chang, Steven D. ;
Levy, Richard P. ;
Adler, John R. ;
Marks, Michael P. ;
Steinberg, Gary K. .
NEUROSURGERY, 2011, 69 (03) :540-556
[4]   Recurrent cerebral arteriovenous malformations after negative postoperative angiograms [J].
Kader, A ;
Goodrich, JT ;
Sonstein, WJ ;
Stein, BM ;
Carmel, PW ;
Michelsen, WJ .
JOURNAL OF NEUROSURGERY, 1996, 85 (01) :14-18
[5]   Identification of Venous Signal on Arterial Spin Labeling Improves Diagnosis of Dural Arteriovenous Fistulas and Small Arteriovenous Malformations [J].
Le, T. T. ;
Fischbein, N. J. ;
Andre, J. B. ;
Wijman, C. ;
Rosenberg, J. ;
Zaharchuk, G. .
AMERICAN JOURNAL OF NEURORADIOLOGY, 2012, 33 (01) :61-68
[6]   Perfusion imaging of cerebral arteriovenous malformations: a study comparing quantitative continuous arterial spin labeling and dynamic contrast-enhanced magnetic resonance imaging at 3 T [J].
Luedemann, Lutz ;
Jedrzejewski, Grzegorz ;
Heidenreich, Jens ;
Han, Eric T. ;
Bruhn, Harald .
MAGNETIC RESONANCE IMAGING, 2011, 29 (09) :1157-1164
[7]   The Use of Computed Tomography in Pediatrics and the Associated Radiation Exposure and Estimated Cancer Risk [J].
Miglioretti, Diana L. ;
Johnson, Eric ;
Williams, Andrew ;
Greenlee, Robert T. ;
Weinmann, Sheila ;
Solberg, Leif I. ;
Feigelson, Heather Spencer ;
Roblin, Douglas ;
Flynn, Michael J. ;
Vanneman, Nicholas ;
Smith-Bindman, Rebecca .
JAMA PEDIATRICS, 2013, 167 (08) :700-707
[8]   Influence of the combination of patient age and deep venous drainage on brain arteriovenous malformation recurrence after surgery Clinical article [J].
Morgan, Michael Kerin ;
Patel, Nirav J. ;
Simons, Mary ;
Ritson, Elizabeth Anne ;
Heller, Gillian Z. .
JOURNAL OF NEUROSURGERY, 2012, 117 (05) :934-941
[9]   Bleeding after radiosurgery for cerebral arteriovenous malformations [J].
Nataf, F ;
Ghossoub, M ;
Schlienger, M ;
Moussa, R ;
Meder, JF ;
Roux, FX .
NEUROSURGERY, 2004, 55 (02) :298-305
[10]   Diagnosis and Management of Arteriovenous Malformations in Children [J].
Niazi, Toba N. ;
Klimo, Paul, Jr. ;
Anderson, Richard C. E. ;
Raffel, Corey .
NEUROSURGERY CLINICS OF NORTH AMERICA, 2010, 21 (03) :443-+