Neuroimaging in Moyamoya angiopathy: Updated review
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Ahtam, 2022, Abstract 64: diffusion tensor imaging suggests decreased axonal myelination in children with moyamoya without stroke, Stroke, 53, 10.1161/str.53.suppl_1.64
Amin-Hanjani, 2007, Evaluation of extracranial-intracranial bypass using quantitative magnetic resonance angiography, J. Neurosurg., 106, 291, 10.3171/jns.2007.106.2.291
Amin-Hanjani, 2013, Combined direct and indirect bypass for moyamoya: quantitative assessment of direct bypass flow over time, Neurosurgery, 73, 962, 10.1227/NEU.0000000000000139
Arnone, 2019, Single vessel double anastomosis for flow augmentation - a novel technique for direct extracranial to intracranial bypass surgery, Oper. Neurosurg., 17, 365, 10.1093/ons/opy396
Berry, 2020, Moyamoya: an update and review, Cureus, 12
Berry, 2020, Moyamoya: an update and review, Cureus, 12
Biagi, 2007, Age dependence of cerebral perfusion assessed by magnetic resonance continuous arterial spin labeling, J. Magn. Reson. Imaging, 25, 696, 10.1002/jmri.20839
Buyanova, 2021, Cerebral white matter myelination and relations to age, gender, and cognition: a selective review, Front. Hum. Neurosci., 15, 356, 10.3389/fnhum.2021.662031
Chen, 2020, Predicting PET cerebrovascular reserve with deep learning by using baseline MRI: a pilot investigation of a drug-free brain stress test, Radiology, 296, 627, 10.1148/radiol.2020192793
Chen, 2016, CT perfusion assessment of Moyamoya syndrome before and after direct revascularization (superficial temporal artery to middle cerebral artery bypass, Eur. Radiol., 26, 254, 10.1007/s00330-015-3802-4
Cheon, 2015, Quantitative digital subtraction angiography in pediatric moyamoya disease, J. Korean Neurosurg. Soc., 57, 432, 10.3340/jkns.2015.57.6.432
Cheung, 2017, Surgical outcome for moyamoya disease: clinical and perfusion computed tomography correlation, World Neurosurg., 98, 81, 10.1016/j.wneu.2016.10.117
Choksi, 2005, Transient neurologic deficit after acetazolamide challenge for computed tomography perfusion imaging, J. Comput. Assist. Tomogr., 29, 278, 10.1097/01.rct.0000154025.26857.91
Demartini, 2022, Moyamoya disease and syndrome: a review, Radiol. Bras., 55, 31, 10.1590/0100-3984.2021.0010
Deng, 2016, Comparison of 7.0- and 3.0-T MRI and MRA in ischemic-type moyamoya disease: preliminary experience, J. Neurosurg., 124, 1716, 10.3171/2015.5.JNS15767
Fahlström, 2021, Variable temporal cerebral blood flow response to acetazolamide in moyamoya patients measured using arterial spin labeling, Front. Neurol., 12, 893, 10.3389/fneur.2021.615017
Fieselmann, 2011, Deconvolution-based CT and MR brain perfusion measurement: theoretical model revisited and practical implementation details, Int. J. Biomed. Imaging, 2011, 20, 10.1155/2011/467563
Filimonova, 2022, Myelin damage and cortical atrophy in watershed regions in patients with moyamoya angiopathy, Front. Neurosci., 0, 1405
Fischl, 2012, FreeSurfer, NeuroImage, 62, 774, 10.1016/j.neuroimage.2012.01.021
Fujimura, 2011, Neurosurgery, 68, 957, 10.1227/NEU.0b013e318208f1da
Funaki, 2022, Larger posterior revascularization associated with reduction of choroidal anastomosis in moyamoya disease: a quantitative angiographic analysis, Am. J. Neuroradiol., 43, 1279, 10.3174/ajnr.A7609
Ganzetti, 2014, Whole brain myelin mapping using T1- and T2-weighted MR imaging data, Front. Hum. Neurosci., 8
Guidelines for diagnosis and treatment of moyamoya disease (spontaneous occlusion of the circle of Willis), 2012, Neurol. Med. -Chir., 52, 245, 10.2176/nmc.52.245
Guidelines for diagnosis and treatment of moyamoya disease (spontaneous occlusion of the circle of Willis), 2012, Neurol. Med. -Chir., 52, 245, 10.2176/nmc.52.245
Gupta, 2020, Moyamoya disease: a review of current literature, Cureus, 12
Hales, 2014, Arterial spin labeling characterization of cerebral perfusion during normal maturation from late childhood into adulthood: normal ‘reference range’’ values and their use in clinical studies, J. Cereb. Blood Flow. Metab., 34, 776, 10.1038/jcbfm.2014.17
Hamano, 2017, Clinical implications of the cortical hyperintensity belt sign in fluid-attenuated inversion recovery images after bypass surgery for moyamoya disease, J. Neurosurg., 126, 1, 10.3171/2015.10.JNS151022
Hara, 2020, Myelin and axonal damage in normal-appearing white matter in patients with Moyamoya disease, AJNR: Am. J. Neuroradiol., 41, 1618
Hauser, 2019, Hypercapnic BOLD MRI compared to H 215 O PET/CT for the hemodynamic evaluation of patients with Moyamoya disease, NeuroImage Clin., 22
Hoeffner, 2004, Cerebral perfusion CT: technique and clinical applications, Radiology, 231, 632, 10.1148/radiol.2313021488
Honda, 2006, Quantification of the regional cerebral blood flow and vascular reserve in moyamoya disease using split-dose iodoamphetamine I 123 single-photon emission computed tomography, Surg. Neurol., 66, 155, 10.1016/j.surneu.2005.08.022
Horie, 2014, De novo ivy sign indicates postoperative hyperperfusion in moyamoya disease, Stroke, 45, 1488, 10.1161/STROKEAHA.114.004755
Horie, 2011, “Brush Sign” on susceptibility-weighted MR imaging indicates the severity of Moyamoya disease, Am. J. Neuroradiol., 32, 1697, 10.3174/ajnr.A2568
Houkin, 2005, Novel magnetic resonance angiography stage grading for moyamoya disease, Cerebrovasc. Dis., 20, 347, 10.1159/000087935
Huang, 2021, Time to peak and full width at half maximum in MR perfusion: valuable indicators for monitoring moyamoya patients after revascularization, Sci. Rep., 11, 1
Hurth, 2021, Early post-operative CT-angiography imaging after EC-IC bypass surgery in Moyamoya patients, Front. Neurol., 12, 405, 10.3389/fneur.2021.655943
Ibrahim, 2021, Contrast pediatric brain perfusion: dynamic susceptibility contrast and dynamic contrast-enhanced MR imaging, Magn. Reson. Imaging Clin. North Am., 29, 515, 10.1016/j.mric.2021.06.004
Ishii, 2014, Practical clinical use of dynamic susceptibility contrast magnetic resonance imaging for the surgical treatment of moyamoya disease, Neurosurgery, 74, 302, 10.1227/NEU.0000000000000266
Ishikawa, 1997, Vasoreconstructive surgery for radiation-induced vasculopathy in childhood, Surg. Neurol., 48, 620, 10.1016/S0090-3019(97)00029-3
Jea, 2005, Moyamoya syndrome associated with Down syndrome: outcome after surgical revascularization, Pediatrics, 116, 10.1542/peds.2005-0568
Jeong, 2011, Changes in integrity of normal-appearing white matter in patients with Moyamoya disease: a diffusion tensor imaging study, AJNR: Am. J. Neuroradiol., 32, 1893, 10.3174/ajnr.A2683
Kathuveetil, 2020, Vessel wall thickening and enhancement in high-resolution intracranial vessel wall imaging: a predictor of future ischemic events in Moyamoya disease, AJNR Am. J. Neuroradiol., 41, 100, 10.3174/ajnr.A6360
Kawashima, 2010, Decrease in leptomeningeal ivy sign on fluid-attenuated inversion recovery images after cerebral revascularization in patients with Moyamoya disease, AJNR: Am. J. Neuroradiol., 31, 1713, 10.3174/ajnr.A2124
Kazumata, 2016, Characteristics of diffusional kurtosis in chronic ischemia of adult Moyamoya disease: comparing diffusional kurtosis and diffusion tensor imaging, AJNR: Am. J. Neuroradiol., 37, 1432, 10.3174/ajnr.A4728
Kazumata, 2019, Brain structure, connectivity, and cognitive changes following revascularization surgery in adult Moyamoya disease, Neurosurgery, 85, E943, 10.1093/neuros/nyz176
Kazumata, 2017, Mapping altered brain connectivity and its clinical associations in adult moyamoya disease: a resting-state functional MRI study, PLOS One, 12, 10.1371/journal.pone.0182759
Khan, 2017, Measuring cerebral blood flow in moyamoya angiopathy by quantitative magnetic resonance angiography noninvasive optimal vessel analysis, Neurosurgery, 81, 921, 10.1093/neuros/nyw122
M. Kitajima H. Uetani Arterial spin labeling for pediatric central nervous system diseases: techniques and clinical applications.https://doi.org/10.2463/mrms.rev.2021–0118.
Komiyama, 1997, Reversible pontine ischemia caused by acetazolamide challenge, AJNR: Am. J. Neuroradiol., 18, 1782
Kuhn, 2015, Quantitative H2[15O]-PET in pediatric Moyamoya disease: evaluating perfusion before and after cerebral revascularization, J. Stroke Cerebrovasc. Dis., 24, 965, 10.1016/j.jstrokecerebrovasdis.2014.12.017
Kuroda, 1993, Acetazolamide test in detecting reduced cerebral perfusion reserve and predicting long-term prognosis in patients with internal carotid artery occlusion, Neurosurgery, 32, 912, 10.1227/00006123-199306000-00005
Lee, 2009, Quantitative hemodynamic studies in moyamoya disease: a review, Neurosurg. Focus, 26, 10.3171/2009.1.FOCUS08300
Lee, 2021, Monitoring cerebral perfusion changes using arterial spin-labeling perfusion MRI after indirect revascularization in children with Moyamoya disease, Korean J. Radiol., 22, 1537, 10.3348/kjr.2020.1464
Lehman, 2022, Abstract WP176: compared to catheter angiogram MRA is a moderate predictor of suzuki grade in children With Moyamoya, Stroke, 53, 10.1161/str.53.suppl_1.WP176
Lehman, 2019, Contemporary and emerging magnetic resonance imaging methods for evaluation of moyamoya disease, Neurosurg. Focus, 47, 1, 10.3171/2019.9.FOCUS19616
Lei, 2020, Recognition of cognitive impairment in adult Moyamoya disease: a classifier based on high-order resting-state functional connectivity network, Front. Neural Circuits, 14, 85, 10.3389/fncir.2020.603208
Lei, 2017, Postoperative executive function in adult moyamoya disease: a preliminary study of its functional anatomy and behavioral correlates, J. Neurosurg., 126, 527, 10.3171/2015.12.JNS151499
Li, 2021, Investigation of altered spontaneous brain activities in patients with Moyamoya disease using percent amplitude of fluctuation method: a resting-state functional MRI study, Front. Neurol., 12, 2334, 10.3389/fneur.2021.801029
Li, 2019, Imaging of Moyamoya disease and moyamoya syndrome: current status, J. Comput. Assist. Tomogr., 43, 257, 10.1097/RCT.0000000000000834
Li, 2017, Cerebral gray matter volume reduction in subcortical vascular mild cognitive impairment patients and subcortical vascular dementia patients, and its relation with cognitive deficits, Brain Behav., 7, 10.1002/brb3.745
Lin, 2012, Clinical and immunopathological features of Moyamoya disease, PLOS One, 7, 10.1371/journal.pone.0036386
Lindenholz, 2018, The use and pitfalls of intracranial vessel wall imaging: how we do it, Radiology, 286, 12, 10.1148/radiol.2017162096
Liu, 2021, Cerebrovascular reactivity mapping using resting-state BOLD functional MRI in healthy adults and patients with Moyamoya disease, Radiology, 299, 419, 10.1148/radiol.2021203568
Liu, 2020, Association between white matter impairment and cognitive dysfunction in patients with ischemic Moyamoya disease, BMC Neurol., 20, 1, 10.1186/s12883-020-01876-0
Liu, 2020, Association between white matter impairment and cognitive dysfunction in patients with ischemic Moyamoya disease, BMC Neurol., 20, 1, 10.1186/s12883-020-01876-0
Liu, 2019, Collateral circulation in moyamoya disease a new grading system, Stroke, 50, 2708, 10.1161/STROKEAHA.119.024487
Lu, 2021, Clinical implications of the “brush sign” in susceptibility-weighted imaging for Moyamoya disease, Cerebrovasc. Dis., 50, 147, 10.1159/000511936
Lv, 2019, Hemorrhagic factors of Moyamoya disease, Am. J. Neuroradiol., 40, 1672
Machida, 2017, Subcortical low-intensity lesions on fluid-attenuated inversion recovery images after revascularization surgery for Moyamoya disease, World Neurosurg., 98, 512, 10.1016/j.wneu.2016.11.058
Maeda, 1999, “Ivy sign” on fluid-attenuated inversion-recovery images in childhood Moyamoya disease, AJNR: Am. J. Neuroradiol., 20, 1836
Mandell, 2017, Intracranial vessel Wall MRI: principles and expert consensus recommendations of the American society of neuroradiology, Am. J. Neuroradiol., 38, 218, 10.3174/ajnr.A4893
Marushima, 2011, Time-course analysis of brain perfusion single photon emission computed tomography using a three-dimensional stereotactic region-of-interest template in patients with moyamoya disease, World Neurosurg., 76, 304, 10.1016/j.wneu.2011.02.004
Matsushima, 1984, Moyamoya disease in children and its surgical treatment. Introduction of a new surgical procedure and its follow-up angiograms, Child’s Brain, 11, 155
Mattay, 2021, Current clinical applications of intracranial vessel wall MR imaging, Semin. Ultrasound, 42, 463, 10.1053/j.sult.2021.07.004
Mazzacane, 2022, Vessel wall magnetic resonance imaging in cerebrovascular diseases, Diagnostics, 12, 258, 10.3390/diagnostics12020258
Moon, 2020, Precentral and cerebellar atrophic changes in moyamoya disease using 7-T magnetic resonance imaging, Acta Radiol., 61, 487, 10.1177/0284185119866808
Mori, 2009, The leptomeningeal “ivy sign” on fluid-attenuated inversion recovery MR imaging in Moyamoya disease: a sign of decreased cerebral vascular reserve, AJNR: Am. J. Neuroradiol., 30, 930, 10.3174/ajnr.A1504
Mossa-Basha, 2016, Added value of vessel Wall MR imaging in the differentiation of Moyamoya vasculopathies in a non-Asian cohort, Stroke; a J. Cereb. Circ., 47, 1782, 10.1161/STROKEAHA.116.013320
Muraoka, 2018, Prediction of intracranial arterial stenosis progression in patients with Moyamoya vasculopathy: contrast-enhanced high-resolution magnetic resonance vessel wall imaging, World Neurosurg., 116, e1114, 10.1016/j.wneu.2018.05.181
Noguchi, 2013, Arterial spin-labeling MR imaging in Moyamoya disease compared with clinical assessments and other MR imaging findings, Eur. J. Radiol., 82, 10.1016/j.ejrad.2013.08.040
Paniukov, D., Marc Lebel, R., Giesbrecht, G., 1, & Lebel, C. (2020). Cerebral blood flow increases across early childhood. https://doi.org/10.1101/587139.
Proisy, 2016, Arterial spin labeling in clinical pediatric imaging, Diagn. Interv. Imaging, 97, 151, 10.1016/j.diii.2015.09.001
Qiao, 2020, MR diffusional kurtosis imaging–based assessment of brain microstructural changes in patients with Moyamoya disease before and after revascularization, AJNR: Am. J. Neuroradiol., 41, 246, 10.3174/ajnr.A6392
Qiao, 2017, Clinical assessment of cerebral hemodynamics in Moyamoya disease via multiple inversion time arterial spin labeling and dynamic susceptibility contrast-magnetic resonance imaging: a comparative study, J. Neuroradiol., 44, 273, 10.1016/j.neurad.2016.12.006
Qiao, 2017, Clinical assessment of cerebral hemodynamics in Moyamoya disease via multiple inversion time arterial spin labeling and dynamic susceptibility contrast-magnetic resonance imaging: a comparative study, J. Neuroradiol., 44, 273, 10.1016/j.neurad.2016.12.006
Quon, 2019, Arterial spin-labeling cerebral perfusion changes after revascularization surgery in pediatric moyamoya disease and syndrome, J. Neurosurg. Pediatr., 23, 486, 10.3171/2018.11.PEDS18498
Quon, 2020, Early diffusion magnetic resonance imaging changes in normal-appearing brain in pediatric Moyamoya disease, Neurosurgery, 86, 530, 10.1093/neuros/nyz230
Ravindra, 2020, Preoperative computed tomography perfusion in pediatric moyamoya disease: a single-institution experience, J. Neurosurg.: Pediatr., 25, 484
Roder, 2018, Estimation of severity of Moyamoya disease with [15O]water-positron emission tomography compared with magnetic resonance imaging and angiography, World Neurosurg., 117, e75, 10.1016/j.wneu.2018.05.163
Saeki, 2000, Comparative performance of magnetic resonance angiography and conventional angiography in moyamoya disease, J. Clin. Neurosci.: Off. J. Neurosurg. Soc. Australas., 7, 112, 10.1054/jocn.1999.0160
Sahoo, 2015, Outcome of revascularization in moyamoya disease: evaluation of a new angiographic scoring system, Asian J. Neurosurg., 10, 252, 10.4103/1793-5482.162681
Saito, 2011, Adverse effects of intravenous acetazolamide administration for evaluation of cerebrovascular reactivity using brain perfusion single-photon emission computed tomography in patients with major cerebral artery steno-occlusive diseases, Neurol. Med. -Chir., 51, 479, 10.2176/nmc.51.479
Sasagawa, 2018, Characteristics of cerebral hemodynamics assessed by CT perfusion in moyamoya disease, J. Clin. Neurosci.: Off. J. Neurosurg. Soc. Australas., 47, 183, 10.1016/j.jocn.2017.09.020
Schubert, 2014, Perfusion characteristics of Moyamoya disease: an anatomically and clinically oriented analysis and comparison, Stroke, 45, 101, 10.1161/STROKEAHA.113.003370
Scott, 2009, Moyamoya disease and Moyamoya syndrome, N. Engl. J. Med., 360, 1226, 10.1056/NEJMra0804622
Shang, 2020, Progress in moyamoya disease, Neurosurg. Rev., 43, 371, 10.1007/s10143-018-0994-5
Shiba, 2018, Significance of novel subcortical low intensity score on transient neurological events after revascularization surgery for moyamoya disease, Clin. Neurol. Neurosurg., 167, 70, 10.1016/j.clineuro.2018.02.019
Sivrioglu, 2016, Ivy sign in Moyamoya disease, Eurasia J. Med., 48, 58, 10.5152/eurasianjmed.2015.14142
Sollmann, 2021, Super-selective ASL and 4D ASL-based MR angiography in a patient with Moyamoya disease: case report, Clin. Neuroradiol., 31, 515, 10.1007/s00062-020-00961-8
Su, 2021, Preliminary study on the application of ultrahigh field magnetic resonance in Moyamoya disease, Oxid. Med. Cell. Longev., 2021
Su, 2022, Non-contrast hemodynamic imaging of Moyamoya disease with MR fingerprinting ASL: a feasibility study, Magn. Reson. Imaging, 88, 116, 10.1016/j.mri.2022.02.006
Suzuki, 2017, Pathophysiological consideration of medullary streaks on FLAIR imaging in pediatric moyamoya disease, J. Neurosurg. Pediatr., 19, 560, 10.3171/2017.1.PEDS16541
Takagi, 2007, Expression of hypoxia-inducing factor-1 alpha and endoglin in intimal hyperplasia of the middle cerebral artery of patients with Moyamoya disease, Neurosurgery, 60, 338, 10.1227/01.NEU.0000249275.87310.FF
Takagi, 2007, Histological features of middle cerebral arteries from patients treated for Moyamoya disease, Neurol. Med Chir., 47
Tanioka, 2016, A case of Moyamoya disease with a transient neurologic deterioration associated with subcortical low intensity on fluid-attenuated inversion recovery magnetic resonance images after bypass surgery, World Neurosurg., 88
Tompkins, 2021, Cortical thickness in clinical moyamoya disease: a magnetic resonance imaging study, Int. J. Dev. Neurosci., 81, 698, 10.1002/jdn.10146
Ukai, 2020, Arterial transit artifacts observed by arterial spin labeling in Moyamoya disease, J. Stroke Cerebrovasc. Dis., 29, 10.1016/j.jstrokecerebrovasdis.2020.105058
Vagal, 2009, The acetazolamide challenge: techniques and applications in the evaluation of chronic cerebral ischemia, Am. J. Neuroradiol., 30, 876, 10.3174/ajnr.A1538
Wang, 2022, Preoperative collateral perfusion using arterial spin labeling: a predictor of surgical collaterals in Moyamoya angiopathy, Front. Neurosci., 16, 133
Wang, 2017, The COntrast Enhancement of Intracranial Arterial Wall on High-resolution MRI and its clinical relevance in patients with Moyamoya vasculopathy, Sci. Rep., 7
Wang, 2017, The contrast enhancement of intracranial arterial wall on high-resolution MRI and its clinical relevance in patients with Moyamoya vasculopathy, Sci. Rep., 7, 1
Wang, 2014, Multi-delay arterial spin labeling perfusion MRI in moyamoya disease–comparison with CT perfusion imaging, Eur. Radiol., 24, 1135, 10.1007/s00330-014-3098-9
Wang, 2017, Impact of aberrant cerebral perfusion on resting-state functional MRI: a preliminary investigation of Moyamoya disease, PLOS One, 12, 10.1371/journal.pone.0176461
Wu, 2013, Quantitative analysis of digital subtraction angiography using optical flow method on occlusive cerebrovascular disease, Comput. Methods Prog. Biomed., 111, 693, 10.1016/j.cmpb.2013.06.012
Yamamoto, 2019, Progressive shrinkage of involved arteries in parallel with disease progression in Moyamoya disease, World Neurosurg., 122, e253, 10.1016/j.wneu.2018.10.001
Yang, 2021, High-resolution MRI of the vessel wall helps to distinguish moyamoya disease from atherosclerotic moyamoya syndrome, Clin. Radiol., 76, 392.e11, 10.1016/j.crad.2020.12.023
Yu, 2020, What and why: the current situation and future prospects of “ivy sign” in moyamoya disease, Ther. Adv. Chronic Dis., 11, 10.1177/2040622320960004
Yu, 2020, What and why: the current situation and future prospects of “ivy sign” in moyamoya disease, Ther. Adv. Chronic Dis., 11, 10.1177/2040622320960004
Zerweck, 2022, Hemodynamic evaluation of patients with Moyamoya angiopathy: comparison of resting-state fMRI to breath-hold fMRI and [ 15 O]water PET, Neuroradiology, 64, 553, 10.1007/s00234-021-02814-8
Zhang, 2013, Whole-brain CT perfusion and CT angiography assessment of Moyamoya disease before and after surgical revascularization: preliminary study with 256-Slice CT, PLOS One, 8
Zhang, 2018, Encephaloduroarteriosynangiosis for pediatric moyamoya disease: long-term follow-up of 100 cases at a single center, J. Neurosurg. Pediatr., 22, 173, 10.3171/2018.2.PEDS17591
Zhu, 2016, High-resolution magnetic resonance vessel wall imaging for intracranial arterial stenosis, Chin. Med. J., 129, 1363, 10.4103/0366-6999.182826
Zussman, B.M., Boghosian, G., Gorniak, R.J., Olszewski, M.E., Read, K.M., Siddiqui, K.M., & Flanders, A.E. 2012. The relative effect of vendor variability in CT perfusion results: a method comparison study. Http://Dx.Doi.Org/10.2214/AJR.10.6058, 197(2), 468–473. https://doi.org/10.2214/AJR.10.6058.