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9C - TCD protocol

from 9 - Transcranial insonation

Published online by Cambridge University Press:  05 May 2016

László Csiba
Affiliation:
Department of Neurology, Debreceni Egyetem, Hungary
Claudio Baracchini
Affiliation:
Department of Neuroscience, Università degli Studi di Padova, Italy
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Publisher: Cambridge University Press
Print publication year: 2016

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References

Aaslid, R, Markwalder, TM, Nornes, H. Noninvasive transcranial Doppler ultrasound recording of flow velocity in basal cerebral arteries. Neurosurgery. 1982;57:769774.Google Scholar
Hennerici, M, Neuerburg-Heusler, D. Vascular Diagnosis with Ultrasound. Stuttgart: Thieme; 1998, 89123.Google Scholar
Alexandrov, AV, Sloan, MA, Tegeler, CH, et al. Practical standards for transcranial Doppler (TCD) ultrasound. Part II. Clinical indications and expected outcomes. J Neuroimaging. 2012;22:214224.Google Scholar
Tsivgoulis, G, Sharma, VK, Lao, AZ, et al. Validation of transcranial Doppler compared with computed angiography in acute cerebral ischemia. Stroke. 2007;38:12451249.Google Scholar
Brunsen, AM, Lavados, PM, Hoppe, A, et al. Accuracy of transcranial Doppler compared with CT angiography in diagnosis arterial obstructions in acute ischemic stroke. Stroke. 2009;40:20372041.Google Scholar
Lachtaw, RE, Alberts, MJ, Lev, MH, et al.; American Heart Association Council on Cardiovascular Radiology and Intervention, Stroke Council. Recommendations for imaging of acute ischemic stroke: a scientific statement from the American Heart Association. Stroke. 2009;40:36463678.Google Scholar
Feldmann, E, Wilterdink, JL, Kosinski, A, et al.; Stroke Outcomes and Neuroimaging of Intracranial Atherosclerosis (SONIA) Trial Investigators. The Stroke Outcomes and Neuroimaging of Intracranial Atherosclerosis (SONIA) trial. Neurology. 2007;68:20992106.Google Scholar
Alexandrov, AV, Sloan, MA, Wong, LKS, et al. Practical standards for transcranial Doppler (TCD) ultrasound. Part I – test performance. J Neuroimaging. 2007;17:1118.Google Scholar
Postert, T, Federlein, J, Przuntek, H, Buttner, T. Insufficient and absent acoustic temporal bone window: potential and limitations of transcranial contrast-enhanced color-coded sonography and contrast-enhanced power-based sonography. Ultrasound Med Biol. 1997;23:857862.Google Scholar
American Institute of Ultrasound in Medicine (AIUM). AIUM practice guideline for documentation of an ultrasound examination. J Ultrasound Med. 2014; 33(6):10981102.Google Scholar
Aaslid, R. Transcranial Doppler Sonography. Wien: Springer-Verlag; 1986, 3959.Google Scholar
Arnolds, BJ, von Reutern, GM. Transcranial Doppler sonography: examination technique and normal reference values. Ultrasound Med Biol. 1986;20:115123.CrossRefGoogle Scholar
Rossitti, S, Volkmann, R, Stephensen, H. The transoccipital approach for transcranial Doppler ultrasonography of the vertebrobasilar circulation. Neurochirurgia. 1993;36:148150.Google ScholarPubMed
Lindegaard, K, Bakke, S, Grolimund, P, et al. Assessment of intracranial hemodynamics in carotid artery disease by noninvasive transcranial Doppler ultrasound. J Neurosurg. 1985;63:890898.Google Scholar
Hennerici, M, Rautenberg, W, Sitzer, G, Schwartz, A. Transcranial Doppler ultrasound for the assessment of intracranial arterial flow velocity – Part I. Surg Neurol. 1987;27:439448.Google Scholar
Zanette, EM, Fieschi, C, Bozzao, L, et el. Comparison of cerebral angiography and transcranial Doppler sonography in acute stroke. Stroke. 1989;20:899903.CrossRefGoogle ScholarPubMed
Titianova, E, Velcheva, I, Mateev, Р. Effects of aging and hematocrit on cerebral blood flow velocity in patients with unilateral cerebral infarctions: a Doppler ultrasound evaluation. Angiology. 1993;44:100106.Google Scholar
Titianova, E. Diagnostic Value of Neurosonography in Patients with Ischemic Disturbances of Cerebral Circulation. PhD thesis, Sofia, 1990.Google Scholar
Titianova, E, Niederkorn, K, Christova, E, eds. Atlas of Neurosonology. Sofia: Coty Ltd; 2008, 102144.Google Scholar
Newell, DW, Winn, HR. Transcranial Doppler in cerebral vasospasm. Neurosurg Clin N Am. 1990;2:319328.Google Scholar
Diehl, RR, Henkes, H, Nahser, H-C, Kuhne, D, Berlit, P. Blood flow velocity and vasomotor reactivity in patients with arteriovenous malformations. A transcranial doppler study. Stroke. 1994;5:15741580.Google Scholar
Baumgartner, RW. Transcranial insonation. In: Baumgartner, RW, ed. Handbook on Neurovascular Ultrasound. Front. Neurol. Neurosci. Vol. 21. Basel: Karger; 2006, 105–16.Google Scholar
Alexandrov, AV, Sloan, MA, Wong, LKS, et al. Practice standards for transcranial Doppler ultrasound: Part I – test performance. J Neuroimaging. 2007;17:1118.Google Scholar
Wang, Q, Hong, YE, Yingying, SU. Transcranial Doppler sonography monitors cerebral blood flow of mannitol-treated patients with acute large hemispheric infarction. Turk Neurosurg. 2014;24:333336.Google ScholarPubMed
Mackinnon, AD, Aaslid, R, Markus, HS. Ambulatory transcranial Doppler cerebral embolic signal detection in symptomatic and asymptomatic carotid stenosis. Stroke. 2005;36(8):17261730.CrossRefGoogle ScholarPubMed
Hynynen, K, McDannold, N, Vykhodtseva, N, et al. Focal disruption of the blood-brain barrier due to 260-kHz ultrasound bursts: a method for molecular imaging and targeted drug delivery. J Neurosurg. 2006;105:445454.Google Scholar
Marquet, F, Teichert, T, Wu, SY, et al. Real-time, transcranial monitoring of safe blood-brain barrier opening in non-human primates. PLoS One. 2014;9(2):e84310.Google Scholar

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