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Chapter Thirty Four - Cerebrovascular Ultrasound

from Imaging

Published online by Cambridge University Press:  13 December 2022

Louis R. Caplan
Affiliation:
Beth Israel Deaconess Medical Centre
Aishwarya Aggarwal
Affiliation:
John F. Kennedy Medical Center
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Summary

Ultrasound is a field that exemplifies the important marriage of physics and mathematics to medicine. Ultrasonography is among the top four major discoveries in medicine during the twentieth century, along with electron microscopy, nuclear magnetic resonance, and computed tomography. The discovery of the principle behind medical ultrasonography and its evolution into everyday medical practice is told through the story of remarkable individuals, intertwined careers, and life sagas.

Type
Chapter
Information
Stories of Stroke
Key Individuals and the Evolution of Ideas
, pp. 325 - 337
Publisher: Cambridge University Press
Print publication year: 2022

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References

Biography of Christian Doppler, Mathematician and Physicist. ThoughtCo.com. www.thoughtco.com/christian-doppler-biography-4174714.Google Scholar
Eden, A. The Search for Christian Doppler. Wien: Springer-Verlag, 1992.Google Scholar
Eden, A. Christian Doppler: Leben und Werk. Salzburg: Landespressebureau, 1988Google Scholar
Doppler, C. Über das farbige Licht der Doppelsterne und einiger anderer Gestirne des Himmels. Abh. Kgl. Böhm Ges. Wissensch. (Prag.) 1842:465–482.Google Scholar
Houdas, Y. Doppler, Buys-Ballot, Fizeau. Historical note on the discovery of the Doppler’s effect. Ann. Cardiol. Angéiol. 1991;40(4):209213. PMID 2053764.Google Scholar
Shampo, MA, Kyle, RA. Karl Theodore Dussik: Pioneer in ultrasound. Mayo Clin. Proc. 1995;70:1136.Google Scholar
Fields, WS, Lemak, NA. The History of Stroke. New York: Oxford University Press, 1989, pp. 129149.Google Scholar
Franklin, DL, Schlegel, WA, Rushner, RF. Blood flow measured by Doppler frequency shift of back-scattered ultrasound. Science 1961;134:564565.CrossRefGoogle ScholarPubMed
Veyrat, C. Cardiovascular applications of the Doppler technique: A long way from birth to scientific acceptance. J. Am. Soc. Echocardiogr. 1999;12:278284.CrossRefGoogle ScholarPubMed
Satomura, S, Tamura, A, Kido, Y. Study of blood flow in vessels by ultrasonics. Abst. Meeting Acoust. Soc. Jpn. 1958 Oct:81–82.Google Scholar
Satomura, S. Study of the flow patterns in peripheral arteries by ultrasonics. J. Acoust. Soc. Jpn. 1959;15:151158.Google Scholar
Kato, K, Kido, Y, Motomiya, M, Kaneko, Z, Kotani, H. On the mechanism of generation detected sound in ultrasonic flowmeter. Memoirs Inst. Sci. Res. Osaka Univ. 1962;19:5157.Google Scholar
Spencer, MP, Cambell, SD, Sealey, JL, Henry, FC, Lindbergh, J. Experiments on decompression bubbles in the circulation using ultrasonic and electromagnetic flow meters. J. Occupational Med. 1969;11:3844.Google Scholar
Seidel, S. Merrill P. Spencer, M.D. 1922–2006 eulogy. J. Neuroimaging 2007;17:13.Google Scholar
Toole, JF. In memorium. William Markley McKinney (1930–2003). Neurology 2004;62:536537.Google Scholar
Barber, FE, Baker, DW, Nation, AW, Strandness, DE Jr, Reid, JM. Ultrasonic duplex echo-Doppler scanner. IEEE Trans. Biomed. Eng. 1974;21:109113.Google Scholar
Strandness, DE. Duplex Scanning in Vascular Disorders. New York: Raven Press, 1990.Google Scholar
Reid, JM, Spencer, MP. Ultrasonic Doppler technique for imaging blood vessels. Science 1972;176:12351236.Google Scholar
Spencer, MP, Reid, JM. Quantitation of carotid stenosis with continuous wave Doppler ultrasound. Stroke 1979;10:326330.Google Scholar
Alexandrov, AV. The Spencer’s curve: Clinical implications of a classic hemodynamic model. J. Neuroimaging 2007;17:610.Google Scholar
Aaslid, R, Markwalder, TM, Nornes, H. Noninvasive transcranial Doppler ultrasound recording of flow velocity in basal cerebral arteries. J. Neurosurgery 1982;57:769774.CrossRefGoogle ScholarPubMed
Bribakk, AO. Career perspective: Alf O. Brubakk – Looking back to see ahead. Extrem. Physiol. Med. 2025;4:4. https://doi.org/10.1186/s13728–015-0023-z.Google Scholar
Aaslid, R (ed.). Transcranial Doppler Sonography. Wien: Springer-Verlag, 1986.Google Scholar
Sloan, MA, Alexandrov, AV, Tegeler, CH, Spencer, MP, Caplan, LR, Feldmann, E, et al. Assessment: Transcranial Doppler ultrasonography: Report of the Therapeutics and Technology Assessment Subcommittee of the American Academy of Neurology. Neurology 2004;62:14681481.Google Scholar
Griewing, B, Doherty, C, Kessler, CH. Power Doppler ultrasound examination of the intracerebral and extracerebral vasculature. J. Neuroimaging 1996;6:3235.CrossRefGoogle ScholarPubMed
Bartels, E. Color-Coded Duplex Ultrasonography of the Cerebral Vessels. Stuttgart: Schattauer, 1998.Google ScholarGoogle ScholarGoogle Scholar
Bogdahn, U, Becker, G, Schlief, R, et al. Contrast-enhanced transcranial color-coded real-time sonography. Stroke 1993;24:676684.CrossRefGoogle ScholarPubMed
Schoning, M, Buchholz, R, Walter, J. Comparative study of transcranial color duplex sonography and transcranial Doppler sonography in adults. J. Neurosurgery 1993;78:776784.CrossRefGoogle ScholarPubMed
Becker, G, Seufert, J, Bogdahn, U, Reichmann, H, Reiners, K. Degeneration of substantia nigra in chronic Parkinson’s disease visualized by transcranial color-coded real-time sonography. Neurology 1995 Jan;45(1):182184.CrossRefGoogle ScholarPubMed
Padayachee, TS, Bishop, CCR, Gosling, RG, et al. Monitoring middle cerebral artery blood flow velocity during carotid endarterectomy. Br. J. Surg. 1986;73:98100.Google Scholar
Steiger, HJ, Schaffler, L, Boll, J, Liechti, S. Results of microsurgical carotid endarterectomy: A prospective study with transcranial Doppler and EEG monitoring, and selective shunting. Acta Neurochir. (Wien) 1989;100:3138.Google Scholar
Spencer, MP, Thomas, GI, Nicholls, SC, Sauvage, LR. Detection of middle cerebral artery emboli during carotid endarterectomy using transcranial Doppler ultrasonography. Stroke 1990;21:415423.Google Scholar
Ackerstaff, RGA, Janes, C, Moll, FL, et al. The significance of emboli detection by means of transcranial Doppler ultrasonography monitoring in carotid endarterectomy. J. Vas. Surg. 1995;21:415423.CrossRefGoogle ScholarPubMed
Moehring, MA, Spencer, MP. Power M-mode transcranial Doppler ultrasound and simultaneous single gate spectrogram. Ultrasound Med. Biology 2002;28:4957.Google Scholar
Wong, KS, Li, H, Chan, YL, Ahuja, A, et al. Use of transcranial Doppler ultrasound to predict outcome in patients with intracranial large-artery occlusive disease. Stroke 2000;31(11):26412647.Google ScholarGoogle ScholarGoogle ScholarGoogle Scholar
Aaslid, R, Newell, DW, Stooss, R, Sorteberg, W, Lindegaard, KF. Assessment of cerebral autoregulation dynamics from simultaneous arterial and venous transcranial Doppler recordings in humans. Stroke 1991;22(9):11481154.CrossRefGoogle ScholarPubMed
Newell, DW, Aaslid, R, Lam, A, Mayberg, TS, Winn, HR. Comparison of flow and velocity during dynamic autoregulation testing in humans. Stroke 1994;25(4):793797.CrossRefGoogle ScholarPubMed
Piepgras, A, Schmiedek, P, Leinsinger, G, et al. A simple test to assess cerebrovascular reserve capacity using transcranial Doppler sonography and acetazolamide. Stroke 1990;21:13061311.Google ScholarGoogle ScholarGoogle Scholar
Yonas, H, Smith, HA, Durham, SR, Pentheny, SL, Johnson, DW. Increased stroke risk predicted by compromised cerebral blood flow reactivity. J. Neurosurgery 1993;79:483489.Google Scholar
Alexandrov, AV, Sharma, VK, Lao, AY, Tsivgoulis, G, Malkoff, MD, Alexandrov, AW. Reversed Robin Hood syndrome in acute ischemic stroke patients. Stroke 2007;38:30453048.Google Scholar
Becker, G, Bogdahn, U, Gehlberg, C, et al. Transcranial color-coded real-time sonography of intracranial veins: Normal values of blood flow velocities and findings in superior sagittal sinus thrombosis. J. Neuroimaging 1995;5:8794.Google ScholarGoogle Scholar
Valdueza, JM, Schultz, M, Harms, L, Einhäupl, KM. Venous transcranial Doppler ultrasound monitoring in acute dural sinus thrombosis: Report of two cases. Stroke 1995;26:11961199.Google ScholarGoogle Scholar
Polak, JF. Ultrasound energy and the dissolution of thrombus. N. Engl. J. Med. 2004;18(351):21542155.CrossRefGoogle Scholar
Alexandrov, AV, Demchuk, AM, Felberg, RA, et al. High rate of complete recanalization and dramatic clinical recovery during tPA infusion when continuously monitored with 2-Mhz transcranial Doppler monitoring. Stroke 2000;31:610614.Google ScholarGoogle Scholar
Adams, R, McKie, V, Nichols, F, et al. The use of transcranial ultrasonography to predict stroke in sickle cell disease. N. Engl. J. Med. 1992;326:605610.Google ScholarGoogle ScholarGoogle Scholar
Howard, G, Baker, WH, Chambless, LE, Howard, VJ, Jones, AM, Toole, JF. An approach for the use of Doppler ultrasound as a screening tool for hemodynamically significant stenosis (despite heterogeneity of Doppler performance). A multicenter experience. Asymptomatic Carotid Atherosclerosis Study Investigators. Stroke 1996;27:19511957.Google Scholar
Eliasziw, M, Rankin, RN, Fox, AJ, Haynes, RB, Barnett, HJ. Accuracy and prognostic consequences of ultrasonography in identifying severe carotid artery stenosis. North American Symptomatic Carotid Endarterectomy Trial (NASCET) Group. Stroke 1995;26:17471752.Google Scholar
Ringelstein, EB. Skepticism toward carotid ultrasonography: A virtue, an attitude, or fanaticism? Stroke 1995 Oct;26(10):17431746.CrossRefGoogle ScholarPubMed
Markus, HS, Droste, DW, Kaps, M, et al. Dual antiplatelet therapy with clopidogrel and aspirin in symptomatic carotid stenosis evaluated using doppler embolic signal detection: The Clopidogrel and Aspirin for Reduction of Emboli in Symptomatic Carotid Stenosis (CARESS) trial. Circulation 2005;111(17):22332240.Google Scholar
Markus, HS, King, A, Shipley, M, et al. Asymptomatic embolisation for prediction of stroke in the Asymptomatic Carotid Emboli Study (ACES): A prospective observational study. Lancet Neurol. 2010;9(7):663671.CrossRefGoogle ScholarPubMed
Alexandrov, AV, Molina, CA, Grotta, JC, et al. Ultrasound-enhanced systemic thrombolysis for acute ischemic stroke. N. Engl. J. Med. 2004;351:21702178.Google Scholar
Alexandrov, AV, Köhrmann, M, Soinne, L, et al., CLOTBUST-ER Trial Investigators. Safety and efficacy of sonothrombolysis for acute ischaemic stroke: A multicentre, double-blind, phase 3, randomised controlled trial. Lancet Neurol. 2019;18:338347.Google Scholar
Information is found on the website of the organization (www.asnweb.org). Charles Tegeler of Wake Forest University and Andrei Alexandrov served as directors for 30 years. The ASN also developed and successfully launched neurovascular specialist examinations for sonographers under the leadership of Alexander Razumovsky.Google Scholar
The organizers of the first and subsequent meetings included an illustrious group of ultrasound experts who focused their research on stroke: E. Bernd Ringelstein, Jurgen Klingelhofer, Eva Bartels (Germany), and Rob G. A. Ackerstaff (Netherlands).Google Scholar
Neurosurgeons: Karl Frederick Lindegaard (Oslo), Albrecht G. Harders (Freiburg), David Newell (Seattle), and Neil Martin (Los Angeles); neurologists: Gerhard-Michael von Reutern (Bad Nauheim), Michael Hennerici (Mannheim), Manfred Kaps (Giessen, Germany), Michael Sloan (Baltimore), Elietta Zanette (Rome), Viken Babikian (Boston), J. Phillip Kistler (Boston), Brian Chambers (Melbourne), Nathan Bornstein (Israel), Jean-Pierre Touboul (Paris), Mattthias Sturznegger (Switzerland), and Laszlo Csiba (Debrecen); vascular surgeons: Andrew Nicolaides (London), Ali F. AbuRhama (Charlottesville), and Tanja Rundek (Miami); radiologists: Ed Bluth (New Orleans), Daniel O’Leary (Boston), and Ed Grant (Los Angeles). And Katsuro Tachibana (Fukuoka), Hiroshi Furuhata (Tokyo), Fabienne Perren (Geneva), Georgios Tsivgoulis (Greece), Jurgen Klingelhoffer (Germany), Leandra Pourcelot (France), and R. G. A. Ackerstaff (Utrecht, Netherlands).Google Scholar

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