DocumentCode
1824807
Title
The Role of Intracarotid Cold Saline Infusion on a Theoretical Brain Model Incorporating the Circle of Willis and Cerebral Venous Return
Author
Neimark, M.A. ; Konstas, A.-A. ; Choi, Jun H. ; Laine, A.F. ; Pile-Spellman, J.
Author_Institution
Columbia Univ., New York
fYear
2007
fDate
22-26 Aug. 2007
Firstpage
1140
Lastpage
1143
Abstract
This study describes a theoretical model of brain cooling by intracarotid cold saline infusion which takes into account redistribution of cold perfusate through the circle of Willis (CoW) and cold venous return (VR) from the head. This model is developed in spherical coordinates on a four tissue layer hemispherical geometrical configuration. Temperature evolution is modeled according to the Pennes bioheat transfer equation. Simulations were run over a 1 hour period and 30 ml/min of freezing cold saline with the baseline model (no VR, no CoW), VR model (without CoW), and CoW model (with VR). The VR model demonstrates continuing temperature drop in the treatment region of the brain not observed in the baseline model and its final mean ipsilateral anterior temperature was approximately 31 degC. The temperature effect in the CoW model was present but less robust in the ipsilateral anterior region, as final temperature was 32 degC. However, cooling was also achieved in contralateral and posterior brain regions. This model continues to demonstrate the feasibility of intracarotid cold saline infusion for ischemic stroke therapy.
Keywords
biothermics; blood vessels; brain; cooling; heat transfer; neurophysiology; patient treatment; physiological models; Pennes bioheat transfer equation; brain cooling; brain model; cerebral venous return; circle of Willis; cold perfusate redistribution; contralateral brain regions; four-tissue layer hemispherical geometrical configuration; intracarotid cold saline infusion; ipsilateral anterior temperature; posterior brain regions; spherical coordinates; temperature 32 C; temperature drop; Arteries; Blood; Brain modeling; Catheters; Cooling; Equations; Robustness; Solid modeling; Temperature; Virtual reality; Blood Volume; Body Temperature; Body Temperature Regulation; Brain; Carotid Arteries; Cerebral Veins; Cerebrovascular Circulation; Circle of Willis; Cold Temperature; Computer Simulation; Energy Transfer; Humans; Hypothermia, Induced; Infusions, Intra-Arterial; Models, Biological; Sodium Chloride;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2007. EMBS 2007. 29th Annual International Conference of the IEEE
Conference_Location
Lyon
ISSN
1557-170X
Print_ISBN
978-1-4244-0787-3
Type
conf
DOI
10.1109/IEMBS.2007.4352497
Filename
4352497
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