DocumentCode :
1258022
Title :
Multiscale Modeling of Intracranial Aneurysms: Cell Signaling, Hemodynamics, and Remodeling
Author :
Ho, Henry ; Suresh, Vikram ; Kang, Wei ; Cooling, M.T. ; Watton, P.N. ; Hunter, P.J.
Author_Institution :
Auckland Bioeng. Inst., Univ. of Auckland, Auckland, New Zealand
Volume :
58
Issue :
10
fYear :
2011
Firstpage :
2974
Lastpage :
2977
Abstract :
The genesis, growth, and rupture of intracranial aneurysms (IAs) involve physics at the molecular, cellular, blood vessel, and organ levels that occur over time scales ranging from seconds to years. Comprehensive mathematical modeling of IAs, therefore, requires the description and integration of events across length and time scales that span many orders of magnitude. In this letter, we outline a strategy for mulstiscale modeling of IAs that involves the construction of individual models at each relevant scale and their subsequent combination into an integrative model that captures the overall complexity of IA development. An example of the approach is provided using three models operating at different length and time scales: 1) shear stress induced nitric oxide production; 2) smooth muscle cell apoptosis; and 3) fluid-structure-growth modeling. A computational framework for combining them is presented. We conclude with a discussion of the advantages and challenges of the approach.
Keywords :
biochemistry; bioelectric potentials; blood vessels; brain; cellular biophysics; diseases; haemodynamics; molecular biophysics; muscle; nitrogen compounds; physiological models; blood vessel; cell signaling; cellular physics; fluid structure growth modeling; hemodynamics; integrative model; intracranial aneurysm development; mathematical modeling; molecular physics; mulstiscale modeling; multiscale modeling; nitric oxide production; organ; shear stress; smooth muscle cell apoptosis; Aneurysm; Arteries; Biological system modeling; Computational modeling; Hemodynamics; Mathematical model; Stress; Apoptosis; biomechanics; cerebral aneurysms; modeling; multiscale; signaling pathways; Apoptosis; Biomechanics; Calcium Signaling; Cerebrovascular Circulation; Circle of Willis; Humans; Intracranial Aneurysm; Models, Biological; Myocytes, Smooth Muscle; Signal Transduction;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2011.2160638
Filename :
5930342
Link To Document :
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