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Research ArticleINTERVENTIONAL

Characterization of Cerebral Aneurysms for Assessing Risk of Rupture By Using Patient-Specific Computational Hemodynamics Models

Juan R. Cebral, Marcelo A. Castro, James E. Burgess, Richard S. Pergolizzi, Michael J. Sheridan and Christopher M. Putman
American Journal of Neuroradiology November 2005, 26 (10) 2550-2559;
Juan R. Cebral
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Marcelo A. Castro
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James E. Burgess
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Richard S. Pergolizzi
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Michael J. Sheridan
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Christopher M. Putman
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References

  1. ↵
    Stehbens WE. Intracranial aneurysms. In: Pathology of the cerebral blood vessels. St. Louis, Mo: Mosby;1972 :351–470
  2. Foutrakis GN, Yonas H, Sclabassi RJ. Saccular aneurysm formation in curved and bifurcation arteries. AJNR Am J Neuroradiol 1999;20:1309–1317
    Abstract/FREE Full Text
  3. ↵
    Weir B. Unruptured intracranial aneurysms: a review. J Neurosurg 2002;96:3–42
    CrossRefPubMedWeb of Science
  4. ↵
    Linn FH, Rinkel GJ, Algra A, et al. Incidence of subarachnoid hemorrhage: role of region, year, and rate of computed tomography: a meta-analysis. Stroke 1996;27:625–629
    Abstract/FREE Full Text
  5. Tomasello F, D’Avella D, Salpietro FM, et al. Asymptomatic aneurysms: literature meta-analysis and indications for treatment. J Neurosurg Sci 1998;42:47–51
  6. Winn HR, Jane JA, Taylor J, et al. Prevalence of asymptomatic incidental aneurysms: review of 4568 arteriograms. J Neurosurg 2002;96:43–49
    CrossRefPubMedWeb of Science
  7. ↵
    Kaminogo M, Yonekura M, Shibata S. Incidence and outcome of multiple intracranial aneurysms in a defined population. Stroke 2003;34:16–21
    Abstract/FREE Full Text
  8. ↵
    Kayembe KNT, Sasahara M, Hazama F. Cerebral aneurysms and variations of the circle of Willis. Stroke 1984;15:846–850
    Abstract/FREE Full Text
  9. ↵
    Nakatani H, Hashimoto N, Kang. Cerebral blood flow patterns at major vessel bifurcations and aneurysms in rats. J Neurosurg 1991;74:258–262
    CrossRefPubMed
  10. Gonzalez CF, Choi YI, Ortega V. Intracranial aneurysms: flow analysis of their origin and progression. AJNR Am J Neuroradiol 1992;13:181–188
    Abstract/FREE Full Text
  11. Gobin YP, Counard JL, Flaud P. In vitro study of haemodynamics in a giant saccular aneurysm model: influence of flow dynamics in the parent vessel and effects of coil embolization. Neuroradiology 1994;36:530–536
    CrossRefPubMed
  12. Burleson AC, Strother CM, Turitto VT. Computer modeling of intracranial saccular and lateral aneurysms for the study of their hemodynamics. Neurosurgery 1995;37:774–784
    PubMed
  13. Tenjin H, Asakura F, Nakahara Y. Evaluation of intra-aneurysmal blood velocity by time-density curve analysis and digital subtraction angiography. AJNR Am J Neuroradiol 1998;19:1303–1307
    Abstract
  14. Ujiie H, Tachibana H, Hiramtsu O. Effects of size and shape (aspect ratio) on the hemodynamics of saccular aneurysms: a possible index for the surgical treatment of intracranial aneurysms. Neurosurgery 1999;45:119–130
    CrossRefPubMedWeb of Science
  15. Tateshima S, Murayama Y, Villablanca JP. Intraaneurysmal flow dynamics study featuring an acrylic aneurysm model manufactured using computerized tomography angiogram as a mold. J Neurosurg 2001;95:1020–1027
    PubMedWeb of Science
  16. ↵
    Satoh T, Onoda K, Tsuchimoto S. Visualization of intra-aneurysmal flow patterns with transluminal flow images of 3D MR angiograms in conjunction with aneurysmal configurations. AJNR Am J Neuroradiol 2003;24:1436–1445
    Abstract/FREE Full Text
  17. ↵
    Steinman DA, Milner JS, Norley CJ, et al. Image-based computational simulation of flow dynamics in a giant intracranial aneurysm. AJNR Am J Neuroradiol 2003;24:559–566
    Abstract/FREE Full Text
  18. Jou L-D, Quick CM, Young WL, et al. Computational approach to quantifying hemodynamic forces in giant cerebral aneurysms. AJNR Am J Neuroradiol 2003;24:1804–1810
    Abstract/FREE Full Text
  19. Cebral JR, Hernandez M, Frangi AF, et al. Subject-specific modeling of intracranial aneurysms. Proc SPIE Med Imaging 2004;5369:319–327
  20. ↵
    Hassan T, Ezura M, Timofeev EV, et al. Computational simulation of therapeutic parent artery occlusion to treat giant vertebrobasilar aneurysm. AJNR Am J Neuroradiol 2004;25:63–68
    Abstract/FREE Full Text
  21. ↵
    Yim PJ, Vasbinder B, Ho VH, Choyke PL. A deformable isosurface for vascular applications. Proc SPIE Med Imaging 2002;4684:1390–1397
  22. ↵
    Cebral JR, Hernandez M, Frangi AF: Computational analysis of blood flow dynamics in cerebral aneurysms from CTA and 3D rotational angiography image data. In: Doblare M, Cerrolaza M, Rodrigues H, eds. Proceedings of the International Congress on Computational Bioengineering. Zaragoza, Spain: International Congress on Computational Bioengineering;2003;1:191–198
  23. Cebral JR, Castro MA, Burgess JE, et al. Cerebral aneurysm hemodynamics modeling from 3d rotational angiography. In: Proceedings of the IEEE International Symposium on Biomedical Imaging. Arlington, VA: International Symposium on Biomedical Imaging;2004 :944–947
  24. ↵
    Cebral JR, Castro MA, Appanaboyina S, et al.: Efficient pipeline for image-based patient-specific analysis of cerebral aneurysm hemodynamics: Technique and sensitivity. IEEE Trans Med Imaging 2004;24:457–467
  25. ↵
    Mazumdar J. Biofluid mechanics. Singapore: World Scientific;1992
  26. ↵
    Kundu PK, Cohen IM. Fluid mechanics. San Diego, CA: Academic;2004
  27. ↵
    Womersley JR. Method for the calculation of velocity, rate of flow and viscous drag in arteries when the pressure gradient is known. J Physiol 1955;127:553–563
  28. ↵
    Taylor CA, Hughes TJR, Zarins CK. Finite element modeling of blood flow in arteries. Comp Methods Appl Mech Engin 1998;158:155–196
  29. ↵
    Cebral JR, Castro MA, Soto O, et al. Blood flow models of the circle of Willis from magnetic resonance data. J Engin Math 2003;47:369–386
  30. ↵
    Soto O, Löhner R, Cebral JR, et al. A stabilized edge-based implicit incompressible flow formulation. Comp Methods Appl Mech Engin 2004;193:2139–2154
  31. ↵
    Saad Y. Iterative methods for sparse linear systems. Boston: PWS Publishing;1996
  32. ↵
    Löhner R, Yang C, Cebral JR, et al. Advances in FEFLO. In: Proceedings of the AIAA Aerospace Sciences meeting. Reno, Nevada. Reston, VA: American Institute of Aeronautics and Astronautics;2001;AIAA-01-0592
  33. ↵
    Cebral JR, Yim PJ, Löhner R, et al. Blood flow modeling in carotid arteries using computational fluid dynamics and magnetic resonance imaging. Acad Radiol 2002;9:1286–1299
    CrossRefPubMed
  34. ↵
    Cebral JR, Putman CM, Pergolizzi R, et al. Multi-modality image-based models of carotid artery hemodynamics. Proc SPIE Med Imaging 2004;5369:529–538
  35. ↵
    Yim PJ, Cebral JR, Weaver A, et al. Estimation of the differential pressure at renal artery stenoses. Magn Reson Med 2004;51:969–977
    CrossRefPubMed
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American Journal of Neuroradiology: 26 (10)
American Journal of Neuroradiology
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Juan R. Cebral, Marcelo A. Castro, James E. Burgess, Richard S. Pergolizzi, Michael J. Sheridan, Christopher M. Putman
Characterization of Cerebral Aneurysms for Assessing Risk of Rupture By Using Patient-Specific Computational Hemodynamics Models
American Journal of Neuroradiology Nov 2005, 26 (10) 2550-2559;

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Characterization of Cerebral Aneurysms for Assessing Risk of Rupture By Using Patient-Specific Computational Hemodynamics Models
Juan R. Cebral, Marcelo A. Castro, James E. Burgess, Richard S. Pergolizzi, Michael J. Sheridan, Christopher M. Putman
American Journal of Neuroradiology Nov 2005, 26 (10) 2550-2559;
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