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Research ArticleNeurointervention
Open Access

Quantitative Characterization of the Hemodynamic Environment in Ruptured and Unruptured Brain Aneurysms

J.R. Cebral, F. Mut, J. Weir and C. Putman
American Journal of Neuroradiology January 2011, 32 (1) 145-151; DOI: https://doi.org/10.3174/ajnr.A2419
J.R. Cebral
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F. Mut
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References

  1. 1.↵
    1. Kassell NF,
    2. Torner JC,
    3. Haley EC,
    4. et al
    . The International Cooperative Study on the Timing of Aneurysm Surgery. Part 1. Overall management results. J Neurosurg 1990;73:18–36
    CrossRefPubMedWeb of Science
  2. 2.↵
    1. Wiebers DO,
    2. Whisnant JP,
    3. Huston J 3rd.,
    4. et al.
    , for the International Study of Unruptured Intracranial Aneurysms Investigators. Unruptured intracranial aneurysms: natural history, clinical outcome, and risks of surgical and endovascular treatment. Lancet 2003;362:103–10
    CrossRefPubMedWeb of Science
  3. 3.↵
    1. Tomasello F,
    2. D'Avella D,
    3. Salpietro FM,
    4. et al
    . Asymptomatic aneurysms: literature meta-analysis and indications for treatment. J Neurosurg Sci 1998;42:47–51
    PubMed
  4. 4.↵
    1. Nishioka H,
    2. Torner JC,
    3. Graf CJ,
    4. et al
    . Cooperative study of intracranial aneurysms and subarachnoid hemorrhage: a long-term prognostic study. II. Ruptured intracranial aneurysms managed conservatively. Arch Neurol 1984;41:1142–46
    CrossRefPubMedWeb of Science
  5. 5.↵
    1. White PM,
    2. Wardlaw JM
    . Unruptured intracranial aneurysms. J Neuroradiol 2003;30:336–50
    PubMedWeb of Science
  6. 6.↵
    1. Ujiie H,
    2. Tamano Y,
    3. Sasaki K,
    4. et al
    . Is the aspect ratio a reliable index for predicting the rupture of a saccular aneurysm? Neurosurgery 2001;48:495–503
    CrossRefPubMedWeb of Science
  7. 7.↵
    1. Raghavan ML,
    2. Ma B,
    3. Harabaugh RE
    . Quantified aneurysm shape and rupture risk. J Neurosurg 2005;102:355–62
    CrossRefPubMedWeb of Science
  8. 8.↵
    1. Ma B,
    2. Harbaugh RE,
    3. Raghavan ML
    . Three-dimensional geometrical characterization of cerebral aneurysms. Ann Biomed Eng 2004;32:264–73
    CrossRefPubMedWeb of Science
  9. 9.↵
    1. Millan D,
    2. Dempere-Marco L,
    3. Pozo JM,
    4. et al
    . Morphological characterization of intracranial aneurysms using 3-D moment invariants. IEEE Trans Med Imaging 2007;26:1270–82
    CrossRefPubMedWeb of Science
  10. 10.↵
    1. Stehbens WE
    1. Stehbens WE
    . Intracranial aneurysms. In: Stehbens WE. Pathology of the Cerebral Blood Vessels. St. Louis, Missouri: CV Mosby; 1972:351–470
  11. 11.↵
    1. Sforza D,
    2. Putman CM,
    3. Cebral JR
    . Hemodynamics of cerebral aneurysms. Annu Rev Fluid Mechanics 2009;41:91–107
    CrossRefPubMedWeb of Science
  12. 12.↵
    1. Kayembe KN,
    2. Sasahara M,
    3. Hazama F
    . Cerebral aneurysms and variations of the circle of Willis. Stroke 1984;15:846–50
    Abstract/FREE Full Text
  13. 13.↵
    1. Nixon AM,
    2. Gunel M,
    3. Sumpio BE
    . The critical role of hemodynamics in the development of cerebral vascular disease. J Neurosurg 2010;112:1240–53
    CrossRefPubMedWeb of Science
  14. 14.↵
    1. Shojima M,
    2. Oshima M,
    3. Takagi K,
    4. et al
    . Magnitude and role of wall shear stress on cerebral aneurysm: computational fluid dynamic study of 20 middle cerebral artery aneurysms. Stroke 2004;35:2500–05
    Abstract/FREE Full Text
  15. 15.↵
    1. Steinman DA,
    2. Milner JS,
    3. Norley CJ,
    4. et al
    . Image-based computational simulation of flow dynamics in a giant intracranial aneurysm. AJNR Am J Neuroradiol 2003;24:559–66
    Abstract/FREE Full Text
  16. 16.↵
    1. Jou LD,
    2. Quick CM,
    3. Young WL,
    4. et al
    . Computational approach to quantifying hemodynamic forces in giant cerebral aneurysms. AJNR Am J Neuroradiol 2003;24:1804–10
    Abstract/FREE Full Text
  17. 17.↵
    1. Cebral JR,
    2. Mut F,
    3. Weir J,
    4. et al
    . Association of hemodynamic characteristics and cerebral aneurysm rupture. AJNR Am J Neuroradiol 2010 Nov 24. [Epub ahead of print]
  18. 18.↵
    1. Cebral JR,
    2. Castro MA,
    3. Appanaboyina S,
    4. et al
    . Efficient pipeline for image-based patient-specific analysis of cerebral aneurysm hemodynamics: technique and sensitivity. IEEE Trans Med Imaging 2005;24:457–67
    CrossRefPubMedWeb of Science
  19. 19.↵
    1. Yim PJ,
    2. Cebral JR,
    3. Mullick R,
    4. et al
    . Vessel surface reconstruction with a tubular deformable model. IEEE Trans Med Imaging 2001;20:1411–21
    CrossRefPubMed
  20. 20.↵
    1. Castro MA,
    2. Putman CM,
    3. Cebral JR
    . Computational fluid dynamics modeling of intracranial aneurysms: effects of parent artery segmentation on intra-aneurysmal hemodynamcis. AJNR Am J Neuroradiol 2006;27:1703–09
    Abstract/FREE Full Text
  21. 21.↵
    1. Cebral JR,
    2. Castro MA,
    3. Putman CM,
    4. et al
    . Flow-area relationship in internal carotid and vertebral arteries. Physiol Meas 2008;29:585–94
    CrossRefPubMed
  22. 22.↵
    1. Jiang J,
    2. Strother C
    . Computational fluid dynamics simulations of intracranial aneurysms at varying heart rates: a “patient-specific” study. J Biomech Eng 2009;131:091001
    CrossRefPubMed
  23. 23.↵
    1. Leondes CT
    1. Cebral JR,
    2. Löhner R,
    3. Appanaboyina S,
    4. et al
    . Image-based computational hemodynamics methods and their application for the analysis of blood flow past endovascular devices. In: Leondes CT. Biomechanical Systems: Techniques and Applications, Volume I: Computer Techniques and Computational Methods in Biomech. Hackensack, New Jersey: World Scientific; 2007:29–85
  24. 24.↵
    1. Mut F,
    2. Aubry R,
    3. Löhner R,
    4. et al
    . Fast numerical solutions of patient-specific blood flows in 3D arterial systems. Commun Numer Meth Engng 2010;26:73–85
  25. 25.↵
    1. Gao L,
    2. Hoi Y,
    3. Swartz DD,
    4. et al
    . Nascent aneurysm formation at the basilar terminus induced by hemodynamics. Stroke 2008;39:2085–90
    Abstract/FREE Full Text
  26. 26.↵
    1. Metaxa E,
    2. Tremmel M,
    3. Xiang J,
    4. et al
    . High wall shear stress and positive wall shear stress gradient trigger the initiation of intracranial aneurysms. In: Proceedings of the Summer Bioengineering Conference, Lake Tahoe, California. June 17–21, 2009
  27. 27.↵
    1. Chatziprodromou I,
    2. Tricoli A,
    3. Poulikakos D,
    4. et al
    . Haemodynamics and wall remodelling of a growing cerebral aneurysm: a computational model. J Biomech 2007;40:412–26. Epub 2006 Mar 9
    CrossRefPubMedWeb of Science
  28. 28.↵
    1. Humphrey JD
    . Vascular adaptation and mechanical homeostasis at tissue, cellular, and sub-cellular levels. Cell Biochem Biophys 2008;50:53–78. Epub 2007 Oct 24
    CrossRefPubMedWeb of Science
  29. 29.↵
    1. Socci L,
    2. Pennati G,
    3. Gastaldi D,
    4. et al
    . Modeling and mechanobiology of cerebral aneurysms. J Appl Biomater Biomech 2008;6:63–71
    PubMed
  30. 30.↵
    1. Sho E,
    2. Sho M,
    3. Singh TM,
    4. et al
    . Blood flow decrease induces apoptosis of endothelial cells in previously dilated arteries resulting from chromic high blood flow. Arterioscler Thromb Vasc Biol 2001;21:1139–45
    Abstract/FREE Full Text
  31. 31.↵
    1. Hara A,
    2. Yoshimi N,
    3. Mori H
    . Evidence for apoptosis in human intracranial aneurysms. Neurol Res 1998;20:127–30
    PubMedWeb of Science
  32. 32.↵
    1. Fukuda S,
    2. Hashimoto N,
    3. Naritomi H,
    4. et al
    . Prevention of rat cerebral aneurysm formation by inhibition of nitric oxide synthase. Circulation 2000;101:2532–38
    Abstract/FREE Full Text
  33. 33.↵
    1. Nakatani H,
    2. Hashimoto N,
    3. Kang Y,
    4. et al
    . Cerebral blood flow patterns at major blood vessel bifurcations and aneurysms in rats. J Neurosurg 1991;74:258–62
    CrossRefPubMed
  34. 34.↵
    1. Griffith TM
    . Modulation of blood flow and tissue perfusion by endothelium-derived relaxing factor. Exp Physiol 1994;779:873–913
  35. 35.↵
    1. Moncada S,
    2. Plamer RM,
    3. Higgs EA
    . Nitric oxide: physiology, pathology and pharmacology. Exp Physiol 1991;43:109–42
  36. 36.↵
    1. Moritake K,
    2. Handa H,
    3. Hayashi K,
    4. et al
    . Experimental studies on intracranial aneurysms (a preliminary report): some biomechanical considerations on the wall structures of intracranial aneurysms and experimentally produced aneurysms. [in Japanese] No Shinkei Sheka 1973;1:115–23
  37. 37.↵
    1. Cebral JR,
    2. Castro MA,
    3. Burgess JE,
    4. et al
    . Characterization of cerebral aneurysms for assessing risk of rupture using patient-specific computational hemodynamics models. AJNR Am J Neuroradiol 2005;26:2550–59
    Abstract/FREE Full Text
  38. 38.↵
    1. Speelman L,
    2. Bosboom EM,
    3. Schurink GW,
    4. et al
    . Patient-specific AAA wall stress analysis: 99-percentile versus peak stress. Eur J Vasc Endovasc Surg 2008;36:668–76
    CrossRefPubMed
  39. 39.↵
    1. Castro MA,
    2. Putman CM,
    3. Cebral JR
    . Patient-specific computational fluid dynamics modeling of anterior communicating artery aneurysms: a study of the sensitivity of intra-aneurysmal flow patterns to flow conditions in the carotid arteries. AJNR Am J Neuroradiol 2006;27:2061–68
    Abstract/FREE Full Text
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J.R. Cebral, F. Mut, J. Weir, C. Putman
Quantitative Characterization of the Hemodynamic Environment in Ruptured and Unruptured Brain Aneurysms
American Journal of Neuroradiology Jan 2011, 32 (1) 145-151; DOI: 10.3174/ajnr.A2419

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Quantitative Characterization of the Hemodynamic Environment in Ruptured and Unruptured Brain Aneurysms
J.R. Cebral, F. Mut, J. Weir, C. Putman
American Journal of Neuroradiology Jan 2011, 32 (1) 145-151; DOI: 10.3174/ajnr.A2419
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