Key result
Computational hemodynamic analysis provides valuable insights into cerebral aneurysm initiation, progression, rupture, and the effectiveness of endovascular treatments such as coiling and stenting.
Computational hemodynamic analysis offers valuable insights for understanding cerebral aneurysm progression and optimizing endovascular treatment planning.
Hemodynamic modeling may refine aneurysm embolization planning; leaves open need for prospective clinical validation.
The progression of a cerebral aneurysm involves degenerative arterial wall remodeling. Various hemodynamic parameters are suspected to be major mechanical factors related to the genesis and progression of vascular diseases. Flow alterations caused by the insertion of coils and stents for interventional aneurysm treatment may affect the aneurysm embolization process. Therefore, knowledge of hemodynamic parameters may provide physicians with an advanced understanding of aneurysm progression and rupture, as well as the effectiveness of endovascular treatments. Progress in medical imaging and information technology has enabled the prediction of flow fields in the patient-specific blood vessels using computational analysis. In this paper, recent computational hemodynamic studies on cerebral aneurysm initiation, progress, and rupture are reviewed. State-of-the-art computational aneurysmal flow analyses after coiling and stenting are also summarized. We expect the computational analysis of hemodynamics in cerebral aneurysms to provide valuable information for planning and follow-up decisions for treatment.
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Jeong et al. (2012) conducted a review in Cerebral aneurysms. Computational hemodynamic analysis was evaluated. Computational hemodynamic analysis provides valuable insights into cerebral aneurysm initiation, progression, rupture, and the effectiveness of endovascular treatments such as coiling and stenting.
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