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Angiographic analysis of blood flow modification in cerebral aneurysm models with a new asymmetric stent

  • SUNY Buffalo

Research output: Contribution to journalConference articlepeer-review

19 Scopus citations

Abstract

We have built new asymmetric stents for minimally invasive endovascular treatment of cerebral aneurysms. Each asymmetric stent consists of a commercial stent with a micro-welded circular mesh patch. The blood flow modification in aneurysm-vessel phantoms due to these stents was evaluated using x-ray angiographic analysis. However, the density difference between the radiographic contrast and the blood gives rise to a gravity effect, which was evaluated using an initial optical dye-dilution experiment. For the radiographic evaluations, curved-vessel phantoms instead of simple straight side-wall aneurysm phantoms were used in the characterization of meshes/stents. Six phantoms (one untreated, one treated with a commercial stent, and four treated with different asymmetric stents) with similar morphologies were used for comparison. We calculated time-density curves of the aneurysm region and then calculated the peak value (Pk) and washout rate (1/τ) after analytical curve fitting. Flow patterns in the angiograms showed reduction of vortex flow and slow washout in the dense mesh patch treated aneurysms. The meshes reduced Pk down to 21% and 1/τ down to 12% of the values for the untreated case. In summary, new asymmetric stents were constructed and their evaluation demonstrates that they may be useful in the endovascular treatment of aneurysms.

Original languageEnglish
Pages (from-to)307-318
Number of pages12
JournalProceedings of SPIE - The International Society for Optical Engineering
Volume5369
DOIs
StatePublished - 2004
EventMedical Imaging 2004: Physiology, Function, and Structure from Medical Images - San Diego, CA, United States
Duration: Feb 15 2004Feb 17 2004

Keywords

  • Aneurysm
  • Angiography
  • Asymmetric stent
  • Blood flow
  • Cerebral aneurysm
  • Flow evaluation
  • Flow modification
  • Interventional neuroradiology
  • Stent
  • Time-density

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