Hemodynamic characteristics of hyperplastic remodeling lesions in cerebral aneurysms

Kazuhiro Furukawa1, Fujimaro Ishida2, Masanori Tsuji1

  • 1Department of Neurosurgery, Mie University Graduate School of Medicine, Tsu, Mie, Japan.

Plos One
|January 17, 2018
PubMed

Insights

Hyperplastic remodeling lesions in cerebral aneurysms are linked to specific blood flow patterns. Oscillatory shear index (OSI) best distinguishes these lesions, while normalized wall shear stress (NWSS) is independently associated.

Area of Science:

  • Neurosurgery
  • Biomedical Engineering
  • Cardiovascular Research

Background:

  • Hyperplastic remodeling (HR) lesions are observed on cerebral aneurysm walls.
  • Atherosclerosis resulting from HR can negatively impact surgical outcomes for cerebral aneurysms.
  • Previous research suggests a link between atherosclerotic changes and specific hemodynamic characteristics.

Purpose of the Study:

  • To investigate the local hemodynamic characteristics of HR lesions in cerebral aneurysms.
  • To utilize computational fluid dynamics (CFD) for detailed hemodynamic analysis.
  • To correlate hemodynamic parameters with the presence of HR lesions.

Main Methods:

  • Twenty-four cerebral aneurysms were analyzed using CFD and intraoperative video.
  • HR lesions and red walls were identified, with key points selected for analysis.
  • Hemodynamic parameters including WSS, NWSS, OSI, RRT, and AFI were evaluated and compared.

Main Results:

  • HR lesions exhibited lower NWSS and AFI, but higher OSI and prolonged RRT compared to red walls.
  • Receiver-operating characteristic curve analysis identified OSI as the most effective predictor of HR lesions (AUC=0.745).
  • Multivariate logistic regression confirmed NWSS was significantly associated with HR lesions.

Conclusions:

  • Low normalized wall shear stress (NWSS) is independently associated with hyperplastic remodeling (HR) lesions.
  • Oscillatory shear index (OSI) is the most valuable hemodynamic parameter for differentiating HR lesions from red walls in cerebral aneurysms.
Abstract

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