Establishment of the intracranial hemodynamic model based on contrast medium and clinical applications

Yaoer Cheng1, Wen He

  • 1Department of Radiology, Beijing Friendship Hospital, Capital Medical University, Beijing, China.

Medicine
|December 9, 2016
PubMed

Insights

A new computer model accurately simulates anterior cerebral artery blood flow. It shows decreased maximum enhancement in patients with stroke symptoms, aiding in the diagnosis of cerebrovascular diseases.

Area of Science:

  • Neurology
  • Biomedical Engineering
  • Medical Imaging

Background:

  • Ischemic cerebrovascular diseases are prevalent in aging populations.
  • CT perfusion (CTP) is widely used for detecting ischemic brain changes.
  • Accurate hemodynamic assessment is crucial for diagnosing and managing cerebrovascular conditions.

Purpose of the Study:

  • To develop a novel intracranial hemodynamic model for simulating anterior cerebral artery blood flow.
  • To compare actual and simulated hemodynamic parameters in healthy individuals and patients with carotid stenosis or occlusion.
  • To validate the model's reliability in reflecting cerebral hemodynamic status.

Main Methods:

  • A mathematical model of intracranial hemodynamics was created using MATLAB.
  • Retrospective data from 57 patients with infarct disease and 44 healthy controls were analyzed.
  • Actual and simulated time-density curves (TDCs) were compared using parameters like time to peak enhancement (TTP), maximum enhancement (ME), and mean transit time (MTT).

Main Results:

  • The model accurately simulated anterior cerebral artery hemodynamics in healthy individuals.
  • Patients with infarct symptoms showed significantly decreased actual ME compared to simulated values.
  • Mean transit time (MTT) was significantly delayed in infarct patients, indicating abnormal cerebral hemodynamics.

Conclusions:

  • A reliable computer-based physiological model for simulating intracranial hemodynamics was successfully generated.
  • The model effectively identified abnormal cerebral hemodynamics in infarct patients.
  • This digital model may enhance CT contrast protocols and serve as a valuable tool for studying intracranial hemodynamics.