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New concept for the pressure setting of a programmable pressure valve and measurement of in vivo shunt flow performed

H Miyake1, T Ohta, Y Kajimoto

  • 1Department of Neurosurgery, Osaka Medical College, Takatsuki City, Japan.

Journal of Neurosurgery
|January 1, 2000
PubMed

Insights

A new method accurately determines Codman Hakim valve (CHV) pressure settings for hydrocephalus patients. This approach optimizes intracranial pressure (ICP) control and reduces shunt complications, improving patient outcomes.

Area of Science:

  • Neurosurgery
  • Biomedical Engineering
  • Medical Devices

Background:

  • Hydrocephalus management often involves ventriculoperitoneal shunts with adjustable pressure valves.
  • Accurate pressure setting of Codman Hakim valves (CHV) is crucial for effective intracranial pressure (ICP) management.
  • Variations in patient positioning and physiological pressures complicate optimal shunt function.

Purpose of the Study:

  • To establish a standard method for determining the optimal pressure setting of the Codman Hakim valve (CHV).
  • To investigate the relationships between CHV setting, intracranial pressure (ICP), intraabdominal pressure (IAP), hydrostatic pressure (HP), and perfusion pressure (PP).
  • To evaluate shunt flow dynamics in patients with normal-pressure hydrocephalus.

Main Methods:

  • Developed an equation: CHV setting = HP + ideal ICPsit - IAP, using estimated ideal sitting ICP (ICPsit) between -70 and -140 mm H2O.
  • Individually determined CHV settings for 18 normal-pressure hydrocephalus patients.
  • Measured shunt flow in supine and sitting positions using a microflowmeter.

Main Results:

  • The proposed method allowed for the calculation of CHV settings based on measurable pressures (HP, IAP) and estimated ICPsit.
  • In most cases, the ICPsit was controlled at the targeted level, validating the method's concept.
  • Shunt flow was significantly higher in the sitting position (200-600 microl/minute) compared to the supine position.
  • Postoperative shunt control was satisfactory, with fewer complications and resettings compared to previous reports.

Conclusions:

  • The established method provides a rational and useful approach for individually determining CHV settings.
  • This method aids in optimizing ICP management and potentially reducing shunt-related complications in hydrocephalus patients.
  • Real-time shunt flow measurement offers valuable insights into shunt system function and hydrocephalus pathophysiology.

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