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Biomedical subjects

E Shwedyk

Publications and source records attributed to E Shwedyk.

7 recordsLinked to original sources

Dielectric measurement of cerebral water content using a Network Analyzer.

At present, no practical method exists for monitoring the progression and severity of cerebral oedema in a clinical setting on a continuous basis. In search for such a method, we investigated the electrical characteristics of cerebral tissue at microwave frequencies to quantify cerebral oedema. The dielectric constants of normal and oedematous canine cerebral white matter were measured using a Network Analyzer and then compared to the tissue's water content. In addition, salt infiltration and time elapsed after excision of the tissue were examined to determine their effects on the measurements. The water content and dielectric constant of the white matter were linearly related (correlation coefficient, r = 0.903), comparable to results obtained with a Time Domain Reflectometer in previous research. The Network Analyzer, however, is a more robust measurement device and, because of this, can potentially be used for long term measurements. Further, it was found that neither an increased tissue salt content nor the amount of time after excision of the tissue significantly affected the results. This indicates that the dielectric constant of cerebral white matter is mainly a function of the tissue's water content.

Body Water

Haemodynamic modelling for the arterial pulsatile component of the intracranial pulse wave.

Vasospasm of cerebral arteries narrows the amplitude of the intracranial pressure wave, indicating that the arterial segment of the cerebral circulation is partially responsible for its formation. We investigated the fundamental mechanism of pressure pulse transmission from an artery to the surrounding environment. A mathematical model was derived expressing the amplitude of container pulsation (delta Po) as a function of mean intraluminal pressure (MPi), mean container pressure (MPo) and arterial pulse amplitude (delta Pi): delta Po = (-2(MPi - MPo) + b) (MPo + 1) delta Pi. This mathematical model was experimentally validated using an in vivo system of a single artery sealed inside a fluid-filled elastic container.

Animals

Measurement of canine cerebral oedema using vector impedance methods.

The introduction of distilled water in vitro into brain tissue increases the water content of the cerebral white matter. The increase in water content for canine white matter may be predicted from impedance measurements on the tissue and the empirical equations determined in this study. However, the equations may only be valid for osmotic oedema induced in vitro as the behaviour of impedance related parameters is dependent on the type of oedema induced. The tissue volume measured with this technique may be reduced by the use of a smaller diameter probe. New equations relating impedance parameters to the water content for this probe and more accurate instrumentation may be required.

Animals