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Biomedical subjects

D W Lübbers

Publications and source records attributed to D W Lübbers.

At least 19 recordsLinked to original sources

A PCO2 surface electrode working on the principle of electrical conductivity.

A PCO2 electrode working on the principle of electrical conductivity is described. The calibration curve can be linearized according to the formula G = Go + b square root PCO2. This linearity has been tested in the PCO2 range of 0.93-9.33 kPa (7--70 Torr). For the experiments electrodes are used which have conductivity values of about 50 nS and drifts of maximally 5%/h at a PCO2 of 5.33 kPa (40 Torr). The response time (T90) is about 20 s. The temperature sensitivity is 2.4 nS/1 K between 298 K-310 K. The standard error of the measurements is sigma = 0.33 nS. With these electrodes tissue PCO2 can be measured on the surface of various organs.

Carbon Dioxide

Transcutaneous PO2 measurement on skin transplants.

Trnascutaneous PO2 measurements are suitable for an objective control of free skin transplants and pedicle flaps if used with standardized and controlled hyperemia. They are also suitable for monitoring the rejection of skin allografts and to investigate the influence of drugs on skin transplants in general.

Animals

[The effect of sympathectomy on the cochlear oxygen pressure (pO2) under conditions of haemorrhagic hypotension (author's transl)].

Oxygen partial pressure was measured in the endolymph area of the cat cochlea under conditions of hemorrhagic hypotension. The experiments took place after unilateral upper cervical sympathectomy and under control conditions. The pO2-measurements were carried out with the aid of polarographic micro-coaxial needle electrodes according to Baumgärtl and Lübbers (1, 2, 3). In animals which had not been sympathectomized, the cochlear pO2 decreased continuously parallely to blood pressure, with the beginning of bleeding. After sympathectomy pO2-decrease in cochlea only occurred at substantially lower aortal blood pressure. This allows the following conclusions: 1. Under conditions of hemorrhagic shock the blood flow of the inner ear is not as much included in central circulation as brain and heart. 2. The blood pressure dependence of the inner ear blood flow depends on the sympathetic innervation, it can practically be abolished up to a blood pressure of 65 mm Hg by denervation. 3. It is being discussed, which therapeutic consequences can be drawn from the evident influence of the sympathetic innervation on the inner ear blood flow.

Animals

Time course of changes of extracellular H+ and K+ activities during and after direct electrical stimulation of the brain cortex.

The kinetics of H+ and K+ activities were recorded during and after direct electrical activation of the brain cortex (cat). H+ activity was measured with H+-sensitive glass microelectrodes (tip diameters of 1--4 micron) and K+ activity was registered with double-barrelled ion-sensitive microelectrodes (tip diameters of 1--3 micron). It could be shown that extracellular H+ activity initially decreased for a few seconds and increased only after the 7.s. Maximum acidosis was always noticed after stimulation ended. Alkalotic as well as acidotic changes were the higher the stronger the stimulation parameters were. K+ activity increased very rapidly after stimulation began, reached its maximum when stimulation ended and then decreased to its initial value with an undershoot. It is concluded that the functional hyperemia of microflow could be triggered by the rapid increase in K+ activity, whereas the initial alkalotic change of extracellular pH means that H+ activity does not play a role in the first phase of this kind of hyperemia. The alkalotic shift is interpreted to be caused by the washout of C02 due to the rapid increase in microflow. In the further course, H+ activity obviously contributes to the maintenance of functional hyperemia. In this later period K+ activity is always below the control value.

Animals