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B Bromm

Publications and source records attributed to B Bromm.

At least 91 records · Page 5Linked to original sources

Phenobarbital induces slow recovery from sodium inactivation at the nodal membrane.

Voltage-clamp experiments were performed on single myelinated nerve fibres of Rana esculenta at 20 degrees C in Ringer's solution and in solutions containing phenobarbital-sodium ([PB] less than or equal to 5 mM). The reduction of the sodium current under phenobarbital could be explained by an increase in the resting sodium inactivation; h infinity (E) was shifted towards more negative membrane potentials. The recovery from sodium inactivation proceeded with two time constants. The fast process could be described with the same time constant as in Ringer's solution, whereas the slow process had a time constant approx. 40 times larger. The slow process was also potential-dependent and could be described by 1/(0.025 alpha h + beta h), where alpha h and beta h denoted the rate constants in Ringer's solution. With the measured blockage of sodium channels by phenobarbital, both the shift of h infinity (E) and the slow recovery from sodium inactivation could be explained.

Animals↗

Withdrawal reflex, skin resistance reaction and pain ratings due to electrical stimuli in man.

Simultaneous measurements of pain rating, withdrawal reflex, and skin resistance reaction with non-painful and painful electrical stimuli were performed on 15 healthy male volunteers. Eight different intensities were delivered in standardized randomized order. Each intensity appeared 10 times. There was no influence on the preceding stimulus on responses to the following stimulus. Neither skin resistance reaction nor withdrawal reflex were specific for pain in the sense that they appeared solely when pain was reported; the two reaction threshold currents were significantly smaller than the pain threshold. The reaction amplitudes, however, showed a close correlation to the intensity of sensation. The relations between all reactions measured and stimulus strength could be described best by power functions, with an exponent less than or equal to 1 if least square fits in linear scales were performed. Graphical evaluation in double logarithmic scales led to systematic errors causing higher exponents. Compound relations, like skin resistance reaction or withdrawal reflex amplitude as function of subjective estimation, could also be approximated by power functions, with parameters predictable from stimulus-reaction functions. No change in exponent was observed when subjective estimation turned from pre-pain to pain.

Adult↗

Differential thermosensitivity and electric prepolarization of the ampullae of Lorenzini.

In a single-fibre preparations the afferent discharges from prepolarized ampullae of Lorenzini responding to graded temperature steps were investigated in the dogfish (Scyliorhinus canicula). The transformation characteristics of the ampullary receptors, especially their differential thermosensitivity interfering with electrosensitivity, were analyzed. Prepolarization significantly influenced the dynamic component of differential thermosensitivity, while the static component remained practically unchanged. Hyperpolarization reduced positive and negative dynamic thermal responses; depolarization amplified them. Biological consequences of this bimodal interference for receptor transformation of superimposed thermal and electric stimuli and for decoding afferent ampullary impulse patterns are discussed.

Animals↗

Response of the ampullae of Lorenzini to static combined electric and thermal stimuli in Scyliorhinus canicula.

The effect of long-lasting electric currents on the Lorenzinian ampullae at constant temperatures between and 25 degrees C was investigated in the dogfish (Scyliorhinus canicula). Steady state neural impulse patterns in single afferent units were analyzed by plotting interval length histograms and computing mean values and standard deviations for currents between -100 and +100 nA. The mean values depended on temperature and on current strength; the relative standard deviations remained almost constant (ca. 20--30%). Negative currents, inserted at the orifice of the ampullary canal led to higher, and positive currents to lower, steady impulse rates in the whole temperature range investigated here. This static component of electrosensitivity again disappeared at higher currents (of 50 nA and more; electric overstimulation). The maximum static response was two orders of magnitude less than the maximum dynamic component of electroreception. The electrosensitivity depended on temperature: the ampullae were most sensitive to electric currents between 13 and 19 degrees C. The maximal neural activity at 19 degrees C was not shifted to higher or lower temperatures by electric stimulation. A constant equivalent of electric and thermal stimulation throughout the tested temperature and current range could not be found.

Action Potentials↗

Spike frequency of the nodal membrane generated by high-frequency alternating current.

Changes in membrane potential of single frog motor nerve fibres due to alternating current (ac) between 4 kHz and 20 kHz were recorded in the air gap equipment under constant current conditions at 20 degrees C. The experimental findings were compared with the results of computations on the basis of potential clamp data. Ac shifted mean membrane potential (averaged for every ac period) in the direction of depolarization. The mean depolarization Vm depended on current strength I; it disappeared when the sodium permeability was blocked, in the experiments by tetrodotoxin. In a current range between about 1 and 3 fold threshold strength the ac initiated repetitive activity with response frequencies v between averaged 120 Hz and 820 Hz or in the computations even higher; v depended logarithimically on current strength, but was independent of ac frequency. Elimination of current amplitude I from the nonlinear realtions v(I) and Vm(I) led to a linear function between v and Vm. Both v and Vm depended markedly on prepolarization of the node. The results were attributed to the preferred activation of the sodium permeability under maintained high frequency ac stimulation. Differences between computations and constant current experiments occurred for very long stimulus duration when rhythmical discharges died out in the experiment.

Animals↗