Changes in the parameters of human single muscle fiber potentials with consecutive discharges.
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Biomedical subjects
Publications and source records attributed to L Gerilovsky.
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The changes in the parameters of the extracellular potentials of single muscle fibres are studied during ischaemia. These changes have two phases, preceded in part of the cases by a transient phase. The decrease in the propagation velocity (V) of the excitation predominates in the first phase, therefore, the length of the depolarized area (b) is shortened. The shortening of b, directly demonstrated by VEMG, conditions an increase in the peak-to-peak amplitude of the potentials (Ap) and of its components: the amplitude of the initial positive phase (A1) and the amplitude of the negative phase (Ad). During the second phase there is predominance of the lengthening of the time for depolarization (TD), as well as the time for fast repolarization (TR). This is manifested in elongation of the times for increase and decrease of the negative phase, accompanied by an increase in the times for increase and for decrease of the initial positive phase. The increase in b, proved directly by the changes in VEMG, results from the longer TDR. The increase in b leads to a decrease in the amplitudes Ap, AI and Ad. The changes during ischaemia are analogous to a certain extent to the changes in continuous activity of the muscle fibre, but the former occur more rapidly. They are accompanied by changes in the AI/Ad ratio which suggests changes in the intracellular potentials, most probably changes in the after-potentials. During ischaemia the influence of hypoxy is summated probably with the influence of long-lasting discharge and lowered temperature of the muscle.
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The conduction velocity of the excitation along the striated muscles in man, hereafter refered to as muscle fiber conduction velocity (MFCV) was used to estimate the muscle functional state under hypoxaemic hypoxia. The averaged MFCV was counted by the method based on the surface measurements (using bipolar "branched" multielectrodes) of the electrically elicited compound action potentials of the brachial biceps muscle. The arterial and venous blood-gas and acid-base parameters were simultaneously measured and the body temperature was controlled intramuscularly. With afebrile patients under normoxaemia or hypoxaemia following brain stroke, MFCV decreased proportionnally to the arterial partial oxygen pressure (PaO2) rate; a strong positive correlation (r = 0.882) between MFCV and PaO2 was found up to PaO2 of 12.0 kPa and MFCV 3.5 m/s. In the case of over PaO2 = 12.0 kPa, the relationship entered into saturation; the further increase PaO2 was not followed by concomitant changes in MFCV. The results show that MFCV-testing is a valuable tool to evaluate the functional state of the striated muscle under hypoxia.
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