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J Barthelemy

Publications and source records attributed to J Barthelemy.

5 recordsLinked to original sources

Arrhythmogenic potencies of amrinone and milrinone in unanesthetized dogs with myocardial infarct.

1. In dogs with a 2-4 day old myocardial infarct and a predominantly sinus heart rhythm, we examine arrhythmogenic potencies of amrinone (0.5 mg/kg/min, 1 and 3 mg/kg) and milrinone (10 micrograms/kg/min, 75 and 100 micrograms/kg). 2. Amrinone and milrinone significantly reinduced ventricular ectopic beats on day 2 after coronary occlusion. 3. These effects were preceded by a cardioacceleration which intensified as the ventricular arrhythmias developed. 4. Over the following days the arrhythmogenic potencies of these inotropic drugs were modest. 5. Thus, amrinone and milrinone can impair heart rhythm chiefly in a recent myocardial infarct.

Amrinone

Time course of spontaneous ventricular arrhythmias following acute coronary occlusion in the dog.

In this study, the arrhythmias occurring in dogs between 4 and 15 hr after occlusion of the left anterior descending coronary artery were continuously monitored by recording the electrocardiogram from bipolar leads. At 4.5 hr the number of dogs with less than 50% of sinus beats had increased and at 5 hr 15 min sinus beats represented on average 80% of total heart beats. In the period up to 6 hr isolated ventricular beats and ventricular salvos were seen in 95% and 63% of the dogs respectively and at 7 hr there were, on average, 50% of sinus beats and monomorphic ventricular rhythm was observed in 58% of the dogs. From 7 hr half the dogs had over 50% of ventricular ectopic beats and by 9 hr ventricular rhythm disturbances were permanently present in all the dogs. The ventricular arrhythmias reached a peak at about 11-12 hr (mean % sinus beats less than 10) when all dogs had a predominantly monomorphic (42%) and/or polymorphic (63%) ventricular heart rhythm. The characteristic time course of these cardiac disturbances suggest that it may form the basis for an experimental model that may be useful in analyzing the effects of potential antiarrhythmic drugs.

Animals

Neuronal coding of linear motion in the vestibular nuclei of the alert cat. II. Response characteristics to vertical optokinetic stimulation.

Extracellular activity from vestibular nuclei neurons and vertical eye movements were recorded in the alert cat during sinusoidal optokinetic stimulation in the vertical plane at frequencies varying from 0.0125 Hz to 0.75 Hz. Among a population of 96 vestibular units located in and around Deiters' nucleus, 73 neurons (76%) displayed a firing rate modulation which followed the input at the standard parameters of visual stimulation (0.05 Hz; 10.1 deg/s or 9.1 cm/s peak to peak velocity). Two different patterns of modulation were found. In 42 cells (57%) an increase in the firing rate was observed during motion of the visual scene in the downward direction, while 31 neurons (43%) showed the opposite behavior, with an enhanced firing rate during upward movement. The phase of the neuronal responses was close (+/- 45 degrees) to the velocity peaks (+90 degrees: downward and -90 degrees: upward) of visual scene motion for 65 among the 73 neurons. Mean values of phase was -6.1 +/- 19.5 degrees (SD) and -3.2 +/- 15.5 degrees (SD) with respect to the +90 degrees and -90 degrees velocity peaks, respectively. In the frequency range 0.0125-0.75 Hz, the phase of the neuronal responses remained almost stable, with only a slight lag which reaches -22 degrees at the 0.25 Hz visual stimulation. The firing rate modulation was found to be predominant at low frequencies (0.0125 Hz-0.25 Hz), with three distinct peaks of modulation occurring either at 0.025 Hz, 0.10 Hz or 0.25 Hz, depending on the recorded cells. Above 0.5 Hz, the cell modulation was very poorly developed or even absent. A gain attenuation was observed in all units, which was more important in cells showing a peak of modulation at 0.025 Hz as compared with the others (-20.7 dB vs -9.6 dB, respectively, in the 0.025 Hz-0.25 Hz decade). The gain of the optokinetic reflex (OKR) progressively decreased from mean values of 0.78 +/- 0.15 to 0.05 +/- 0.06 in the 0.025 Hz-0.5 Hz frequency range. A close correlation was observed between the OKR slow phase velocity and the modulation of the neuronal responses in the two cell populations with maximal modulations at 0.10 Hz or 0.25 Hz. No correlations were noticed in the third population characterized by a peak of modulation at 0.025 Hz. In all units, the phase of eye movement velocity and of neuronal responses were both related to the velocity of the visual surround motion. These correlations were also found when varying the amplitude of the visual stimulation at a fixed frequency.(ABSTRACT TRUNCATED AT 400 WORDS)

Action Potentials

Neuronal coding of linear motion in the vestibular nuclei of the alert cat. III. Dynamic characteristics of visual-otolith interactions.

In the present study we have investigated in the awake cat the response dynamics of vestibular nuclei neurons to visual or/and otolith stimulation elicited by vertical linear motion. Of the 53 units tested during sinusoidal motion at 0.05 Hz (9.1 cm/s), 1 (1.9%) was responsive to the otolith input only, 13 (24.5%) were influenced by the visual input only and 23 (43.4%) responded to both modalities. Neurons were excited either during upward or downward animal or visual surround movement. Most units displayed a firing rate modulation very close to motion velocity. All the neurons receiving convergent visual and otolith inputs (0.05 Hz, 9.1 cm/s) exhibited synergistic patterns of response. Motion velocity coding was improved in terms of input-output phase relationship and response sensitivity when visual and otolith signals were combined. Depending on the units, visual-otolith interactions in single neurons could follow a linear or a nonlinear mode of summation. The dynamic characteristics of visual-otolith interactions were examined in the 0.05 Hz-0.50 Hz frequency bandwidth. Visual signals seemed to predominate over otolith signals at low stimulus frequencies (up to 0.25 Hz), while the contrary was found in the higher frequency range of movement (above 0.25 Hz). The effects of visual stabilization (VS: suppression of visual motion cues) was observed in a small sample of units. As a rule, VS induced a reduction in the amplitude of unit response as compared to visual + otolith stimulation, the lower the motion frequency, the more pronounced the attenuation. VS also decreased the amplitude of the otolith-dependent component of response. The possible modes of visual-vestibular interactions in single cells are discussed. The present study supports the hypothesis that visual and vestibular motion cues are weighted according to their internal relevance.

Action Potentials