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J Neurophysiol 81: 2026-2036, 1999;
0022-3077/99 $5.00
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The Journal of Neurophysiology Vol. 81 No. 5 May 1999, pp. 2026-2036
Copyright ©1999 by the American Physiological Society

Rhythmicity in Single Fiber Postganglionic Activity Supplying the Rat Tail

H.-J. Häbler, T. Bartsch, and W. Jänig

Physiologisches Institut, Christian-Albrechts-Universität, 24098 Kiel, Germany

Häbler, H.-J., T. Bartsch, and W. Jänig. Rhythmicity in Single Fiber Postganglionic Activity Supplying the Rat Tail. J. Neurophysiol. 81: 2026-2036, 1999.Rhythmicity in single fiber postganglionic activity supplying the rat tail. The temporal pattern of ongoing sympathetic vasoconstrictor activity may play an important role for neurovascular transmission. Here we analyzed the activity of postganglionic fibers projecting into the ventral collector nerve of anesthetized and artificially ventilated vagotomized Wistar rats with respect to the presence of rhythmic firing under normocapnic conditions. Most of the fibers studied were likely vasoconstrictor and involved in thermoregulation. Accumulated histograms of sympathetic activity were produced synchronized with the electrocardiogram to detect cardiac rhythmicity, with phrenic nerve activity to detect modulation with the central respiratory cycle, and with tracheal pressure to uncover a reflex modulation associated with artificial ventilation. Sympathetic activity, phrenic activity, and tracheal pressure also were examined by spectral analysis and autocorrelation to detect rhythmicities distinct from respiration. Twenty-seven filaments containing two to seven fibers with spontaneous activity and 51 single fibers were analyzed. Ongoing activity was 1.12 ± 0.65 imp/s (mean ± SD, n = 51); conduction velocity was 0.62 ± 0.06 m/s (n = 30). Cardiac rhythmicity in sympathetic activity was weak (46.2 ± 16.4%). The dominant rhythm in the activity of 19/27 few-fiber preparations and 37/51 single fibers corresponded to the central respiratory cycle. The pattern consisted of an inhibition during inspiration and an activation in expiration. In 10/19 few-fiber preparations and 21/37 single fibers of this group, there was also a concomitant, less prominent rhythm related to artificial ventilation. By contrast, 8/27 few-fiber preparations and 11/51 single fibers exhibited a dominant pump-related modulation, whereas phrenic-related rhythmicity was subordinate. The dominant rhythm in the activity of two single fibers was related to neither central respiration nor artificial ventilation. We conclude that the ongoing activity of most postganglionic neurons supplying the rat tail is modulated by the central respiratory rhythm generator, suggesting that changes in respiratory drive may alter perfusion of the tail and therefore heat dissipation. Reflex modulation in parallel with artificial ventilation, independent of vagal afferents and possibly due to ventilatory changes of baroreceptor activity, is also an important source of rhythmicity in these neurons.




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