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Dye-coupling in taste buds in the mudpuppy, Necturus maculosus.

Electrical coupling in taste buds and in non-taste lingual epithelium in the mudpuppy was examined by injecting cells with a fluorescent dye, Lucifer yellow. Lucifer yellow coupling has been shown to indicate the presence of electrical junctions between cells. Lucifer yellow-filled taste cells usually have an elongate shape. Cells were an average of 111 microns long and were 13 microns in diameter at the widest region (nucleus). In taste buds, from a sample of 105 impalements we detected Lucifer yellow coupling in 21 cases: dye-coupled pairs of cells were observed in 17 cases, and trios of cells in 4 cases. Larger subsets of coupled cells (greater than 3) were not observed. Dye-coupled cells were usually equally intensely stained. In non-taste epithelium, we examined dye-coupling in the superficial and basal layers. Extensive Lucifer yellow coupling was found in the basal layer (15/15 cases). The number of cells coupled to the dye-injected cell varied from 3 to 5. In the superficial epithelium, dye-coupling was rare (1/45 cases). No dye-coupling was observed between epithelial cells and taste cells at the taste pore region. We conclude that strong electrical coupling in groups of 2-3 cells occurs in the mudpuppy taste buds. Coupling may occur selectively between identical types of taste cells (dark, light, etc.), but this remains to be determined. Electrical coupling also exists among basal epithelial cells but not in the superficial epithelial layers.

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Identification, localization, and modulation of neural networks for walking in the mudpuppy (Necturus maculatus) spinal cord.

We tested the hypothesis that the neural networks for walking in the mudpuppy can be divided into a flexor and an extensor center, each of which contains collections of interneurons localized in the vicinity of their motoneuron pools. Combining a battery of techniques, we identified and localized the elbow flexor center and its motoneuron pool in the C2 segment and the elbow extensor center and its motoneuron pool in the C3 segment. Rhythmic flexion or extension of the limb in isolation could be induced by continuous trains of current pulses of the C2 or C3 segments, respectively. Independent activation could also occur after application of glutamate receptor agonist NMDA. Part of segment C2 in isolation generated rhythmic elbow flexor bursts, whereas part of segment C3 in isolation generated rhythmic elbow extensor bursts. An isolated region spanning the C3 roots generated both flexor and extensor bursts. The step cycle was modulated in a phase-dependent manner by stimulation of the dorsal roots, the ventral roots, or either of the two centers. The effects of ventral root stimulation were removed by deafferentation to block reafferent input attributable to muscle contraction induced by the stimulation. We conclude that the neural networks for walking contain at least a flexor and an extensor generator that are localized in close apposition to the motoneuron pools, that the two centers can work independently despite the fact that there are reciprocal inhibitory interconnections between them, and that sensory input interacts with the spinal neural networks to reset the ongoing walking rhythm in a phase-dependent manner.

Animals↗