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Distribution of motoneurons involved in the prey-catching behavior in the Japanese toad, Bufo japonicus.

Coordinated activities of several muscles in the head region underlie the prey-catching behavior of anuran amphibians. As a step in elucidating the neural mechanisms generating these activity patterns in the Japanese toad, we labelled the motoneurons innervating 8 behaviorally relevant muscles using intramuscular (i.m.) injection technique of horseradish peroxidase (HRP), and examined their localization within the motor nuclei whose boundaries were determined by HRP application to the nerve trunk. All the motoneurons innervating the two jaw closer muscles (m. masseter major, m. temporalis) and m. submentalis were localized within the rostral subdivision of the trigeminal motor nucleus. The motoneurons innervating the only mouth opener muscle (m. depressor mandibulae) were scattered throughout the facial motor nucleus. The motoneurons innervating tongue (m. hypoglossus, m. genioglossus) and hyoid muscles (m. sternohyoideus, m. geniohyoideus) appeared within the hypoglossal nucleus with distribution patterns characteristic of the target muscles. Thus, we have revealed the neuroanatomical organization of the motoneurons relevant to the prey-catching behavior.

Animals↗

Rearing rats with mice prevents induction of mouse killing by lesions of the septum but not lesions of the medial hypothalamus or medial accumbens.

Rats which had been reared with mice and those which had not were subjected to lesions of the septum, medial accumbens, medial hypothalamus, or sham lesions. Forty-eight hours later all animals were presented with a mouse and the frequency of mouse killing recorded. In rats with lesions of the septum, the lesions induced killing only in those animals which had not been reared with mice. Rats with lesions of the medial accumbens or medial hypothalamus killed significantly more often than control animals even when they had been reared with mice. These results suggest that the septum, medial accumbens and medial hypothalamus subserve different functions in the inhibitory modulation of mouse killing behavior.

Animals↗

Annual rhythm and hormonal control of predatory behavior in female ferrets.

The predatory behavior of female ferrets shows seasonal fluctuations which appear to be affected by estradiol. Under natural lighting conditions in the laboratory the annual rhythm of the behavior was observed during anestrus, estrus, pregnancy, pseudopregnancy and lactating period. Females in heat failed to show predatory behavior whereas females in anestrus killed their prey. Exposure of anestrous ferrets to a prolonged illumination (LD 16:8) during winter induced an estrus which inhibited predatory behavior. When estrus was terminated with human chorionic gonadotropin (HCG), predatory behavior did not further regress as it did in control runs. Thus, during the period of estrus, when estrogen levels are presumably high, predatory behavior was inhibited. To prove a possible interdependency of estrogen and predatory behavior, estradiol-17 beta-valerat was chronically administered. This treatment induced the estrous cycle one day after the first injection. Inhibition of predatory behavior occurred following a delay of 28 days. Thus, fluctuations of estradiol levels are a factor which may affect fluctuations of predatory behavior in female ferrets.

Animals↗