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Ablation of nucleus isthmi leads to loss of specific visually elicited behaviors in the frog Rana pipiens.

Ablation of the frog's nucleus isthmi results in a visual scotoma contralateral to the lesion. Within the scotoma, animals do not respond to visually presented prey or threats. The locus of visual loss is related to the area of isthmal tissue ablated. With complete unilateral ablation, a frog displays no visually elicited prey-catching or threat-avoidance behaviors in the entire monocular field.

Animals↗

Timber rattlesnakes (Crotalus horridus) use chemical cues to select ambush sites.

Chemicals left by organisms moving through the environment are used by other organisms to mediate interspecific interactions. Most studies of chemical eavesdropping focus on prey responding to chemical cues from predators, despite the fact that chemical cues are frequently used by predators as a source of information about prey. Crotalus horridus uses a foraging strategy that is widespread among sedentary predators: the snake chooses a site where it is likely to encounter prey and remains immobile for many hours. I investigated this ambush hunting behavior in captive-raised timber rattlesnakes and provide evidence that sit-and-wait predators may discriminate among prey chemical cues, even when they have no prior experience with the prey. Snakes explored chemical cues with chemosensory behaviors, and more frequently adopted a stereotyped ambush foraging posture toward chemical cues from prey sympatric with their population of origin than either allopatric prey or sympatric nonprey species that are eaten by other viperids. These results support the notion that intra- and interspecific variation in diet may be mediated proximally by innate recognition of cues from particular prey items. This system also describes a bioassay that may be used in the isolation and identification of prey-derived kairomones. Studies such as this can be used to determine more realistic parameters for models of predator-prey interaction and foraging behavior that involve secretive, less active predators.

Animals↗

Palm harvesting affects seed predation of Euterpe edulis, a threatened palm of the Brazilian Atlantic Forest.

The palm tree Euterpe edulis is endemic to the Atlantic Forest, where it constitutes an economically important forest product. The often unplanned and illegal harvesting of palm hearts has led to drastic reductions in the populations of E. edulis in many areas where this palm used to be the dominant understorey tree species. We investigated the effects of harvesting on seed and seedling predation of E. edulis. We tested the predictions of the dominance-predation hypothesis according to which predator satiation leads to an inverse relationship between the amount of predation and the dominance of a tree species. During two consecutive years, seeds were set experimentally on an unharvested (> 250 adult palms/ha) and a neighboring harvested site (few, if any, adult palms) located in the Atlantic Forest of SE Brazil. Seedling mortality was studied at both sites for a six-month period in each of two consecutive years. Seed predation caused by rodents was higher at the harvested site, while insects caused more damage to seeds placed at the unharvested site. The proportion of seeds preyed upon by rodents varied annually, while insect predation did not. Seedling mortality did not differ between harvested and unharvested sites. The dominance-predation hypothesis was confirmed for generalist rodent seed predators, but not for specialist insect predators. This result shows that density-dependent mortality, not only at the individual level but also at the population-level scale, is a function of the class of predators and their types of foraging behavior.

Animals↗

Puncture marks on early African anthropoids.

Field studies of living primates have shown that primate predation is a rare event. This must also have been true for past primate communities. In the Fayum Oligocene of Egypt, specimens of all four species of Upper Fossil Wood Zone primates show evidence of tooth puncture marks. Of the four potential groups of primate predators--the snakes, the raptors, the crocodiles, and the primitive carnivores or creodonts--only the crocodiles and the creodonts could have made these puncture marks. When one compares the feeding habits of living crocodiles and mammalian carnivores with the evidence from the Fayum, it appears that the Fayum primates were preyed upon and/or scavenged by mammalian carnivore-like animals. The dismemberment of the Fayum primates by Oligocene predators indicates, in part, why the Fayum fossil material is rarely articulated. Bone damage by predators may well set limits on what bone associations can be discovered in the Fayum even before the bones are scattered and buried by depositional processes.

Alligators and Crocodiles↗

Cerebral neurons underlying prey capture movements in the pteropod mollusc, Clione limacina. I. Physiology, morphology.

The pteropod mollusc Clione limacina feeds on shelled pteropods capturing them with 3 pairs of oral appendages, called buccal cones. A group of electrically-coupled putative motoneurons (A neurons) has been identified in the cerebral ganglia, whose activation induces opening of the oral skin folds and extrusion of the buccal cones. These cells are normally silent and have one or two axons in the ipsilateral head nerves. Electrical coupling between A neurons is relatively weak and normally does not produce 1:1 spike synchronization. Coupling coefficients ranged from 0.05 to 0.25. A second type of putative motoneurons (B neurons) controls retraction and withdrawal of buccal cones. B neurons show spontaneous spike activity which maintains the buccal cones in a continuous retracted state. All B neurons have one axon running into the head nerves. Ipsilateral B motoneurons are electrically coupled to each other. A neurons strongly inhibit B neurons, however, seven identified A motoneurons which were specifically tested do not form monosynaptic contacts with B motoneurons. Appropriate stimuli from the prey activate A motoneurons, which in turn inhibit B motoneurons and evoke extrusion of the buccal cones. One mechanism promoting the speed of this extremely rapid reaction is brief co-activation of antagonistic A and B neuron groups, which provides a notable increase in fluid pressure inside the head. Mechanical stimulation of buccal cones provides excitatory inputs to A motoneurons. Similar stimulation from captured prey would serve to prolong buccal cone protraction during the manipulatory phase of feeding.

Animals↗

Edge preference of retinal and tectal neurons in common toads (Bufo bufo) in response to worm-like moving stripes: the question of behaviorally relevant 'position indicators'.

Previous experiments have shown that during prey-catching behavior (orienting, snapping) in response to a worm-like moving stripe common toads, Bufo bufo (L.) exhibit a contrast- and direction-dependent edge preference. To a black (b) stripe moving against a white (w) background (b/w), they respond (R*) preferably toward the leading (l) rather the trailing (t) edge (Rl* greater than Rt*), thus displaying 'head preference'. If the contrast-direction is reversed (w/b), the stripe's trailing edge is preferred (Rl* less than Rt*), hence showing 'tail preference'. In the present study, neuronal activities of retinal classes R2 and R3 and tectal classes T5(2) and T7 have been extracellularly recorded in response to leading and trailing edges of a 3 degrees X 30 degrees stripe simulating a worm and traversing the centers of their excitatory receptive fields (ERF) horizontally at a constant angular velocity in variable movement direction (temporo-nasal or naso-temporal). The behavioral contrast-direction dependent edge preferences are best resembled by the responses (R) of prey-selective class T5(2) neurons (Rl:Rt = 10:1 for b/w, 0.3:1 for w/b) and T7 neurons (Rl:Rt = 6:1 for b/w, 0.4:1 for w/b); the T7 responses may be dendritic spikes. This property can be traced back to off-responses dominated retinal class R3 neurons (Rl:Rt = 6:1 for b/w, 0.5:1 for w/b), but not to class R2 (Rl:Rt = 1.2:1 for b/w and 0.9:1 for w/b). The respective edge preference phenomena are independent of the direction of movement. When stimuli were moved against a stationary black-white structured background, the 'head preference' to the black stripe and the 'tail preference' to the white stripe were maintained in class R3, T5(2), and T7 neurons. If the stripe traversed the ERF together with the structured background in the same direction at the same velocity, the responses of tectal class T5(2) and T7 neurons were strongly inhibited, particularly in the former. Responses of retinal R2 neurons in comparable situations could be reduced by about 50%, while class R3 neurons responded to both the stimulus and the moving background structure. The results support the concept that the prey feature analyzing system in toads applies principles of (i) 'parallel' and (ii) 'hierarchial' information processing. These are (i) divergence of retinal R3 neuronal output contributes to stimulus edge positioning and (in combination with R2 output) area evaluation in tectal neurons and to stimulus area evaluation and (in combination with R4 output) sensitivity for moving background structures in pretectal neurons.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

The visual ecology of fiddler crabs.

With their eyes on long vertical stalks, their panoramic visual field and their pronounced equatorial acute zone for vertical resolving power, the visual system of fiddler crabs is exquisitely tuned to the geometry of vision in the flat world of inter-tidal mudflats. The crabs live as burrow-centred grazers in dense, mixed-sex, mixed-age and mixed-species colonies, with the active space of an individual rarely exceeding 1 m(2). The full behavioural repertoire of fiddler crabs can thus be monitored over extended periods of time on a moment to moment basis together with the visual information they have available to guide their actions. These attributes make the crabs superb subjects for analysing visual tasks and the design of visual processing mechanisms under natural conditions, a prerequisite for understanding the evolution of visual systems. In this review we show, on the one hand, how deeply embedded fiddler crab vision is in the behavioural and the physical ecology of these animals and, on the other hand, how their behavioural options are constrained by their perceptual limitations. Studying vision in fiddler crabs reminds us that vision has a topography, that it is context-dependent and pragmatic and that there are perceptual limits to what animals can know and therefore care about.

Adaptation, Ocular↗

Behavioral mechanisms underlie an ant-plant mutualism.

Predators can reduce herbivory by consuming herbivores (a consumptive effect) and by altering herbivore behavior, life history, physiology or distribution (non-consumptive effects). The non-consumptive, or trait-mediated, effects of predators on prey may have important functions in the dynamics of communities. In a facultative ant-plant mutualism, we investigated whether these non-consumptive effects influenced the host plants of prey. Here, predaceous ants (Forelius pruinosus) consume and disturb a dominant lepidopteran folivore (Bucculatrix thurberiella) of wild cotton plants (Gossypium thurberi). Season-long ant exclusion experiments revealed that ants had a larger proportional effect on damage by B. thurberiella than on caterpillar abundance, a result that suggests ants have a strong non-consumptive effect. Behavioral experiments conducted in two populations over 2 years demonstrated that B. thurberiella caterpillars were substantially less likely to damage wild cotton leaves in the presence of ants due to ant-induced changes in caterpillar behavior. In the absence of ants caterpillars spent more time stationary (potential feeding time) and less time dropping from leaves by a thread of silk than when ants were present. Furthermore, ants altered the spatial distribution of both caterpillars and damage; caterpillars spent relatively more time on the upper surfaces of leaves and caused damage further from the leaf margin in ant exclusion treatments. Both direct encounters with ants and information conveyed when ants walked onto leaves were key events leading to the anti-predator behaviors of caterpillars. This study contributes to a small body of evidence from terrestrial systems demonstrating that the trait-mediated effects of predators can cascade to the host plants of prey.

Animals↗

Do responses of galliform birds vary adaptively with predator size?

Past studies of galliform anti-predator behavior show that they discriminate between aerial and ground predators, producing distinctive, functionally referential vocalizations to each class. Within the category of aerial predators, however, studies using overhead models, video images and observations of natural encounters with birds of prey report little evidence that galliforms discriminate between different raptor species. This pattern suggests that the aerial alarm response may be triggered by general features of objects moving in the air. To test whether these birds are also sensitive to more detailed differences between raptor species, adult chickens with young were presented with variously sized trained raptors (small, intermediate, large) under controlled conditions. In response to the small hawk, there was a decline in anti-predator aggression and in aerial alarm calling as the young grew older and less vulnerable to attack by a hawk of this size. During the same developmental period, responses to the largest hawk, which posed the smallest threat to the young at all stages, did not change; there were intermediate changes at this time in response to the middle-sized hawk. Thus the anti-predator behavior of the adult birds varied in an adaptive fashion, changing as a function of both chick age and risk. We discuss these results in light of current issues concerning the cognitive mechanisms underlying alarm calling behavior in animals.

Adaptation, Psychological↗

Spontaneous mouse killing rats: gentling and food deprivation result in killing behavior almost identical to that of rats with medial hypothalamic lesions.

Rats that were found to kill a mouse spontaneously were divided into two groups. One group was left untreated and allowed free access to food while the other was gentled for 15 min/day and given only 15 g of food/day. Nonkilling rats were induced to kill mice by lesions of the medial hypothalamus. Seven to ten days after being divided into groups or subjected to brain lesions, each rat's behavior toward a series of stimuli was observed. The stimuli were a live mouse, a second live mouse, a freshly killed mouse, and a cotton wad. Food-deprived/gentled spontaneous killers and rats induced to kill by medial hypothalamic lesions each tended to attack with higher intensities and lower latencies than control spontaneous killers. The food-deprived/gentled spontaneous killers and lesion-induced killers (but not the control spontaneous killers) also attacked a dead prey moved vertically and then held onto the prey with sufficient intensity that their feet would leave the floor of the cage before they would release their grip on the prey. It is argued that the behavior of food-deprived spontaneous killers may constitute a more valid model of spontaneous mouse killing than that of sated spontaneous killers. The close correspondence between behavior toward a prey by lesion-induced killers and food-deprived spontaneous killers suggests that the lesion-induced killers fit this model of mouse killing remarkably well.

Aggression↗

The role of central noradrenergic neurons in electroconvulsive shock-induced muricide inhibition in olfactory bulbectomized rats.

In order to elucidate the role of central monoaminergic neurons in electroconvulsive shock (ECS)-induced muricide inhibition in the olfactory bulbectomized rat (OB rat), we examined the effect of chemical or electrical lesions of each monoamine-containing neuron on ECS-induced muricide inhibition. ECS-induced muricide inhibition was antagonized by 6-hydroxydopamine (6-OHDA) treatment and locus coeruleus lesions, while it was unaffected by desipramine + 6-OHDA, substantia nigra lesion, and desipramine + 5,7-dihydroxytryptamine. The present results strongly suggest that ECS-induced muricide inhibition of the OB rat is due to increased activity of the noradrenaline but not of dopamine and serotonin neurons.

Adrenergic Fibers↗

Handling in infancy, brain laterality and muricide in rats.

Rats were handled for the first 20 days of life or were not disturbed. Between 21 and 50 days approximately half of each group was reared in enriched environments while the remainder was group reared in laboratory cages. When adult, four males from each litter received a right neocortical ablation, a left ablation, a sham operation, or no surgery. They were tested for mouse killing between 9-12 months of age. Intact non-handled controls without enrichment experience had a 96% incidence of muricide. Handling and enrichment treatments independently and additively reduced the rate of mouse killing in animals with intact brains. There was no evidence of brain laterality for animals which received no extra stimulation in early life. In contrast, the brains of handled animals were lateralized, with the left lesion group having a higher killing response than the right. Non-lesioned handled rats had approximately the same level of muricide as those with a right hemisphere lesion, leading to the inference that in the intact brain the left hemisphere inhibits the killing response of the right.

Aggression↗

Social conflict analgesia: inhibition of early non-opioid component by diazepam or flumazepil fails to affect appearance of late opioid component.

Two forms of analgesia (opioid and non-opioid) are associated with social conflict in mice. The non-opioid form is seen in response to the scent of an aggressive conspecific or defeat experience, whilst the opioid form occurs in response to extended conspecific attack. Recently, it has been reported that the non-opioid reaction is dose-dependently blocked by diazepam and by Flumazepil (Ro15-1788; a benzodiazepine receptor antagonist). In view of the temporal relationship between these two reactions, the present study was conducted to determine whether activation of non-opioid substrates is a necessary precursor to the development of opioid analgesia. Results indicate that inhibition of non-opioid analgesia by diazepam (2-4 mg/kg), or by Flumazepil (20-40 mg/kg), does not alter the opioid analgesic reaction to conspecific attack. Findings are discussed in relation to the presumed adaptive significance of these biologically-meaningful forms of pain inhibition.

Aggression↗

Further evidence for mirror-reversed laterality in lines of fish selected for leftward or rightward turning when facing a predator model.

In the teleost fish Girardinus falcatus eye preferences for inspecting a potential predator is highly heritable and this consented to select lines with opposed laterality. In previous studies individuals from a RD line (rightward turning when facing a dummy predator) and those from a LD line (leftward turning) were subjected to several other laterality tests (most of which, possibly all, were visually based). Since they obtained opposite scores in all tests, it was suggested that LD and RD fish have complete mirror-reversed organizations of the brain. Here, we studied fish from selected lines in a new set of laterality tests including some non-visual tests. They included measures of (1) rotational preference in the home tank (2) direction of spontaneous swimming in the dark (3) escape trajectories after delivery of an auditory stimulus (4) escape turning direction to a fast approaching visual stimulus. The results of the first three tests are congruent with the finding of previous studies in that fishes of the two lines showed opposite direction of lateralisation. When tested for laterality in the escape response to a fast approaching stimulus, fish of the LD and RD lines showed no differences and both were biased toward leftward escape. Overall these results suggest the existence in G. falcatus of a single mechanism controlling a co-ordinate placement of the great majority of lateralised functions. Yet the results of the fourth test suggest that a few lateralized functions are controlled by different mechanisms that were unaffected by artificial selection.

Acoustic Stimulation↗

The cardiovascular and behavioral response to cat odor in rats: unconditioned and conditioned effects.

Cardiovascular and behavioral responses were recorded in rats during exposure to cat odor. Rats were habituated to an open rectangular arena that contained a small enclosed wooden box in which they could hide. On day 1 of the experiment, after 30 min in the apparatus, rats were presented with a piece of fabric collar for 60 min. On day 2, rats were presented with an identical piece of fabric collar, except that it had been worn by a cat and therefore exuded cat odor. On day 3, rats were again presented with an unworn cat collar, to determine any conditioned responses to the environment or stimulus (collar) previously associated with cat odor. Results showed significantly increased blood pressure and decreased activity during exposure to cat odor as well as avoidance of the odor stimulus and an increase in vigilance and risk-assessment measures. No significant change in heart rate was found during cat odor exposure. On day 3, a transient increase in blood pressure was seen as well as reduced activity and a range of defensive behaviors. This suggests some conditioning of fear to a context in which cat odor had previously been experienced. Heart rate was also significantly decreased on day 3. A transient rise in blood pressure was also seen when the unworn cat collar was placed into the apparatus on day 3, suggesting a conditioned response to a stimulus that has been previously associated with cat odor. This study demonstrates that a natural stressful stimulus can induce both unconditioned and conditioned autonomic and behavioral responses.

Animals↗

Facultative control of avian unihemispheric sleep under the risk of predation.

Birds and aquatic mammals are the only taxonomic groups known to exhibit unihemispheric slow-wave sleep (USWS). In aquatic mammals, USWS permits sleep and breathing to occur concurrently in water. However, the function of avian USWS has been unclear. Our study is based on the premise that avian USWS serves a predator detection function, since the eye contralateral to the awake hemisphere remains open during USWS. If USWS functions as a form of predator detection, then birds should be able to control both the proportion of slow-wave sleep composed of USWS and the orientation of the open eye in response to changes in predation risk. To test these predictions we recorded eye state and the EEG of mallard ducks (Anas platyrhynchos) sleeping in groups of four birds arranged in a row. Birds at the ends of the row were more exposed than those in the central positions, who were flanked on both sides by other birds, and thus should perceive a greater risk of predation. Consistent with a predator detection function, when compared to birds in the group's center, birds at the exposed ends of the row showed a 150% increase in USWS and a preference for directing the open eye away from the group, the direction from which a predator is most likely to approach. Furthermore, during USWS mallards responded rapidly to threatening visual stimuli presented to the open eye. This ability to facultatively control sleep and wakefulness simultaneously in different regions of the brain probably involves the neuroanatomical interhemispheric separation responsible for independent hemispheric functioning during wakefulness in birds.

Animals↗