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Emotional behavior and arrhythmias induced in cats by hypothalamic stimulation.

As the relationship between emotional behavior and electrocardiographic (ECG) change induced by hypothalamic stimulation is poorly understood, eighty-four points in various areas within the hypothalamus in conscious cats were stimulated electrically through chronically implanted electrodes, the objective being to clarify the behavior accompanying ECG changes, in particular poststimulus arrhythmias. Forty-one of 84 points elicited behavioral patterns such as defense reaction, pseudo-rage and restlessness (classified as group A), and in twenty-one (51%) of these 41 points arrhythmias occurred after cessation of stimulation. Forty-three of 84 points elicited behavioral patterns including predatory, exploratory and other behavioral responses (classified as group B), and in three (7%) of 43 points, poststimulus arrhythmias followed. Under light anesthesia, stimulations of twofold current intensity were applied at these points, and the incidences of the arrhythmias did not change in either group. The arrhythmia-inducing area in the cases of group A was found to lie dorsal and caudal to the optic chiasma and to extend caudally in the fornix. Three points in the cases of group B were located in the outer area of the aforementioned area. These studies showed that arrhythmias and group A behavior were observed mainly from stimulation of the anterior hypothalamus, whereas stimulation of other areas of the hypothalamus, including the lateral and the posterolateral hypothalamus, produced group B behavior and no arrhythmias.

Aggression↗

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↗

A comparison of prey eating by spontaneous mouse killing rats and rats with lateral septal, medial accumbens, or medial hypothalamic lesions.

Rats with lesions of the medial hypothalamus and spontaneous mouse killing rats were tested for mouse and rat pup killing in their living cages 1 and 3 days postoperatively. The lesioned and spontaneous killers did not differ significantly in amount of prey eaten within 10 min following a mouse kill on either Day 1 or 3 postoperatively. Both groups ate significantly more of the prey than did sham-lesioned rats that were presented with a freshly killed mouse. When 4 hr was allowed for eating following a kill, rats with lesions of the lateral septum, medial accumbens, and medial hypothalamus each ate significantly more than spontaneous mouse killing rats. The greater prey eating by the lesioned animals is probably not the result of the prey being a highly palatable food since rats with medial hypothalamic lesions but not those with medial accumbens or septal lesions showed enhanced consumption of a sweetened lab chow over a 4 hr period. The quantitative similarity in the prey eating by spontaneous and lesion-induced mouse killers in the period immediately following the kill serves to further establish a relationship between these two kinds of killing. The greater eating that occurs in lesioned animals when a longer time is allowed for eating is consistent with other observations of excesses in the killing behavior of lesioned animals relative to spontaneous killers.

Animals↗

Ventromedial tegmental lesions abolish offense without disturbing predation or defense.

Offense, defense, and predation, three kinds of aggressive behavior, are differentially affected by lesions of the ventromedial tegmentum of the brainstem of the rat. The lesions abolish offense while leaving defense and predation undisturbed. The offense behavior against another strange male, including bite-and-kick attack, offensive sideways posture, and offensive upright posture, was totally abolished, while the rats showed intact motor patterns of defensive upright posture, chasing, and killing bite in the tests for defense and predation. It is argued that these results support a motivational systems analysis of mammalian aggressive behavior. According to such an analysis, offense, defense, and predation are controlled by discrete motivational mechanisms located in different brainstem regions.

Aggression↗

Lasting effects on rodent anxiety of a single exposure to a cat.

The effects on anxiety and risk assessment of exposure to a cat were tested in hooded rats. Anxiety and risk assessment were measured in an elevated plus maze and hole board in a room different from the cat-exposure room. Behavior was tested either 1, 2, 7, 14, or 21 days after cat exposure in different groups of rats. A single exposure to a cat increased anxiety over controls in the plus maze from 1 to 21 days after exposure to a cat. The effects on anxiety were independent of activity or exploratory tendency. Severity of anxiety produced was predicted by the approach, but not the attack, behavior of the cat. Analogous correlations between traumatic stimuli and anxiety are seen in humans suffering from posttraumatic stress disorder (PTSD). Risk assessment in the plus maze was reduced over the same period in rats exposed to cats. Risk assessment was weakly correlated with anxiety. The findings are discussed with respect to the potential of this phenomenon as a model of generalized anxiety disorder found in PTSD.

Animals↗

Balancing variable patch quality with predation risk.

Patch choice is almost always under the influence of multiple factors. Patch quality and the threat of predation are two such factors that have been shown to influence the foraging decisions of animals. In addition, aspects of patch quality may also vary with time, and consequently animals should incorporate temporal information to reduce their uncertainty about current patch conditions. The temporal weighting rule (TWR), which has been validated in previous studies, describes how animals should choose among variable options with the passage of time. In this study, we varied an additional factor, predation risk, along with certainty about patch yields in a field experiment, utilizing individually marked, free-ranging least chipmunks, Tamias minimus. We gave the animals in each condition experience at our experimental patches and then recorded patch choices a few minutes or one to 2 days later. The results show that animals combined perceived predation risk with a progressively shifting assessment of patch quality to form estimates of overall patch value as modeled by TWR. Based on the information available, the animals' patch choices were, arguably, the most adaptive choices.

Animals↗

Role of nutrient bound of prey on the dynamics of predator-mediated competitive-coexistence.

The coexistence of competitive species with a shared predator is well established. The effect of 'food-value' on predator-prey dynamics has also received much attention. However, the study of a nutrient bound of prey, specifically on predator-mediated competitive-coexistence has not received much attention. Here we study the effects of the caloric content or a nutrient bound of prey on the dynamics of competitive-coexistence with the shared predator in a specific model. We propose and analyze a mathematical model for exploitative competition of two prey species with a shared predator. The change of dynamic stability due to the variation of a nutrient bound of each prey on predator-mediated dynamics is studied through extensive numerical experiments. Our analytical and numerical results demonstrate that variation in a nutrient bound promotes the switching of dynamics and may be treated as a driving force for the dynamics of competitive-coexistence with the shared predator.

Animal Nutritional Physiological Phenomena↗

Evidence of hunting and hafting during the Middle Stone Age at Sibidu Cave, KwaZulu-Natal, South Africa: a multianalytical approach.

Points and point fragments from Middle Stone Age layers (dated to between 50,000 and 60,000 years ago) from Sibudu Cave, KwaZulu-Natal, South Africa, were examined to establish whether they were used as hafted spearheads for hunting. A multi-analytical approach was followed, using macrofracture analysis, use-wear analysis, and residue analysis. In addition to the analytical processes, an experimental project tested the results of the macrofracture analysis on local raw materials. The study shows that points from Sibudu Cave were indeed hafted and used as hunting tools. It was further established that plant twine was probably the preferred binding material to attach the points to wooden hafts. Resin may have been used as an adhesive in combination with the binding material. A detailed examination of the ochre distribution on the points confirmed that ochre was also part of the hafting arrangement. The need to use a dependable methodology for the recognition of hunting and hafting traces on stone points from the southern African Middle Stone Age context is briefly discussed.

Animals↗

Predation, competition, and nutrient recycling: a stoichiometric approach with multiple nutrients.

A model for two competing prey species and one predator is formulated in which three essential nutrients can limit growth of all populations. Prey take up dissolved nutrients and predators ingest prey, assimilating a portion of ingested nutrients and recycling or respiring the balance. For all species, the nutrient contents of individuals vary and growth is coupled to increasing content of the limiting nutrient. This model was parameterized to describe a flagellate preying on two bacterial species, with carbon (C), nitrogen (N), and phosphorus (P) as nutrients. Parameters were chosen so that the two prey species would stably coexist without predators under some nutrient supply conditions. Using numerical simulations, the long-term outcomes of competition and predation were explored for a gradient of N:P supply ratios, varying C supply, and varying preference of the predator for the two prey. Coexistence and competitive exclusion both occurred under some conditions of nutrient supply and predator preference. As in simpler models of competition and predation these outcomes were largely governed by apparent competition mediated by the predator, and resource competition for nutrients whose effective supply was partly governed by nutrient recycling also mediated by the predator. For relatively small regions of parameter space, more complex outcomes with multiple attractors or three-species limit cycles occurred. The multiple constraints posed by multiple nutrients held the amplitudes of these cycles in check, limiting the influence of complex dynamics on competitive outcomes for the parameter ranges explored.

Animal Nutritional Physiological Phenomena↗

Understanding foraging behaviour in spatially heterogeneous environments.

The role of stochasticity and spatial heterogeneity in foraging systems is investigated. We formulate a spatially explicit model which describes the behaviour of grazing animals in response to local information using simple stochastic rules. In particular the model reflects the biology in that decisions to move to a new location are based on visual assessment of the sward height in a surrounding neighbourhood, whilst the decision to graze the current location is based on the residual sward height and olfactory assessment of local faecal contamination. It is assumed that animals do not interact directly, but do so through modification of, and response to a common environment. Spatial heterogeneity is shown to have significant effects including reducing the equilibrium intake rate and increasing the optimal stocking density, and must therefore be taken into account by resource managers. We demonstrate the relationship between the stochastic spatial model and its non-spatial deterministic counterpart, and in the process derive a moment-closure approximation to the full process, which can be regarded as an intermediate, or pseudo-spatial model. The role of spatial heterogeneity is emphasized, and better understood by comparing the results obtained from each approach. The relative efficiency of random and directed searching behaviour in spatially heterogeneous environments is explored for both clean and contaminated pastures, and the impact of faecal avoidance behaviour assessed.

Animals↗

Behavior pattern (innate action) of individuals in fish schools generating efficient collective evasion from predation.

The schooling of fishes is one typical animal social behavior. One primary function of fish school is to protect members when attacked by predators. One main way that the school reduces the predator's chance of making a successful kill is to confuse the predator as it makes its strike. This may be accomplished by collective evasion behaviors organized through integration of motions of individual fish made based on their innate actions (behavior patterns). In order to investigate what kind of behavior pattern of individuals can generate the efficient collective evasion of a school, we present a model of evasion behavior pattern which consists of three component behavior patterns, schooling, cooperative escape, and selfish escape behavior patterns and the rule for choice of one among them with proper timing. Each fish determines its movement direction taking into account simultaneously three kinds of elemental motions, mimicking its neighbors, avoiding collisions with its nearest neighbors, and escaping from an approaching predator. The weights of three elemental motions are changed depending on which component behavior pattern the fish carries out. The values of the weights for three component behavior patterns can be definitively determined under the condition that the collective evasion of the school becomes the most efficient, that is, the probability that any member is eaten by the predator becomes minimum.

Animals↗

The smell of danger: a behavioral and neural analysis of predator odor-induced fear.

The odors of predators used in animal models provide, in addition to electric footshock, an important means to investigate the neurobiology of fear. Studies indicate that cat odor and trimethylthiazoline (TMT), a synthetic compound isolated from fox feces, are often presented to rodents to induce fear-related responses including freezing, avoidance, stress hormone and, in some tests, risk assessment behavior. Furthermore, we report that different amounts of cat odor impregnated on small-, medium-, or large-sized cloths impact the display of fear-related behavior when presented to rats. That is, rats exposed to a large cat odor containing cloth exhibit an increase in fear behavior, particularly freezing, which remains at high levels in habituation tests administered over a period of 7 days. The large cloth also induces a long-lasting increase in avoidance behavior during repeated habituation and extinction tests. A review of the brain regions involved in predator odor-induced fear behavior indicates a modulatory role of the medial amygdala, bed nucleus of the stria terminalis, and dorsal premammillary nucleus. In addition, the basolateral amygdala is involved in fear behavior induced by cat odor but not TMT, and the central amygdala does not appear to play a major behavioral role in predator odor-induced fear. Future research involving the use of predator odor is likely to rapidly expand knowledge on the neurobiology of fear, which has implications for understanding fear-related psychopathology.

Amygdala↗

Biochemistry, toxicology and ecology of the venom of the spider Cupiennius salei (Ctenidae).

The venom of Cupiennius salei consists of many low molecular compounds, nine neurotoxic acting peptides (CSTX), at least eight neurotoxic and cytolytic acting peptides (cupiennins), a highly active hyaluronidase, and several hitherto unidentified proteins. The structure of several peptides is given. A synergistic action between three main groups is proposed: injected into the prey tissue, the enzyme hyaluronidase acts as a spreading factor, thus, facilitating a better access of venom neurotoxins to their targets, cupiennins disturb cell membranes and influence cell excitability, through this augmenting the mere neurotoxic effect of CSTX-1 synergistically. The venom glands of an apocrine secretion type provide an average of 12 microl per milking (adult female). Venom sensitivity of arthropods differs between 0.001 and >20nl venom/mg insect. Regeneration time of an empty venom gland is approx. 2 weeks. Consequently, spiders may encounter situations in which they have to decide whether their limited venom storage is sufficient to kill a given prey item. Experiments are presented which show that C. salei knows the actual venom content of its venom glands. It injects no more venom than necessary. This coincides with an experimentally determined LD(50) value in harmless prey items, but C. salei injects more venom in aggressive or otherwise dangerous prey items (quantification of injected venom amounts by monoclonal antibodies). These results indicate that C. salei uses its venom as economically as possible and this supports our venom optimisation hypothesis.

Amino Acid Sequence↗

Dispersal-mediated coexistence of competing predators.

Models of metapopulations have often ignored local community dynamics and spatial heterogeneity among patches. However, persistence of a community as a whole depends both on the local interactions and the rates of dispersal between patches. We study a mathematical model of a metacommunity with two consumers exploiting a resource in a habitat of two different patches. They are the exploitative competitors or the competing predators indirectly competing through depletion of the shared resource. We show that they can potentially coexist, even if one species is sufficiently inferior to be driven extinct in both patches in isolation, when these patches are connected through diffusive dispersal. Thus, dispersal can mediate coexistence of competitors, even if both patches are local sinks for one species because of the interactions with the other species. The spatial asynchrony and the competition-colonization trade-off are usual mechanisms to facilitate regional coexistence. However, in our case, two consumers can coexist either in synchronous oscillation between patches or in equilibrium. The higher dispersal rate of the superior prompts rather than suppresses the inferior. Since differences in the carrying capacity between two patches generate flows from the more productive patch to the less productive, loss of the superior by emigration relaxes competition in the former, and depletion of the resource by subsidized consumers decouples the local community in the latter.

Algorithms↗