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Biomedical subjects

M Cabanac

Publications and source records attributed to M Cabanac.

At least 109 records · Page 6Linked to original sources

Analysis of a conflict between palatability and cold exposure in rats.

Rats were trained to feed each day from 10 o'clock to 12 noon. Once a week in an environment of Ta--15 degrees C, additional food was made available 16 m from a thermoneutral refuge. The additional food offered was either shortcake, meat pâté, peanut butter, Coca-cola, all of these (cafeteria), or laboratory chow. Although laboratory chow was also always available in their thermoneutral home, rats invariably ran in the cold to the feeder, especially so when the food offered was highly palatable. With such foods, animals took as much as half their nutrient intake in the cold. For less palatable food, rats went only once or twice to the feeder, and there ate little. The attractiveness of the various foods was ranked similarly by the amount eaten, the number of excursions to the feeder, and the time spent feeding in the cold. Meal duration and speed of running to the food were not influenced by palatability. For the whole group, the preference was: shortcake, Coca-cola, meat pâté, peanut butter, and chow. There was a considerable variation between rats in their attraction to different foods. Feeding behavior in a situation of conflict could be used to measure palatability.

Animals↗

Effects of an overfeeding regimen--the affective component of the sweet sensation.

In some isolated parts of North Africa, there persists an ancient Berber custom of imposing an overfeeding regimen on young girls before marriage, to achieve an obesity which is regarded as aesthetically pleasing. We have studied the effect of such a regimen, lasting 12--16 weeks, on blood lipids and on the affective reactions to sweet tastes in nine subjects. It is known that the pleasantness of alimentary cues i.e., the feeding behaviour, depends on the subject's nutritional state. Only three subjects gained weight (by 3,5 and 8 kg), in spite of the strong pressure to overeat. No change in plasma lipid concentrations were observed. Nevertheless, at the end of the regimen every subject showed a highly significant decrease in the rated pleasantness of sweet stimuli when they were tested fasting. However, the reduction in sweet pleasantness induced by ingestion of a 200 ml load of 1.4 M glucose solution was not changed by the overfeeding. Thus, pressure to overfeed can reduce hunger, as seen in the attractiveness of sweet foods in fasted subjects, without modifying glucose-induced satiety.

Adult↗

Physiological conflict in humans: fatigue vs. cold discomfort.

Six male human subjects were placed in a situation of physiological conflict, fatigue vs. cold discomfort. Dressed in swim suits and shoes they walked at 3 km X h-1 on a treadmill placed in a climatic chamber. The slope of the treadmill was varied from 0 to 24% and the ambient temperature (Ta) from 25 to 5 degrees C. The subjects could choose Ta when slope was imposed or the converse. They rated pleasure and displeasure of Ta and exercise. Deep body temperature and heart rate were monitored. The results show that the subjects adjusted their behavior to maintain approximatively steady deep body temperature and to limit heart rate below 120 beats X min-1. The physiological compromise was thus correlated to the drive for maximal pleasure-minimal displeasure in the two sensory dimensions fatigue and discomfort.

Adult↗

Homeostatic competition between food intake and temperature regulation in rats.

Rats obliged to leave a thermoneutral box to feed at air temperatures (Ta) of 25 degrees, 5 or -15 degrees C reduced the total time spent feeding and the duration of each meal as Ta fell, but increased their food intake by eating faster. Increasing the palatability of the food offered at -15 degrees C Ta did not prolong feeding but further increased food intake and the speed of eating. The estimated maximum fall in rectal temperature during feeding at -15 degree C was small (0.48 degrees +/- 0.15 degrees C, S.E.) but skin temperatures of ears and tail tip fell to near 0 degree C. These rats were able to maintain near-normal balances of food intake and body temperature by reallocating the time spent feeding and sheltering and by altering the speed of eating; they thus resolved a conflict between hunger and cold discomfort with little evidence of a strain on homeostasis.

Animals↗

Behavioral self warming and cooling of spinal canal by rats.

Rats with a chronic thermode implanted in their spinal canal could bar-press to warm or cool their spinal cord. With a "cold" lever, they cooled their spinal canal less in a cold environment than in a warm environment. With a "warm" lever they behaved in the same way, i.e., warmed their spinal canal more in a warm than in a cold environment. In a two-lever situation they pressed the cold and the warm levers alternatively in warm environment, but did not press either in cold environment. These results suggest that cold and warm spinal cord provided the rats with rewards of a different nature.

Animals↗

Homeostatic competition in rats fed at varying distances from a thermoneutral refuge.

Rats were fed in an air temperature of -15 degrees C at distances of 1, 2, 4, 8 or 16 m from a thermoneutral refuge. As the distance between the feeder and thermoneutrality increased, the number of excursions to feed decreased from 37 +/- 5 to 7 +/- 1 during the 2-hour feeding sessions; concomitantly, the meal duration increased from 1.2 to 5.2 min. The rate of eating and total feeding time were the same at all distances. The mass of food ingested was also constant except for a slight decline at 16 m. Meal duration was strongly correlated (r = 0.9) with the time taken to reach the feeder at each distance while the estimated cost/benefit of feeding episodes increased with distance. Estimates of body temperature indicated that significant falls in skin temperature occur over even short distances, while over greater distances core temperature probably also decreases. In the range of distances studied, rats accorded their hunger drive a higher priority than thermal preference, and chose to feed while tolerating greater thermal disturbance.

Animals↗

Temperature regulation and prostaglandin E1 fever in scorpions.

1. Scorpions Buthus occitanus and Androctonus australis were placed in a temperature gradient where they could select their thermopreferendum. Intrathoracic temperature was recorded continuously. 2. Both species selected 24.8 +/- 1.0 degrees C as their preferred body temperature. No nycthemeral cycle of preference was observed in the experimental conditions. Saline injection did not modify this thermopreferendum. 3. Prostaglandin E1 (PGE1) produced a fever. Duration and magnitude of fevers were related to PGE1 doses in a bell-shaped curve. The longest and highest fevers were obtained with 4 microgram . g-1 PGE1. 4. These results show that there is an ability to produce fever and, thus, indirectly, that there is a set point in body temperature regulation in arthropods, among the oldest known terrestrial animals.

Animals↗

Muscular work as thermal behavior in humans.

Human subjects were placed on a bicycle ergometer and left to pedal ad lib. for 43 min to warm themselves and thereby attain thermal comfort at an ambient temperature of 10 degrees C. Esophageal (Tes), tympanic (Tty), forehead, and hand skin temperatures were recorded. In addition, the work of pedaling was noted for each 2-min period. In some experiments sweating rate was also recorded. Two series of experiments were performed, the first with face fanning and the second with thermal insulation of the head. Face fanning resulted in decreased Tty, but in substantially increased Tes, which was 1.5 degrees C higher than Tty after an intense pedaling effort of 46-50 W. In experiments with head covering, a mild increase of both Tes and Tty was observed toward a position halfway between the extreme values obtained during face fanning. Simultaneously, pedaling intensity decreased to 16.7 W and the rate of sweating increased. In general, pedaling work was inversely proportional to intracranial temperature (Tty) and independent of trunk temperature (Tes). Therefore, motivation for muscular activity in humans exposed to cold appears to be goverened chiefly by the brain temperature.

Adolescent↗

[Pathology of thermoregulation].

Though the same symptoms are observed in either hyper- or hypothermia, the etiology may be of four different types: 1) the thermoregulatory mechanisms may be insufficient to adapt to temperature extremes in normal subjects; 2) there may be modifications in peripheral thermoregulatory responses, when the patient compensates for the deficiency or excess by other thermoregulatory responses: the internal temperature is then not distrubed but is not stable; 3) a central lesion causing loss of ability to oppose low temperatures results in hypothermia with coma as soon as the subject is exposed to cold. Loss of ability to oppose heat is not encountered: it is superimposable on the hyperexcitation of the centers that oppose heat; 4) modifications in thermoregulatory responses are mainly evident as fever, a protective defense reaction of the organism wich should be supported rather than fought. The inverse syndrome, if it exists, is difficult to distinguish from the loss of ability to oppose cold. The term of "anapyrexia" is suggested for this latter condition. Whatever the diagnosis, measurment of rectal temperature is insufficient for diagnosis, and thermoregulatory responses have to be evaluated. Therapy for the same symptom may, in fact, be inversed depending on the etiology. It may well be that thermoregulatory function is poorly understood because of its true importance. Possessing no specific organs, it uses the various reactions that have appeared during phytogenetic development to ensure thermal homeostasis. It acts permanently through multiple, independent, regulatory loops allowing many compensatory mechanisms. This underlines, in an indirect manner, the need for the organism to maintain at all costs a constant temperature. This permanent thermal homeostasis implies that only severe disorders result in hyper- or hypothermia, that major disturbances are rapidly fatal, which emphasizes the fundamental importance of thermorgulation.

Adult↗

[Salivation during hyperthermia in human beings (author's transl)].

In numerous species, saliva secretion is an important thermolytic response to hyperthermia. The aim of the present work was to look for a thermolytic saliva secretion in human beings. Saliva collected by cannulation was not secreted more during active or passive hyperthermia than during control periods. Therefore, it can be concluded that saliva secretion has no thermoregulatory role in human beings.

Body Temperature Regulation↗

Sensory pleasure.

In response to a stimulus, a sensation is tridimensional: qualitative, quantitative, and affective. The affective part of sensation, pleasure or displeasure, depends on the qualities of the stimulus. Within a narrow range of intensity, chemical, thermal, and mechanical stimuli are able to arouse pleasure. In addition, pleasure depends on the internal state of the subject. This is easily observed in the case of temperature: pleasure is aroused by a warm stimulus in a hypothermic subject and by a cold stimulus in a hyperthermic subject. This property of a given stimulus to arouse pleasure or displeasure according to the internal state of the subject is termed alliethesia. Alliesthesia is also produced by chemical and mechanical stimuli. Acquired preferences or aversions for alimentary stimuli represent a case of alliesthesia. In the same way, the capacity of any indifferent stimulus to become rewarding, or punishing, by association with some reward or punishment, is also a case of alliethesia. In all cases, pleasure is a sign of a stimulus useful to the subject; displeasure a sign of danger. Usefulness and danger are judged by the central nervous system with reference to homeostasis and the set point of the implied regulation. Pleasure and displeasure thus appear to motivate useful behaviors.

Animals↗

Natural selective cooling of the human brain: evidence of its occurrence and magnitude.

1. The technique of perceptual rating of thermal stimuli was used, in eight human subjects immersed in warm water, in order to appreciate whether they were hypo-, normo- or hyperthermic. Oesophageal, tympanic and forehead skin temperatures were recorded, as also was the temperature of the skin above the angularis oculi vein. Once the subjects gave clearly hyperthermic ratings, one arm was exposed to a 6 m/s wind. After 5--10 min the arm was re-immersed and the face was fanned. 2. Fanning of the arm resulted in lowering of body core temperature. However ratings of thermal stimuli remained hyperthermic. 3. Face fanning decreased forehead skin, angularis oculi vein and tympanic temperatures. Hyperthermic ratings were replaced by normothermic ratings, although oesophageal temperature continued to rise. 4. The upper limit of oesophageal temperature for normothermic ratings was 37.o6 +/- 0.09 degrees C during the control period without fanning. This temperature rose to 37.91 +/- 0.09 degrees C during facial ventilation. 5. These results suggest a selective cerebral cooling due to venous blood returning from facial skin via the ophthalmic vein to the cavernous sinus, where a cooling of arterial blood ascending to the brain can take place.

Body Temperature Regulation↗

Open loop increase in trunk temperature produced by face cooling in working humans.

1. Five human subjects pedalled on a bicyle ergometer for at least two 74 min periods at 10 degrees C ambient temperature. During the first period the subjects cycled for 42 min with face fanning, followed by 32 min with the head thermally insulated. In the second period, this procedure was reversed. Oesophageal (tes), tympanic (Tty), forehead and hand skin temperatures were recorded. In addition, heart rate (H.R.) was counted throughout the experiments, and the technique of perceptual rating of cool and warm stimuli was used in order to appreciate whether the subjects were hypo-, normo-, or hyperthermic. 2. Face fanning resulted in decreased Tty, decreased H.R., mild skin vasoconstriction but increased Tes. 3. Head covering resulted in increased Tty and H.R., while Tes decreased slightly, due to peripheral vasodilatation. 4. When their faces were being fanned so that Tty was low and Tes was high, the subjects gave slightly hypothermic ratings. Ratings were clearly hyperthermic when their heads were covered and Tty was high and Tes was low. 5. The close correlation between vasomotor response and H.R. on the one hand and Tty on the other confirms that this variable is a better approximation of regulated core temperature than Tes. 6. Increase in Tes during face fanning and decrease in Tes during face insulation is new evidence for the possibility of the human brian being cooled during exercise by cool blood returning from the face. 7. We suggest that this selective brain cooling determines the apparent upper resetting of core temperature during exercise while brain temperature remains precisely regulated and constant.

Body Temperature Regulation↗

Bradycardia during face cooling in man may be produced by selective brain cooling.

In human subjects, bradycardia was produced by immersing the subjects' faces in water at 15 degrees C when they were hyperthermic. When they were hypothermic, the same face cooling produced tachycardia. It is suggested that the difference in cardiac response originates in selective brain cooling during hyperthermia, by venous return from the face to the brain, via ophthalmic veins.

Adult↗

[Reversal of human ophthalmic vein blood flow : selective cooling of the brain].

Direction of blood flow in angularis oculi veins was recorded in humans. In mild hypothermia, blood flow was weak and directed from brain to face. In hyperthermia, however, blood flowed rapidly in the opposite direction, angularis oculi vein collecting cool facial blood and supplying cavernous sinus. Therefore selective cooling of human brain is possible.

Adult↗