Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “SWIMMING”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 1,783 records · Page 99Linked to original sources

Behavior and corticosteroid response of Maudsley reactive and nonreactive rats in the open field and forced swimming test.

Maudsley reactive (MR) and nonreactive (MNRA) male rats were tested in the open field and in the forced swimming test. MR rats defecated more and were less active than MNRA rats in the open field. MR rats also defecated more, but were more immobile in the forced swim test. The two strains did not differ significantly in basal corticosteroid levels or corticosteroid levels in response to either test. These results suggest that the increased defecation rates exhibited by MR rats in various tests are not indicative of a general increase in "emotionality" or stress level.

Animals↗

Maudsley reactive and nonreactive rats in the forced swim test: comparison in fresh water and soiled water.

Maudsley reactive (MR) and nonreactive (MNRA) and Sprague-Dawley (SD) male rats were tested for their immobility response in the forced swim test when the water was fresh or soiled by a rat of the same or other strain. For all strains, rats tested in soiled water were less immobile than rats in fresh water. The three strains did not differ as producers of soiling substance, but did differ in their response to it. The MR strain was least responsive, whereas the MNRA and SD did not differ from one another. These results support a previous study suggesting that MR rats are more immobile than MNRA rats in the forced swim test. The interpretation of these findings regarding the use of the Maudsley rat strains as an animal model for studying anxiety and/or depression is discussed.

Animals↗

Swimming activity in dystonia musculorum mutant mice.

Dystonia musculorum (dt) mutant mice, characterized by degeneration of spinocerebellar fibers, were evaluated in a visible platform swim test. It was found that dt mutants were slower to reach the platform than normal mice. However, the number of quadrants traversed was not higher in dt mutants. It is concluded that spinocerebellar fibers to the vermis are important in limb control during swimming but not in visuo-motor guidance (navigational skills) of the animal towards a visible goal, at least in regard to the quadrant measure. It is not excluded that a measure tracing their path may find a mild deviation from the goal.

Animals↗

Antinociceptive and hypothermic crosstolerance between continuous and intermittent cold-water swims in rats.

Antinociceptive responses induced by continuous (CCWS: 2 degrees C, 3 min) and intermittent (ICWS: 2 degrees C, 18 10-s swims, 18 10-s recoveries) cold-water swims differ in their sensitivity to opioid antagonists and crosstolerance with morphine. The present study examined whether CCWS and ICWS antinociception and hypothermia displayed crosstolerance in rats. Jump thresholds were significantly increased following acute exposure to CCWS (30 min) and ICWS (30-60 min). CCWS antinociception displayed tolerance (90% reduction) to CCWS after 14 days and crosstolerance (100% reduction) to ICWS on the fifteenth day. ICWS antinociception displayed tolerance (74% reduction) to ICWS and crosstolerance (81% reduction) to CCWS. Core body temperatures were significantly decreased following acute exposure to CCWS (30 min) and ICWS (30-90 min). Although CCWS and ICWS hypothermia displayed tolerance to the same stressor and crosstolerance to the other stressor, the changes in the antinociceptive and hypothermic effects failed to correlated significantly with each other.

Acclimatization↗

Performance of four different rat strains in the autoshaping, two-object discrimination, and swim maze tests of learning and memory.

The performance of four strains of rats commonly used in behavioural research was assessed in three different tests of learning and memory. The four strains included three outbred lines (Long-Evans, Sprague-Dawley, Wistar) and one inbred strain (S3). Learning and memory were tested using three different paradigms: autoshaping of a lever press, a two-object discrimination test, and performance in a two-island swim maze task. The pigmented strains showed better performance in the autoshaping procedure: the majority of the Long-Evans and the S3 rats acquired the response, and the majority of the Wistar and Sprague-Dawley failed to acquire the response in the set time. The albino strains were slightly better in the swim maze than the pigmented strains. There appeared to be a speed/accuracy trade-off in the strategy used to solve the task. This was also evident following treatment with the cholinergic-depleting agent hemicholinium-3. The performance of the Long-Evans rats was most affected by the treatment in terms of accuracy and the Wistar and Sprague-Dawleys in terms of speed. In the two-object discrimination test only the Long-Evans showed satisfactory performance and were able to discriminate a novel from a known object a short interval after initial exposure. These results show large task- and strain-dependent differences in performance in tests of learning and memory. Some of the performance variation may be due to emotional differences between the strains and may be alleviated by extra training. However, the response to pharmacological manipulation may require more careful evaluation.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

The activity of rats in a swimming situation as a function of water temperature.

Previous research has shown that time before drowning in rats decreases gradually as stress is increased by varying water temperature in the swimming situation. In the present research, the activity of swimming rats appeared to be a U function of varying water temperature, lending support to the notion that activity is a behavioral measure that estimates the rats chances of survival in the water. This conclusion was further supported by the covariation of activity with a different behavioral measure of survival. In addition, activity during sessions decreased gradually, suggesting that a lowered activity is an adaptive response in the rat. Activity, thus, appears to be negatively correlated to the rat's survival chances under colder (14-23 degrees) and warmer (23-47 degrees) temperatures; i.e., in a more stressful situation, including extreme fear. It may be, therefore, that a decrease in activity obtained in present laboratory models (i.e., immobility) is more relevant to the extinction of fear than despair, as reported by other researchers.

Animals↗

Behavioral and physiological effects of different water depths in the forced swim test.

Rats were immersed for 15 min in a forced swim test in cylinders filled with water to a depth of 20 or 35 cm. The following day, they were reimmersed for a 5-min test period at one of these two depths. Water immersion, regardless of water depth, resulted in increased serum lactate and corticosterone levels, reduced serum carbon dioxide and potassium levels, a metabolic acidosis, and an increase in the phosphorus/potassium ratio. Testing at the greater water depth resulted in lower immobility times, higher lactate and lower carbon dioxide levels, a greater metabolic acidosis, and a higher phosphorus/potassium ratio than testing at the shallower depth. Water depth did not significantly affect corticosterone or potassium responses. None of the interactions between day 1 and day 2 depth was significant. The correlation between immobility time and corticosterone was very low, whereas the correlation with lactate, carbon dioxide, anion gap, and the phosphorus/potassium ratio were high. The inference from these results is water depth at time of testing affects the rat's behavioral and physiological reactions in the forced swim test and prior exposure to water at any depth does not.

Animals↗

Physical activity does not account for the physiological response to forced swim testing.

Two experiments were conducted to examine physiological variables associated with the immobility response in the forced swim test. The first study compared the effects of water immersion, treadmill running, and foot shock, and showed that the time-related pattern of reactions to these three conditions, especially those involving lactate, glucose, anion gap (a measure of metabolic acidosis), and carbon dioxide differed significantly. The second study examined the role of food deprivation, and showed that this manipulation does not affect the behavior or physiological response of rats to testing. These results indicate that the physiological changes occurring during the forced swim are not simply due to increased physical activity or stress.

Acid-Base Equilibrium↗

Circannual changes in the duration of the immobility response of rats in the forced swim test.

Separate groups of male rats were tested in the forced swim test on the third Tuesday of each mo for 14 mo. A distinct pattern was observable in their immobility response such that animals were most immobile during the winter months (Dec-Mar) and least immobile during the summer months (June-Sept). Bicarbonate-carbon dioxide levels were significantly correlated with immobility times (r = 0.48), as were glucose (r = 0.34) and phosphorus (r = -0.33) levels, whereas corticosterone and testosterone levels were not significantly correlated with immobility. These results indicate that there is a circannual rhythm in the floating behavior of rats in the forced swim test.

Animals↗

Heart rate in humans during underwater swimming with and without breath-hold.

Heart rate was monitored, by way of radiotelemetry, from 6 male subjects of mean age (+/- SE) 24 +/- 1 years and of mean mass 73.5 +/- 2.5 kg. Measurements were made in a 25 m pool at a water temperature of 28 degrees C. Resting heart rate was 67 +/- 3.7 beats X min-1 and when the subjects submerged themselves completely in the pool, but remained inactive, there was a prompt, gradual reduction in heart rate which reached 48 +/- 2.6 beats X min-1 within 30 sec and 40 +/- 2.6 beats X min-1 within 59 +/- 5.6 sec (maximum duration). When they propelled themselves under water for 33 sec by kicking their legs and breathed through a snorkel tube, heart rate increased progressively to a value of 118 +/- 4.1 beats X min-1 at 28 sec. However, when they performed the same manoeuvre while holding their breath, there was an initial increase in heart rate to 106 +/- 5.7 beats X min-1 within the first 10 sec. This was followed by a decline in heart rate which was more rapid than that recorded during inactive submersion and which eventually reached 48 +/- 4.4 beats X min-1 at mean underwater duration of 33 +/- 1.8 sec. It is concluded that during the first 10-15 sec of underwater breath-hold swimming in humans, the cardiovascular response (as indicated by heart rate) is similar to that seen during a similar level of exercise while breathing air. From then on there is a progressively more intense bradycardia which is probably indicative of an oxygen conserving response consisting of reduced perfusion of most of the body except the heart, CNS and active locomotory muscles. The degree and rate of onset of this proposed oxygen conserving response are influenced by the intensity of the exercise performed while under water and whether or not the period of underwater breath-hold swimming is preceded by exercise.

Adaptation, Physiological↗

The correlation between swim-stress induced antinociception and [3H] leu-enkephalin binding to brain homogenates in mice.

Mice which had been made to swim for 3 minutes showed a tail flick latency which was significantly longer than that of unswum controls. The [3H] leu-enkephalin [LE] binding to brain homogenates from swum mice was significantly reduced when compared with that form unswum controls. Scatchard analysis revealed that the reduction in binding occurred at the LE low affinity site. However, when homogenates were allowed a preincubation period of 20 min at 37 degree C, the difference in LE binding between swum and unswum mice was no longer apparent. These data are interpreted to suggest that the reduced LE binding may be due to the occupation of a proportion of the opiate receptor population by an endogenous ligand. A correlation between the duration of the swim induced antinociceptive response and the changes in LE binding is described which although non-significant, is consistent with the interpretation for the involvement of endogenous opiates in the observed increases in tail flick latency.

Animals↗

Opioid modulation of feeding behavior following forced swimming exercise in male rats.

Adult male rats were subjected to an acute bout of swimming exercise for 50 min during the early morning or late afternoon. Compared to nonexercised controls, all exercised groups showed an initial approximately 2-hr period of increased feeding (period I hyperphagia). A 50-min period of sham swimming (wading in water) was followed by period I hyperphagia but not period II hypophagia. Opioid modulation of period I hyperphagia was indicated by the ability of naltrexone to antagonize, in a dose-dependent manner, the postexercise hyperphagia. Furthermore, plasma concentrations of immunoreactive B-endorphin (Ir-B-ep) were increased during period I following exercise. Opioid modulation of the period II hypophagia was equivocal. Plasma Ir-B-ep was not altered in period II, and naltrexone did not modify period II hypophagia. The ability of 2-deoxy-D-glucose to induce feeding was slightly depressed (p less than 0.05) during period II after exercise, and the ability of exogenous insulin to induce feeding was not changed. These differential feeding responses to 2-deoxy-D-glucose (opioid-mediated) and insulin (relatively opioid-independent) suggest that an opioid deficiency may exist during period II and contribute to the hypophagia.

Animals↗

Effects of neuroleptics displaying antidepressant activity on behavior of rats in the forced swimming test.

Levomepromazine, thioridazine and cis-chlorprothixene, neuroleptics with antidepressant activity, trans-chlorprothixene, the therapeutically inactive isomer of chlorprothixene, clozapine, an atypical neuroleptic, and imipramine, a classical antidepressant, were studied in the forced swimming test in rats after single or chronic administration. Levomepromazine (1.5 mg/kg), clozapine (2.5 and 5.0 mg/kg) and imipramine (10 mg/kg) after single administration, 1 hr before the test, shortened the period of the immobility. After chronic administration only imipramine (10 mg/kg orally, twice daily, for 10 days) diminished the immobility. Levomepromazine, thioridazine, cis-chlorprothixene and trans-chlorprothixene (1.5 mg, orally, twice daily, for 10 days), 15-18 hr after the last dose did not influence the immobility, although the behavioral parameters in the open field test were not depressed. It is concluded that the forced swimming test is not a suitable pharmacological model for revealing antidepressant activities of certain neuroleptics that are useful in treating certain forms of human depression.

Animals↗

Stressor-provoked response patterns in a swim task: modification by diazepam.

When placed in a water-filled arena in which one area is illuminated mice tend to remain in the illuminated region. Moreover, in a forced-swim task mice initially exhibit vigorous responding followed by a rapid decay of active swimming, and the adoption of a characteristic floating posture. Immediately following exposure to inescapable shock the response invigoration was appreciably enhanced, as was the tendency to remain in the illuminated region of the arena. Administration of low doses of diazepam (0.5 and 1.0 mg/kg) prior to testing effectively eliminated the response invigoration, as well as the response of approaching the illuminated region of the arena. It is proposed that the behavioral variations evident soon after uncontrollable shock are related to a transient increase of anxiety or vigilance. Moreover, it is suggested that several time-dependent behavioral variations associated with inescapable shock may be related to alterations of anxiety.

Animals↗

Cold swimming stress: effects on serum lipids, lipoproteins and LCAT activity in male and female rats.

Effects of consistent cold swimming stress on lipid and lipoprotein metabolism parameters were studied using male and female rats over a period of 60 and 20 days respectively. At the end of treatment serum total cholesterol, high density lipoproteins (HDL-C) and lecithin:cholesterol acetyltransferase (LCAT) activity declined in both male and female rats. TC/HDL-C ratio declined in 20 days in females, while in males it did not change. Free fatty acids increased, while triglycerides remained unchanged in both sexes. %Lipoprotein distribution in male animals did not show any phenotype alteration except in the group of 40 days where %VLDL declined and %LDL-C increased. Body weights did not change, except in males in 60 days. Consistent cold swimming stress by lowering HDL-C and LCAT activity seems to influence lipoprotein metabolism.

Animals↗

Effects of cold-restraint and swim stress on convulsions induced by pentylenetetrazol and electroshock: influence of naloxone pretreatment.

The influence of two stressogenic conditions, restraint at 4 degrees C for 30 min (cold-restraint stress; CRS) or swimming at 20 degrees C for 3 min (swim stress; SS), on nociception and on convulsions triggered by different agents was assessed in mice. In saline-pretreated mice CRS and SS caused analgesia (hot-plate test, 56 degrees C), delayed the onset of convulsions induced by pentylenetetrazol (PTZ, 100 mg/kg, IP) and aggravated convulsions elicited by maximal transcorneal electroshock (150 mA pulses at 60 Hz for 0.2 s). Pretreatment with naloxone (10 mg/kg, SC, 30 min prior to testing), which did not affect the responsiveness of nonstressed mice to the hot plate or to the convulsant treatments, attenuated the development of analgesia following CRS, but not SS, and further prolonged the latency to onset of PTZ-induced convulsions in both stressed groups. Thus the extent to which CRS and SS can each delay the onset of PTZ-triggered convulsion appears to be limited by activation of a proconvulsant opioid system. In contrast, naloxone pretreatment did not modify the effects of CRS or SS on the severity of electroshock-induced seizures. In conclusion, CRS and SS can each, simultaneously, exert anticonvulsant and proconvulsant influences on responsiveness to PTZ and electroshock, respectively. Also, both forms of stress can activate an opioid system modulating the onset of PTZ-induced seizures, which is distinct from that controlling nociception. These findings, together with those of other stress, convulsions and opioid systems, which depends on the characteristics of the stressogenic condition, species, convulsant agent and parameter considered.

Analgesia↗

Inhibition of catecholamine synthesis depresses behavior of rats in the holeboard and forced swim tests: influence of previous chronic stress.

Catecholaminergic pathways in the brain are activated during stress and are presumably involved in the control of physiological and behavioral changes triggered by stress. When repeatedly stressed, adaptive changes have been observed in catecholaminergic activity in the brain. In the present experiment, it was assessed whether or not chronic exposure to immobilization (IMO) altered the influence of catecholamines on behavior in the holeboard and forced swim test by administering alpha-methyl-p-tyrosine (an inhibitor of catecholamine synthesis). Adult Sprague-Dawley rats were used. Chronic stress amortiguated the inhibitory effect of acute IMO on some but not all behaviors in the two tests. Whereas previous chronic IMO exacerbated the effects of the drug on struggling and immobility in the forced swim test, no change in response to the drug as a consequence of chronic IMO was observed in the holeboard test. The present data suggest that chronic IMO-induced changes in the catecholaminergic control of some behaviors might be related to depression-like states in rats. The actual physiological meaning of these changes and the specific receptors involved remain to be elucidated.

Animals↗

Ibotenic acid lesions of medial prefrontal cortex augment swim-stress-induced locomotion.

Locomotor activity of rats with sham or ibotenic acid lesions of the medial prefrontal cortex (MPFC) was assessed after animals were exposed to a 15-min swim or control stress. Swim-stress-induced locomotor activity was augmented in the MPFC-lesioned rats. These and other data suggest that lesions of the MPFC are followed by an exaggeration of the normal behavioral response to stress. Dysregulation of dopamine transmission in the basal ganglia may be involved.

Animals↗