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A study of neonatal swimming (water therapy) applied in clinical obstetrics.

OBJECTIVE: To study the significance of some clinical parameters related to neonatal 'swimming' (water therapy) during hospitalization. METHODS: Normal newborns were randomly divided into two groups to observe their birth weight, weight before discharge,time of first defecation and meconium turning yellow. Group one was the swimming (study) group, comprising a total of 223 newborns including 127 babies delivered after spontaneous vaginal delivery and 96 babies after Cesarean section. Group two was the bathing (control) group, comprising 154 newborns including 109 babies delivered after spontaneous vaginal delivery and 45 babies after Cesarean section. RESULTS: There was no significant difference in birth weight between the two groups (p > 0.05). However, the mean weight before discharge of the babies in the study group was 3.29 + 0.35 and 3.51 + 0.40 kg, spontaneous vaginal delivery vs. Cesarean section, compared with 3.09 + 0.38 and 3.17 + 0.48 kg, respectively, in the control group (p < 0.01). The corresponding mean times of meconium turning yellow were 39.15 + 15.88 and 39.02 + 13.60 h in the study group compared with 48.01 + 19.42 and 55.67 + 25.05 h in the control group. This difference was significant (p < 0.01), as was the difference between the time of first defecation (p < 0.05). CONCLUSION: Neonatal swimming can accelerate babies' growth in the early stage.

Baths↗

Effects of acute nitrogen dioxide exposure on swimming performance of mice.

To evaluate the acute effects of NO2 on the physical performance of experimental animals, male mice 15-16 wk old were exposed to 5, 10, 20, or 40 ppm NO2 for 24 h, and forced swimming endurance time (FSET), the changes in FSET during the postexposure days, lung wet weight, lung water content, and blood lactate level were examined. FSET of mice exposed to NO2 at 10, 20, and 40 ppm decreased immediately after exposure, FSET of mice exposed to 5 ppm NO2 did not change immediately after exposure, but a significant decrease was observed from d 1 to d 4 after exposure. FSET recovered to the initial control level after 5-6 d, 7-8 d, and over 9 d in mice exposed to NO2 at 5, 10, and 20 ppm, respectively. Lung wet weight of mice exposed to 20 and 40 ppm NO2 and lung water content of mice exposed to 10, 20, and 40 ppm NO2 increased with dose. A negative relation was demonstrated between FSET and lung wet weight and between FSET and lung water content. Without forced swimming exercise, the blood lactate level of mice exposed to 5 ppm NO2 was almost equivalent to that of control mice, but the blood lactate level of the exposed mice significantly increased immediately and 24 h after forced swimming exercise for 4 min.

Animals↗

The effects of acute and developmental temperature on burst swimming speed and myofibrillar ATPase activity in tadpoles of the Pacific tree frog, Hyla regilla.

The effects of acute and developmental temperature on maximum burst swimming speed, body size, and myofibrillar ATPase activity were assessed in tadpoles of the Pacific tree frog, Hyla regilla. Tadpoles from field-collected egg masses were reared in the laboratory at 15 degrees (cool) and 25 degrees C (warm). Body size, maximum burst swimming speed from 5 degrees to 35 degrees C, and tail myofibrillar ATPase activity at 15 degrees and 25 degrees C were measured at a single developmental stage. Burst speed of both groups of tadpoles was strongly affected by test temperature (P<0. 001). Performance maxima spanned test temperatures of 15 degrees -25 degrees C for the cool group and 15 degrees -30 degrees C for the warm group. Burst speed also depended on developmental temperature (P<0.001), even after accounting for variation in body size. At most test temperatures, the cool-reared tadpoles swam faster than the warm-reared tadpoles. Myofibrillar ATPase activity was affected by test temperature (P<0.001). Like swimming speed, enzyme activity was greater in the cool-reared tadpoles than in the warm-reared tadpoles, a difference that was significant when assayed at 15 degrees C (P<0. 01). These results suggest a mechanism for developmental temperature effects on locomotor performance observed in other taxa.

Adaptation, Physiological↗

Metabolic limits on dive duration and swimming speed in the southern elephant seal Mirounga leonina.

The ability of air-breathing marine predators to forage successfully depends on their ability to remain submerged. This is in turn related to their total O(2) stores and the rate at which these stores are used up while submerged. Body size was positively related to dive duration in a sample of 34 adult female southern elephant seals from Macquarie Island. However, there was no relationship between body size and dive depth. This indicates that smaller seals, with smaller total O(2) stores, make shorter dives than larger individuals but operate at similar depths, resulting in less time being spent at depth. Nine adult female elephant seals were also equipped with velocity time depth recorders. In eight of these seals, a plot of swimming speed against dive duration revealed a cloud of points with a clear upper boundary. This boundary could be described using regression analysis and gave a significant negative relationship in most cases. These results indicate that metabolic rate varies with activity levels, as indicated by swimming speed, and that there are quantifiable limits to the distance that a seal can travel on a dive of a given swimming speed. However, the seals rarely dive to these physiological limits, and the majority of their dives are well within their aerobic capacity. Elephant seals therefore appear to dive in a way that ensures that they have a reserve of O(2) available.

Aerobiosis↗

Thermal acclimation, growth, and burst swimming of threespine stickleback: enzymatic correlates and influence of photoperiod.

Threespine sticklebacks (Gasterosteus aculeatus) that had been reared in the laboratory under natural photoperiods were acclimated to 23 degrees and 8 degrees C in late spring under increasing day lengths and again in late fall under decreasing day lengths. The parents of these fish were from the anadromous Isle Verte population. In the spring, cold- and warm-acclimated fish grew at the same rates and attained similar condition factors (mass L(-3)), although food intake was considerably higher at 23 degrees C. As both groups had similar increases in mass and condition, the higher axial muscle activities of citrate synthase and phosphofructokinase (measured at 20 degrees C) after cold acclimation were likely a direct response to temperature. Multiple regression analysis showed that axial muscle levels of cytochrome C oxidase and citrate synthase were correlated with the burst swimming speeds of the spring sticklebacks, while growth rates were positively correlated with lactate dehydrogenase levels in pectoral and axial muscles and creatine kinase levels in the axial muscle. In the fall, the fish in both acclimation groups grew little, although they fed at similar rates as in the spring experiment. Overall, the sticklebacks showed lower burst swimming speeds in the fall. In both spring and fall, the burst speeds of cold- and warm-acclimated sticklebacks only differed at warm temperatures. In the spring experiment, the cold-acclimated fish swam faster, whereas in the fall experiment the warm-acclimated fish swam faster despite their lower percentage of axial muscle. Swimming speeds were measured both at a fish's acclimation temperature and after 12 h at the other temperature. Cold-acclimated sticklebacks seem to have more facility in rapidly adjusting to warm temperatures when they have experienced increasing rather than decreasing day lengths, perhaps as a result of the requirements of the spring migration to the intertidal breeding grounds.

Acclimatization↗

Metabolism, swimming performance, and tissue biochemistry of high desert redband trout (Oncorhynchus mykiss ssp.): evidence for phenotypic differences in physiological function.

Redband trout (Oncorhynchus mykiss ssp.) in southeastern Oregon inhabit high-elevation streams that exhibit extreme variability in seasonal flow and diel water temperature. Given the strong influence and potential limitations exerted by temperature on fish physiology, we were interested in how acute temperature change and thermal history influenced the physiological capabilities and biochemical characteristics of these trout. To this end, we studied wild redband trout inhabiting two streams with different thermal profiles by measuring (1) critical swimming speed (U(crit)) and oxygen consumption in the field at 12 degrees and 24 degrees C; (2) biochemical indices of energy metabolism in the heart, axial white skeletal muscle, and blood; and (3) temperature preference in a laboratory thermal gradient. Further, we also examined genetic and morphological characteristics of fish from these two streams. At 12 degrees C, maximum metabolic rate (Mo2max) and metabolic power were greater in Little Blitzen redband trout as compared with those from Bridge Creek (by 37% and 32%, respectively). Conversely, Bridge Creek and Little Blitzen trout had similar values for Mo2max and metabolic power at 24 degrees C. The U(crit) of Little Blitzen trout was similar at the two temperatures (61+/-3 vs. 57+/-4 cm s(-1)). However, the U(crit) for Bridge Creek trout increased from 62+/-3 cm s(-1) to 75+/-3 cm s(-1) when water temperature was raised from 12 degrees to 24 degrees C, and the U(crit) value at 24 degrees C was significantly greater than for Little Blitzen fish. Cost of transport was lower for Bridge Creek trout at both 12 degrees and 24 degrees C, indicating that these trout swim more efficiently than those from the Little Blitzen. Possible explanations for the greater metabolic power of Little Blitzen redband trout at 12 degrees C include increased relative ventricular mass (27%) and an elevation in epaxial white muscle citrate synthase activity (by 72%). Bridge Creek trout had 50% higher lactate dehydrogenase activity in white muscle and presumably a greater potential for anaerobic metabolism. Both populations exhibited a preferred temperature of approximately 13 degrees C and identical mitochondrial haplotypes and p53 gene allele frequencies. However, Bridge Creek trout had a more robust body form, with a relatively larger head and a deeper body and caudal peduncle. In summary, despite the short distance ( approximately 10 km) and genotypic similarity between study streams, our results indicate that phenotypic reorganization of anatomical characteristics, swimming ability at environmentally pertinent temperatures and white axial muscle ATP-producing pathways occurs in redband trout.

Acclimatization↗

High swimming and metabolic activity in the deep-sea eel Synaphobranchus kaupii revealed by integrated in situ and in vitro measurements.

Several complementary studies were undertaken on a single species of deep-sea fish (the eel Synaphobranchus kaupii) within a small temporal and spatial range. In situ experiments on swimming and foraging behaviour, muscle performance, and metabolic rate were performed in the Porcupine Seabight, northeast Atlantic, alongside measurements of temperature and current regime. Deep-water trawling was used to collect eels for studies of animal distribution and for anatomical and biochemical analyses, including white muscle citrate synthase (CS), lactate dehydrogenase (LDH), malate dehydrogenase (MDH), and pyruvate kinase (PK) activities. Synaphobranchus kaupii demonstrated whole-animal swimming speeds similar to those of other active deep-sea fish such as Antimora rostrata. Metabolic rates were an order of magnitude higher (31.6 mL kg(-1) h(-1)) than those recorded in other deep-sea scavenging fish. Activities of CS, LDH, MDH, and PK were higher than expected, and all scaled negatively with body mass, indicating a general decrease in muscle energy supply with fish growth. Despite this apparent constraint, observed in situ burst or routine swimming performances scaled in a similar fashion to other studied species. The higher-than-expected metabolic rates and activity levels, and the unusual scaling relationships of both aerobic and anaerobic metabolism enzymes in white muscle, probably reflect the changes in habitat and feeding ecology experienced during ontogeny in this bathyal species.

Analysis of Variance↗

Failure of low-velocity swimming to enhance recovery from exhaustive exercise in largemouth bass (Micropterus salmoides).

This study was intended to discover whether forcing largemouth bass (Micropterus salmoides) to swim at 0.5 body lengths/second following exercise would expedite recovery relative to fish recovered in static water. Exercise resulted in a suite of physiological disturbances for largemouth bass that included a depletion of anaerobic energy stores, an accumulation of lactate, and increased cardiac output. At 1 h following exercise, exhaustively exercised largemouth bass forced to swim exhibited expedited recovery relative to fish in static water, evidenced by lower concentrations of lactate in white muscle, elevated concentrations of phosphocreatine in white muscle, and reduced concentrations of glucose in plasma. By 4 h postexercise, largemouth bass forced to swim during recovery exhibited signs of physiological disturbance that were absent in fish recovered in static water. These signs of disturbance included a loss of osmotically active particles from plasma, elevated lactate in plasma, reductions of phospocreatine in white muscle, and increased cardiac output. These results are discussed in relation to the body of work with salmonid fishes showing physiological benefits to recovering fish in flowing water.

Animals↗

Energy requirements of beavers (Castor canadensis) swimming underwater.

Energy requirements of beavers (Castor canadensis) swimming voluntarily underwater were investigated in Neumünster Zoo (Germany) in a covered, still-water swim channel with oxygen and carbon dioxide respirometry. During the experiments, all activities of the beavers were monitored and recorded. While at rest within their thermoneutral zone on land (17 degrees C), beavers had a respiratory quotient of 0.95 and a resting metabolic rate of 1.58 W kg-1. When resting in water, energy requirements rose to 2.31 W kg-1. When swimming underwater in the channel, beavers preferred a mean speed of 0.64 m s-1, and their energy requirements rose to 2.64 W kg-1. Cost of transport, however, was minimal at 0.9 m s-1 and amounted to 0.36 J N-1 m-1. Although beavers must compromise form and function to operate on water and on land, their energy requirements while diving amount to only 1.65 times the resting metabolic rate and compare well with those of accomplished swimmers such as aquatic mammals and birds.

Animals↗

Effects of alpha-tocopherol acetate on the swimming endurance of trained swimmers.

Well-trained, competitive swimmers were divided into two groups. Group A was given 900 IU alpha-tocopherol acetate daily for 6 months while group B was given placebos. A swimming endurance test was given before the start of supplementation and after 1, 2, 5 and 6 months. No difference in swimmers' endurance was observed between the two groups during the 6-month period. There was also no difference in postexercise serum lactic acid levels. Younger, less well-trained, competitive swimmers were also divided into two groups. Group A received 900 IU alpha-tocopherol acetate daily while group B received placebos. Swimming times for these swimmers were erratic, reflecting a lack of training. alpha-Tocopherol did not appear to have any effect on their swimming endurance.

Acetates↗

The effects of measurement error on previously reported mathematical relationships between indicator organism density and swimming-associated illness: a quantitative estimate of the resulting bias.

Several recent epidemiological studies seeking associations between swimming in recreational waters contaminated with domestic sewage and increased illness among such swimmers have reported mathematical relationships relating indicator organism densities to illness among swimmers. Common to the design of all of these studies is the failure to adequately control for large amounts of measurement error contained in estimates of exposure, i.e. estimated indicator organism densities. The limited precision of current methods of indicator organism enumeration, coupled with temporal and spacial variation in indicator organism densities at the locations studied, are responsible for a substantial portion of this measurement error. The failure to control adequately for these sources of measurement error has resulted in a significant amount of bias being present in the mathematical relationships reported by these previously published epidemiological studies. In order to explore the magnitude and direction of this bias, computer simulations were conducted using data in which estimation of indicator organism density was obtained by the two most widely used techniques of enumeration: the Multiple Tube Fermentation Technique and the Membrane Filtration Technique. The results of the computer simulations show that the bias caused by this measurement error is non-differential causing the mathematical relationships between indicator organism density and swimming-associated illness reported in previous epidemiological studies to underestimate true risk by a minimum of approximately 14%, and that this underestimate could range as high as approximately 30 to 57%. This study also demonstrates that substantial reduction of this bias can be easily accomplished by incorporating a formal water quality sampling strategy, based on statistical principles of experimental design and analysis, into the design of future epidemiological studies seeking mathematical relationships between indicator organism density and swimming-associated illness.

Analysis of Variance↗

An outbreak of hepatitis A associated with swimming in a public pool.

A multistate outbreak of hepatitis A was traced to a campground in Louisiana. Among 822 campers during one weekend, 20 developed hepatitis A. Case-patients ranged in age from 4 to 36 years; the highest attack rate (6.4%) was for children aged 5-9 years. A case-control study revealed that case-patients were more likely than controls to have swum in a public swimming pool on Saturday afternoon (19/19 vs. 26/38; odds ratio [OR], undefined; lower 95% confidence limit, 1.7). Case-patients were more likely than controls to have swum in the jacuzzi pool (16/19 vs. 10/26; OR, 8.0; 95% confidence interval, 1.5-47.1) or adult pool A (19/19 vs. 15/26; OR, undefined; lower 95% confidence limit, 2.6). Case-patients were also more likely to have swum for greater than 1 h and to have put their heads under the water. Because of the design of the filtering system of adult pool A, a cross-connection between a sewage line and the pool water intake line was possible. This outbreak may have been caused by transmission of hepatitis A through swimming; thus, swimming may serve as a mode of transmission of hepatitis A virus, especially among small children.

Adolescent↗

Blood pressure, electrolyte and adrenal responses in swim-trained hypertensive rats.

In order to test the effect of aerobic training on blood pressure, and to examine the putative mechanisms involved, stroke-prone spontaneously hypertensive rats (SHR-SP), borderline hypertensive rats (BHR), and Wistar-Kyoto control rats (WKY) were swim-trained for up to 1.5 h twice-daily for 22 weeks. The BHR were F1 back-cross SHR-SP, WKY. A training effect was observed in the trained rats compared to controls, as demonstrated by slower heart rates, heavier hearts and increased cytochrome oxidase activity in their skeletal muscle. Trained SHR-SP and BHR had significantly lower blood pressures at the end of the intervention period (approximately 10 mmHg) compared to controls. Acute increases in blood pressure with swimming were less in trained than in untrained rats. Trained rats had higher extracellular sodium values than untrained rats. Further, trained SHR-SP and BHR had lower intra-erythrocyte sodium values than controls. Increases in corticosterone, epinephrine and norepinephrine with swimming were less in trained rats than in controls. We conclude that exercise conditioning ameliorates hypertension in rats. The mechanism may involve an effect on cation transmembrane transport, as well as decreased, adrenosympathetic tone. Moreover, these effects may be related.

Adaptation, Physiological↗

Technique and energy losses in front crawl swimming.

Forces in human swimming consist of two components, a drag force and a lift force. The lift force is assumed to be beneficial because of the relative small energy loss to the water. This energy loss can be quantified by determining the propelling efficiency, ep (defined as the ratio of the useful power to the total power output). The first purpose of this study was to investigate whether high values of propelling efficiency can be explained by a relatively high contribution of lift and/or a favorable direction of the generated force in front crawl swimming. Propelling efficiency was estimated using two methods, one based on a physiological approach (epp) by measuring oxygen consumption and one based on a kinematic approach (epk) by calculating forces generated by hands and forearm and power components, from a three-dimensional analysis. The second purpose of this study was to compare epp and epk. The contribution of lift to the total force as well as the direction of the force cannot explain the values of epp. The values of epp and epk did not correlate significantly. In swimming propulsion some processes play a role which cannot be explained at this moment. One of these processes might be the generation of vortices.

Adult↗

Mood alteration with swimming--swimmers really do "feel better".

This study illustrated the relationship between swimming, an aerobic activity, and mood. One hundred college students, voluntarily enrolled in beginning or intermediate swimming classes or in lecture-control classes, completed the POMS before and after class. Results of a 5-way ANOVA confirmed that, as predicted, swimmers reported significantly less tension, depression, anger, confusion, and more vigor after exercising than before. Both novice and intermediate swimmers changed significantly more than did controls on all scales except fatigue, while none of the controls' pre-, post-instruction mood changes were significant. The results have implications, similar to those with running, for use in psychotherapy. Despite different social connotations of exercise for women and men, there were no gender differences in the amount of mood change associated with swimming. However, in direct contradiction of existing literature, the women reported significantly less tension-anxiety, depression, anger, and confusion than the men.

Adolescent↗

Modulation of rhythmic swimming activity in post-embryonic Xenopus laevis tadpoles by 5-hydroxytryptamine acting at 5HT1a receptors.

5HT modulates the rhythmic locomotor output of most vertebrates by enhancing the duration and intensity of motor bursts in each cycle, but there is little clear evidence on the pharmacological profile of the 5HT receptor subtype(s) involved. In this study we extend our previous work on the role of 5HT in the development and modulation of locomotor behaviour in newly hatched Xenopus tadpoles by examining the 5HT receptor type responsible for enhancing the swimming activity in immobilized preparations. By applying a range of agonists and antagonists against different 5HT receptor subtypes, we conclude that serotonergic modulation of swimming activity is accomplished via the activation of just one receptor type with a pharmacological profile similar to the mammalian 5HT1a receptor. The effects of 5HT on burst duration (an increase) and on episode length (a decrease) are mimicked by the 5HT1a receptor agonists, 5-carboxamidotryptamine (5CT) and R(+)-8-OH-DPAT, and reversed by the 5HT1a receptor antagonist NAN-190. Agents acting at other 5HT1, as well as 5HT2 and 5HT3, receptor subtypes were without noticeable effect on the 5HT-enhanced swimming rhythm.

8-Hydroxy-2-(di-n-propylamino)tetralin↗

Simulations of neuromuscular control in lamprey swimming.

The neuronal generation of vertebrate locomotion has been extensively studied in the lamprey. Models at different levels of abstraction are being used to describe this system, from abstract nonlinear oscillators to interconnected model neurons comprising multiple compartments and a Hodgkin-Huxley representation of the most relevant ion channels. To study the role of sensory feedback by simulation, it eventually also becomes necessary to incorporate the mechanical movements in the models. By using simplifying models of muscle activation, body mechanics, counteracting water forces, and sensory feedback through stretch receptors and vestibular organs, we have been able to close the feedback loop to enable studies of the interaction between the neuronal and the mechanical systems. The neuromechanical simulations reveal that the currently known network is sufficient for generating a whole repertoire of swimming patterns. Swimming at different speeds and with different wavelengths, together with the performance of lateral turns can all be achieved by simply varying the brainstem input. The neuronal mechanisms behind pitch and roll manoeuvres are less clear. We have put forward a 'crossed-oscillators' hypothesis where partly separate dorsal and ventral circuits are postulated. Neuromechanical simulations of this system show that it is also capable of generating realistic pitch turns and rolls, and that vestibular signals can stabilize the posture during swimming.

Animals↗

Dishabituation of the Tritonia escape swim.

When repeatedly elicited, the oscillatory escape swim of the marine mollusc Tritonia diomedea undergoes habituation of the number of cycles per swim. Although similar in most respects to habituation observed in vertebrates and other invertebrates, one key feature, dishabituation, has been surprisingly difficult to demonstrate. Here we evaluate the hypothesis that this is due to interference from short-term sensitization, which is manifested as a reduction in swim onset latency, that occurs simultaneously during habituation training. Robust dishabituation was obtained using a multisession habituation protocol designed to allow this sensitization to dissipate before the dishabituatory stimulus was applied. These results extend the similarity of habituation in Tritonia to that described in other species, strengthening the usefulness of this preparation as a model system for studies of the cellular basis of habituation.

Analysis of Variance↗