Trends of experimental research on air pollution in France.
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Biomedical subjects
Publications and source records attributed to M Stupfel.
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Carbon dioxide emission (VCO2) was continuously recorded during 19 consecutive days in 25 Sprague Dawley young male rats placed in the same "respiratory chamber", grouped by 5 (G) and then separated (S). All rats were in controlled environmental conditions (20 degrees C temperature, humidity, ventilation, food and water ad libitum) and submitted to a light (100 lux)-dark alternation (LD 12:12). The curves obtained with the respiratory chamber CO2 concentration sampled every 20 minutes were analyzed for circadian periods, amplitudes, phases, ultradian peak oscillation intervals and amplitudes, and VCO2 time variations at L-->D and D-->L light transitions. Analysis of variance and t test show circadian amplitudes significantly (P < 0.001) higher (by 40.9%) than in S; moreover, ultradian peak amplitudes were higher in G than in S (by 78.0% in L and 105.8% in D). The circadian and ultradian (tau > 40 min) period intervals were not significantly different in G and in S. Circadian phase differences between L-->D and D-->L were significantly greater in S (by 50.3 min) but not in G. Light transitions did not significantly modify ultradian phases in G and in S. This data shows a better LD 12:12 synchronization in G than in S, resulting mostly from an increased respiratory amplitude modulation due to interindividual interactions.
Oxygen consumption (VO2) and carbon dioxide emission (VCO2) have been continuously recorded for 24 consecutive hours in 7 premature infants with a range of gestational age of 29-31 weeks at birth, and placed in incubators within a thermal neutral limit. These infants, submitted to continuous light, were fed every 3-4h through a gastric tube which was left in their stomachs throughout the whole experiment. Variance and spectral analyses performed on VCO2 values sampled on the recordings every 10 min showed ultradian variations, in the 40 min-6 h period range, which represent 20 and even 40% of the mean level. Moreover 5 out of the 7 premature infants show ultradian VCO2, VO2 and respiratory quotient rhythms related to feeding frequency.
Carbon dioxide emission (VCO2) taken as an index of respiratory and metabolic exchanges, was continuously recorded during 4-30 consecutive days in 100 quail, 87 chicks, 347 rats, 665 mice and 70 guinea-pigs which were under controlled environmental parameters. Harmonic analysis, fast Fourier transform, chi-square periodograms, peak and trough intervals were computed with VCO2 values obtained with CO2 concentrations sampled every 20 min on the CO2 recordings. In LD 12:12 alternation, circadian rhythms were observed in all quail, chicks, rats and mice, but only in 80% of the guinea-pigs. Ultradian VCO2 rhythms, with periods which show statistically significant interspecies differences, were assessed. For each of the 5 species these computed periods, which were the same in LL and DD, were: 1.17 h for quail and chickens, 1.25 h for rats, 1.50 h for mice and 1.0 h for guinea-pigs. In LD 12:12 these periods were different during L and D in quail, chicks, rats and mice, but not in guinea-pigs. The amplitudes of these ultradian variations were, according to the species, 10-20% of their mean VCO2 levels. These ultradian rhythms persist in the absence (or masking) of circadian rhythms, e.g. in LD 12:12 in 20% of guinea-pigs and in LL in 87% of Japanese quail and in 23% of Sprague-Dawley rats. Moreover, these ultradian rhythms persist during starvation, locomotor activity restraint and ageing. These ultradian VCO2 cycles which are related to rest-activity variations appear to be basic physiological rhythms with a genetic origin.
Groups of rats or of quail that had been previously synchronized in a light (L = 100 lux) dark (D) phase opposition (PO = LD and DL) were placed together in a L12:D12 or D12:L12 alternation or in continuous light (LL) or continuous darkness (DD). Emission of carbon dioxide (VCO2) which was continuously recorded in groups of individuals placed in respiratory chambers under controlled environmental conditions allows an index of their overall respiratory and metabolic exchanges to be found. In PO animals placed in LD or DL, the VCO2 circadian light dark synchronization comes back less quickly in rats than in quail, and the VCO2 variations at the light dark transitions (L-D and D-L) remain unchanged in rats, but are modified in quail. When PO animals are placed for 18 days in LL or DD, respiratory circadian rhythms disappear except in the grouped rats where they reappear after 4-5 days in DD.
Continuous recordings of respiratory gas exchanges of various laboratory endotherm vertebrate species, which have either a nocturnal (mouse, rat) or diurnal (monkey, quail, chicken) or equivocal (guinea-pig) maximal activity, kept under controlled environmental conditions of temperature, humidity, ventilation and provided with food and water ad libitum, show ultradian oscillations of mean and low frequencies (1 less than f less than 35 c.day-1). Harmonic analysis was used to assess periodic or random ultradian variations and to compute amplitudes and phases of these oscillations when these vertebrates were submitted to a light (100 lx) and dark circadian alteration (LD 12:12). Spectral analysis shows that a 100-lx continuous illumination or continuous darkness decreases circadian respiratory rhythms and increases these ultradian respiratory oscillations.
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