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[Dyspnea sensation and chemical control of breathing].

In order to estimate the role of peripheral chemosensitivity in dyspnea sensation, we performed BH experiment under the acute or chronic hypoxic condition. The former was simulated by a given rate (0-3.2 mg/kg/hr) of doxapram infusion. The latter experiment was carried out during sojourn in Lhasa (3700 m), China. Subjects conducted BH by inhaling 7% CO2 in O2 and assessed dyspnea sensation by visual analog scale (VAS) while repeatedly measuring PCO2 at breaking point (BP). Lowering of resting PETCO2 by augmented ventilation was derived by doxapram infusion and during acclimatization at high altitude. The effect of PCO2 on VAS was enhanced by doxapram. However, altitude acclimatization resulted in attenuated effect of PCO2 on VAS despite of further development of hypocapnia. The rate of PCO2 elevation during doxapram infusion was reduced and it might be attributed to decreased body storage of CO2. On the other hand, its rate was tended to recover to sea level value after acclimatization at high altitude and it may have cancelled the mitigated dyspnea sensation. Thus, BHT almost comparable period in both acute hypoxia and during altitude acclimatization. These results suggest that CO2 storage in the body contributes to modify dyspnea sensation as well as augmented peripheral chemosensitivity.

Acclimatization↗

Hydrostatic pressure effects on eel mitochondrial functioning and membrane fluidity.

Aerobic metabolism which is required for long swimming activities during the eel's spawning migration at depth, is a potential target for pressure effects due to its components located in the inner mitochondrial membrane (respiratory chain and oxidative phosphorylation). Previous studies have evidenced that eels are able to acclimatize to pressure through membrane fluidity adjustment. However these studies were performed on the premigratory stage (yellow stage), which never encounters high pressure. Metamorphosis (silvering) seems to preadapt eels (at the silver stage) to most of the environmental changes they will encounter during migration. Is it also true for pressure resistance? This study shows that yellow eels exhibit a higher pressure sensitivity than silver eels (compression effects). The acclimatization period (21 days at 10.1 MPa) cancels the differences in pressure sensitivity and in aerobic metabolism observed at 0.1 MPa between the two stages. The mechanisms, which take place in yellow eels during acclimatization to high pressure, appear to be already present in silver eels before pressure exposure. Indeed at 0.1 MPa, silver eels exhibit higher membrane fluidity and proportions of membrane polyunsaturated fatty acids. Metamorphosis, by improving membrane fluidity, seems to allow silver eels to cope with hydrostatic pressure without spending energy in acclimatization processes.

Acclimatization↗

Chemoreceptor sensitivity in adaptation to high altitude.

Studies were carried out in a group of 20 young male subjects to investigate the changes in chemoreceptor sensitivity during acclimatization to altitude. Their hypoxic sensitivity and carbon dioxide sensitivity were studied at Delhi, during acclimatization at 3500 m, and on return to sea level. Similar studies were also done in a group of 10 acclimatized lowlanders who stayed at 3500-4000 m for 12-14 months, and also on 10 high-altitude natives. The results showed no significant alteration in the hypoxic sensitivity of the lowlanders; but CO2 sensitivity was markedly elevated at altitude, both in sojourners and acclimatized lowlanders. The high-altitude natives showed less sensitivity to hypoxia, whereas the CO2 sensitivity was normal.

Acclimatization↗

[Duration of maintenance of increased bodily resistance with different regimes of adapatation to oxygen deficiency].

The altitude resistance of albino rats was studied via measurements of their altitude threshold on the 3rd, 7, 15, 30, 45th days of their step-by-step acclimatization to highlands (Tuya-Ashu pass at an altitude of 3200 m), on the 3rd, 7, 15, 30, 45th days of their nonstep-by-step acclimatization at the Tuya-Ashu pass and on the 3rd, 7, 15, 30, 45th days of their altitude chamber training. The step-by-step acclimatization of animals included their 15-day exposure to an altitude of 2200 m and subsequent stay in lowlands where their altitude threshold was recorded on the 3rd, 10, 20 30, 40, 60, 80th days. The data obtained indicate that step-by-step acclimatization to highlands results in a more significant increase of the altitude resistance of the animal body and a longer maintenance of the resistance on return to lowlands.

Acclimatization↗

Influence of photoperiod and temperature on serum melatonin in the diamondback water snake, Nerodia rhombifera.

Serum melatonin concentrations in the diamondback water snake, Nerodia rhombifera, were measured with a radioimmunoassay to determine the influence of photoperiod and temperature on melatonin levels. A diel cycle of serum melatonin, with elevated concentrations during scotophase, occurred in snakes acclimatized for 2 weeks to a 12L:12D photoperiod and 25 degrees. This cycle persisted in snakes acclimatized to a reverse photoperiod, with a longer duration of elevated scotophase levels. In snakes acclimatized to a normal 12L:12D photoperiod and 10 degrees, photophase serum melatonin concentrations were lower than at 25 degrees, and there was no increase during scotophase. Snakes acclimatized to a normal 12L:12D photoperiod and 35 degrees had lower serum melatonin levels than those at 25 degrees, but this difference was not statistically significant. Photoperiod and temperature interact to influence serum melatonin in N. rhombifera, with photoperiod affecting the phase and temperature affecting the amplitude of the diel melatonin cycle.

Animals↗

Healthcare Access and Safety Training Gaps Among H-2 A Visa Agricultural Workers in Georgia.

The H-2 A Temporary Agricultural Workers Program, which supplies seasonal labor essential to U.S. food security, has grown over 230% in the past decade but is excluded from the National Agricultural Workers Survey. Although safety training is federally mandated and H-2 A workers are eligible for Affordable Care Act (ACA) marketplace coverage, compliance and healthcare access among these workers remain poorly documented. The aim of this pilot study was to assess workplace safety training, heat acclimatization practices, health insurance awareness and enrollment, and healthcare utilization among H-2 A workers in Georgia. In summer 2024, bilingual research assistants orally administered a cross-sectional Spanish-language survey to 51 H-2 A workers at a South Georgia laundromat, in partnership with the Latino Community Fund Georgia. The survey assessed demographics, occupational characteristics, safety training, heat acclimatization, health insurance awareness and enrollment, and healthcare utilization. Findings are self-reported. Among participants, 41% reported not receiving federally mandated pesticide safety training, and 59% received heat illness prevention training. Heat acclimatization was inadequate for 53% (29% received none). Additionally, 53% did not know the nearest hospital, 43% reported having health insurance, and 25% were unsure of their health insurance status. Overall, 71% had never visited a doctor's office, and of 22 insured workers, only 1 (2%) had used benefits this season. Substantial gaps in workplace safety training, heat acclimatization, and healthcare access were observed in this pilot study, consistent with prior evidence of persistent disparities in this population. Community-based outreach, bilingual health navigation, and market-based labor accountability models warrant further investigation to improve protections for H-2 A workers.

Agricultural workers↗

Sodium and potassium current in neonatal rat carotid body cells following chronic in vivo hypoxia.

Chronic hypoxic acclimatization modifies ventilatory reflexes arising from carotid body stimulation. To explore this, the effects of in vivo chronic hypoxia on membrane currents were quantified in chemoreceptive carotid body glomus cells. Pregnant rats were maintained in either normoxia (NORM: inspired oxygen tension 141 mmHg), or hypoxia (CHX: inspired oxygen tension 80 mmHg) from day 3 of gestation, to day 5-10 postpartum. Whole cell patch clamp recordings were then made from the mechanically and enzymatically dissociated carotid body glomus cells of the rat pups (NORM: 41 cells, CHX: 36 cells) and comparisons of means +/- S.E.M. were made with unpaired t-tests. Glomus cells were bright under phase contrast illumination, formed clusters, were histochemically positive for catecholamines and possessed voltage-gated potassium currents that were depressed by acute hypoxia. Acclimatization to chronic hypoxia did not affect rat pup whole body mass (CHX: 12.0 +/- 0.7 g vs. NORM: 11.0 +/- 0.2 g), but it significantly increased blood hematocrit (CHX: 48.7 +/- 0.9% vs. NORM: 37.8 +/- 0.5%, P < 0.05). Sodium current was not uniformly present in glomus cells from either group, but sodium current was observed in a greater proportion of glomus cells isolated from the chronically hypoxic pups (CHX: 72% vs. NORM: 46%, P < 0.05). The mean peak tetrodotoxin-sensitive sodium current evoked by -70 mV to +10 mV depolarizations was greater after hypoxic acclimatization (CHX: -100 +/- 25 pA vs. NORM: -38 +/- 15 pA, P < 0.05), but the sodium current density (pA/pF) was unchanged. In contrast, the mean peak voltage-gated potassium current (pA) evoked by -70 mV to 0 mV depolarizations was unchanged by acclimatization, but the potassium current density (pA/pF) was reduced (P < 0.05). Unchanged sodium current density coupled with decreased potassium current density may make glomus cells more excitable during exposure to chronic in vivo hypoxia.

Animals↗

Respiratory adaptation in the highest inhabitants and highest Sherpa mountaineers.

Arterial blood gases, acid-base and hematocrit of six highest inhabitants on Aucanquilcha (5950 m) in Chile were studied. These blood gases were compared with the alveolar gases of highest mountain climbers in Nepal, Sherpas and acclimatized lowlanders, and on average high altitude natives in the Chilean and Peruvian Andes and in the Nepal Himalayas. The mean arterial PCO2 (27.5 Torr) was lower than the standard sea level normal values, indicating a modest hypoxic hyperventilation. The mean arterial pH was 7.400, showing a complete renal compensation of respiratory alkalosis. The mean hematocrit (62%) and hemoglobin (20.7 g/dl) values were greater than the standard sea level values. These blood data showed that the highest inhabitants were acclimatized to hypoxia of their residential altitude. The respiratory gases showed less hyperventilation in the highest inhabitants and Sherpa mountaineers of high altitudes relative to the acclimatized lowlanders. Also, the average high altitude natives in the Andes and Himalayas showed less hyperventilation compared to the acclimatized lowlanders. We conclude that the attenuated hyperventilation is an appropriate respiratory adaptation to high altitude hypoxia in the native high altitude residents, allowing them to conserve metabolic energy expended for hyperventilation and to use the ventilatory reserve for a better performance at greater altitudes.

Adaptation, Physiological↗

Subacute stress induced by sumithion on certain biochemical parameters in Oziotelphusa senex senex, the fresh-water rice field crab.

Healthy crabs (Oziotelphusa senex senex) were exposed to 3 concentrations of sumithion, with a control group over a 30-day period. The glycogen content of the hepatopancreas was depleted on acute exposure but was elevated after acclimatization. The glycogen phosphorylase activity was elevated on acute exposure, whereas phosphorylase activity decreased after acclimatization. The increase in phosphorylase activity and the decrease in glycogen content indicated increased glycogenolysis at tissue level after acute exposure but on acclimatization the tissue glycogenolysis appeared to be suppressed. Sumithion was found to decrease the activity levels of SDH and MDH and to elevate LDH. The increase in LDH and the decrease in SDH and MDH in the hepatopancreas indicated the development of anaerobic conditions at tissue level in the stressed crabs. In general, acclimatization to a toxic solution seems to result in the elevation of the synthetic phase of carbohydrate metabolism.

Animals↗

Denitrification of high strength nitrate waste.

The aim of the present work was to study the treatment of high strength nitrate waste (40000 ppm NO(3) i.e., 9032 ppm NO(3)-N) by acclimatizing sludge initially capable of degrading dilute streams (100-200 ppm NO(3)-N). Sludge from an effluent treatment plant of a fertilizer industry was acclimatized for 15 d each at 1694, 3388, 6774 and 9032 ppm NO(3)-N in a 4 L sequencing batch reactor. Complete denitrification of extremely concentrated nitrate waste (9032 ppm NO(3)-N) using acclimatized sludge was achieved in just 6 h. During the acclimatization period, increase in nitrite peak value from zero to 5907 ppm NO(2)-N was observed, as the concentration was increased from 1694 to 9032 ppm NO(3)-N. Kinetic analysis of the nitrate and nitrite profile could reasonably support microbiological explanations for nitrite build up and changes in sludge composition.

Bioreactors↗

Copper modulates non-enzymatic antioxidants in the freshwater fish Channa punctata (Bloch) exposed to deltamethrin.

The assessment of the ecotoxicological risks caused by pesticides to ecosystems are based on data on the toxicity and effects of pesticide preparations to non-target organisms like fish. Deltamethrin is a widely used pesticide based on pyrethroids, which is reported to be extremely toxic to fish species. Modulatory effect of copper pre-exposure (10 ppb) on deltamethrin (0.75 microg l-1)-induced oxidative stress was investigated in freshwater fish Channa punctata (Bloch). Non-enzymatic antioxidants were studied as biomarkers of exposure to deltamethrin and possible protection afforded by copper pre-exposure. Glutathione levels were reduced significantly (P<0.05) in liver of copper-acclimatized deltamethrin-exposed group when compared with deltamethrin-exposed groups. The total thiol levels of copper-acclimatized deltamethrin-exposed group was significantly lowered (P<0.01) in liver when compared with deltamethrin-exposed group, while non-protein thiol levels recorded a significant (P<0.01) increase in liver of copper-acclimatized deltamethrin-exposed group when compared with deltamethrin-exposed group. The lipid peroxidation levels of copper-acclimatized deltamethrin-exposed groups were significantly lowered (P<0.01) in liver when compared with deltamethrin-exposed group. Deltamethrin is known to induce toxic responses by generating reactive oxygen species and to neutralize its toxic effect various non-enzymatic antioxidants were found to be modulated thus implicating their role as biomarkers in pollution control programmes.

Animals↗

CO2/H(+) sensing: peripheral and central chemoreception.

H(+) is maintained constant in the internal environment at a given body temperature independent of external environment according to Bernard's principle of "milieu interieur". But CO2 relates to ventilation and H(+) to kidney. Hence, the title of the chapter. In order to do this, sensors for H(+) in the internal environment are needed. The sensor-receptor is CO2/H(+) sensing. The sensor-receptor is coupled to integrate and to maintain the body's chemical environment at equilibrium. This chapter dwells on this theme of constancy of H(+) of the blood and of the other internal environments. [H(+)] is regulated jointly by respiratory and renal systems. The respiratory response to [H(+)] originates from the activities of two groups of chemoreceptors in two separate body fluid compartments: (A) carotid and aortic bodies which sense arterial P(O2) and H(+); and (B) the medullary H(+) receptors on the ventrolateral medulla of the central nervous system (CNS). The arterial chemoreceptors function to maintain arterial P(O2) and H(+) constant, and medullary H(+) receptors to maintain H(+) of the brain fluid constant. Any acute change of H(+) in these compartments is taken care of almost instantly by pulmonary ventilation, and slowly by the kidney. This general theme is considered in Section 1. The general principles involving cellular CO2 reactions mediated by carbonic anhydrase (CA), transport of CO2 and H(+) are described in Section 2. Since the rest of the chapter is dependent on these key mechanisms, they are given in detail, including the role of Jacobs-Stewart Cycle and its interaction with carbonic anhydrase. Also, this section deals briefly with the mechanisms of membrane depolarization of the chemoreceptor cells because this is one mechanism on which the responses depend. The metabolic impact of endogenous CO2 appears in the section with a historical twist, in the context of acclimatization to high altitude (Section 3). Because low P(O2) at high altitude stimulates the peripheral chemoreceptors (PC) increasing ventilation, the endogenous CO2 is blown off, making the internal milieu alkaline. With acclimatization however ventilation increases. This alkalinity is compensated in the course of time by the kidney and the acidity tends to be restored, but the acidification is not great enough to increase ventilation further. The question is what drives ventilation during acclimatization when the central pH is alkaline? The peripheral chemoreceptor came to the rescue. Its sensitivity to P(O2) is increased which continues to drive ventilation further during acclimatization at high altitude even when pH is alkaline. This link of CO2 through the O2 chemoreceptor is described in Section 4 which led to hypoxia-inducible factor (HIF-1). HIF-1 is stabilized during hypoxia, including the carotid body (CB) and brain cells, the seat of CO2 chemoreception. The cells are always hypoxic even at sea level. But how CO2 can affect the HIF-1 in the brain is considered in this section. CO2 sensing in the central chemoreceptors (CC) is given in Section 5. CO(2)/H(+) is sensed by the various structures in the central nervous system but its respiratory and cardiovascular responses are restricted only to some areas. How the membranes are depolarized by CO2 or how it works through Na(+)/Ca(2+) exchange are discussed in this section. It is obvious, however, that CO2 is not maintained constant, decreasing with altitude as alveolar P(O2) decreases and ventilation increases. Rather, it is the [H(+)] that the organism strives to maintain at the expense of CO2. But then again, [H(+)] where? Perhaps it is in the intracellular environment. Gap junctions in the carotid body and in the brain are ubiquitous. What functions they perform have been considered in Section 6. CO2 changes take place in lung alveoli where inspired air mixes with the CO2 from the returning venous blood. It is the interface between the inspired and expired air in the lungs where CO2 change is most dramatic. As a result, various investigators have looked for CO2 receptors in the lung, but none have been found in the mammals. Instead, CO2/H(+) receptors were found in birds and amphibians. However, they are inhibited by increasing CO2/H(+), instead of stimulated. But the afferent impulses transmitted to the brain produced stimulation in the efferents. This reversal of afferent-efferent inputs is a curious situation in nature, and this is considered in Section 7. The NO and CO effects on CO2 sensing are interesting and have been briefly mentioned in Section 8. A model for CO2/H(+) sensing by cells, neurons and bare nerve endings are also considered. These NO effects, models for CO2/H(+) and O2-sensitive cells in the CNS have been considered in the perspectives. Finally, in conclusion, the general theme of constancy of internal environment for CO2/H(+) is reiterated, and for that CO2/H(+) sensors-receptors systems are essential. Since CO2/H(+) sensing as such has not been reviewed before, the recent findings in addition to defining basic CO2/H(+) reactions in the cells have been briefly summarized.

Animals↗

Effect of dietary protein deficiency and L-2-oxothiazolidine-4-carboxylate on the diurnal rhythm of hepatic glutathione in the rat.

Maximizing hepatic glutathione (GSH) concentration may provide greater protection against toxic compounds. A dietary supplement of L-2-oxothiazolidine-4-carboxylate (OTC), a stable derivative of cysteine, increased hepatic GSH in rats fed for 2 wk a diet deficient in protein (7.5%) but not in rats fed a diet adequate in protein (15%). Experiment 2 determined whether a dietary supplement of OTC could maintain the maximum GSH concentration over 24 h. Rats acclimatized for 5 d to a 7.5% protein diet and then fed a 7.5% protein diet supplemented with either 2.5 mmol OTC or cysteine-HCl (CYS)/100 g diet had a more rapid increase in hepatic GSH (4 and 8 h after beginning of feeding, P less than 0.05) than did rats fed an unsupplemented 7.5% protein diet. This response was not due simply to the greater supply of cysteine for GSH synthesis because supplementing the 15% protein diet with OTC or CYS had no effect on the hepatic GSH of rats acclimatized to a 15% protein diet. In experiment 3, rats acclimatized to the 7.5% protein diet had a more rapid rate of increase in hepatic GSH concentration in response to feeding than did rats acclimatized to a 15% protein diet, regardless of which diet they were fed during the 24-h period. It was concluded that in addition to cysteine availability, previous dietary protein status plays a key role in the regulation of the feeding-induced diurnal rhythm of hepatic GSH concentration in rats.

Analysis of Variance↗

Cerebral blood flow and oxygenation in ovine fetus: responses to superimposed hypoxia at both low and high altitude.

For the fetus, although the roles of arterial blood gases are recognized to be critical in the regulation of cerebral blood flow (CBF) and cerebral oxygenation, the relation of CBF, cortical tissue P(O2) (tP(O2)), sagittal sinus P(O2), and related indices of cerebral oxygenation to arterial blood gases are not well defined. This is particularly true for that fetus subjected to long-term hypoxia (LTH). In an effort to elucidate these interrelations, we tested the hypothesis that in the fetus acclimatized to high altitude, cerebral oxygenation is not compromised relative to that at low altitude. By use of a laser Doppler flowmeter with a fluorescent O2 probe, in near-term fetal sheep at low altitude (n = 8) and those acclimatized to high altitude hypoxia (3801 m for 90 +/- 5 days; n = 6), we measured laser Doppler CBF (LD-CBF), tP(O2), and related variables in response to 40 min superimposed hypoxia. At both altitudes, fetal LD-CBF, cerebral O2 delivery, tP(O2), and several other variables including sagittal sinus P(O2), correlated highly with arterial P(O2) (P(a,O2)). In response to superimposed hypoxia (P(a,O2) = 11 +/- 1 Torr), LD-CBF was significantly blunted at high altitude, as compared with that at low altitude. In the two altitude groups fetal cerebral oxygenation was similar under both control conditions and with superimposed hypoxia, cortical tP(O2) decreasing from 8 +/- 1 and 6 +/- 1 Torr, respectively, to 2 +/- 1 Torr. Also, for these conditions sagittal sinus P(O2) and [HbO2] values were similar. In response to superimposed hypoxia, cerebral metabolic rate for O(2) decreased approximately 50% in each group (P < 0.05). For both the fetus at low altitude and that acclimatized to high altitude LTH, we present the first dose-response data on the relation of LD-CBF, cortical tP(O2), and sagittal sinus blood gas values to P(a,O2). In addition, despite differences in several variables, the fetus at high altitude showed evidence of successful acclimatization, supporting the hypothesis that such fetuses demonstrate no compromise in cerebral oxygenation.

Altitude↗

Kinetics of the methanogenic fermentation of acetate.

Inhibition of the fermentation of acetate to methane and carbon dioxide by acetate was analyzed with an acetate-acclimatized sludge and with Methanosarcina barkeri Fusaro under mesophilic conditions. A second-order substrate inhibition model, q(ch(4) ) = q(m)S/[K(s) + S + (S/K(i))], where S was the concentration of undissociated acetic acid, not ionized acetic acid, could be applicable in both cases. The analysis resulted in substrate saturation constants, K(s), of 4.0 muM for the acclimatized sludge and 104 muM for M. barkeri. The threshold concentrations of undissociated acetic acid when no further acetate utilization was observed were 0.078 muM (pH 7.50) for the acclimatized sludge and 4.43 muM (pH 7.45) for M. barkeri. These kinetic results suggested that the concentration of undissociated acetic acid became a key factor governing the actual threshold acetate concentration for acetate utilization and that the acclimatized sludge in which Methanothrix spp. appeared dominant could utilize acetate better and survive at a lower concentration of undissociated acetic acid than could M. barkeri.

Journal Article↗

Effect of a dopamine antagonist on ventilation during sustained hypoxia in mice.

To test the hypothesis that dopamine accumulated in the carotid body limits hyperventilation during acclimatization to sustained hypoxia, we administered the dopamine antagonist droperidol to mice undergoing acclimatization to an inspired O2 fraction (FIo2) of 0.1. Twelve mice were exposed to hypoxia for 10 days and ventilation in 10% O2 and in 7% CO2 in air were measured daily by a plethysmographic method. Under both conditions ventilation increased during acclimatization to hypoxia: ventilation in 10% O2 increased from 39.4 +/- 3.8 (mean +/- SE) ml/min before exposure to sustained hypoxia to 72.2 +/- 4.2 ml/min after 3 days of continuous hypoxia, and ventilation in 7% CO2 in air at the same time increased from 113.2 +/- 5.4 ml/min to 140.0 +/- 5.6 ml/min. Twelve mice were exposed to FIo2 of 0.1 for 10 days and received droperidol (300 micrograms/kg intraperitoneally) before exposure to sustained hypoxia and on the 2nd, 4th, and 8th days of continuous hypoxia. Before exposure to sustained hypoxia, droperidol increased ventilation in 10% O2 from 40.1 +/- 2.5 ml/min to 72.5 +/- 5.2 ml/min, but after 2, 4, and 8 days of continuous hypoxia droperidol caused an acute fall in ventilation (ventilation in 10% O2 after droperidol on day 2: 49.1 +/- 3.1 ml/min, on day 4: 44.4 +/- 3.7 ml/min, and on day 8: 27.8 +/- 3.4 ml/min). Two days after the animals were returned to room air, ventilation in 10% O2 again increased in response to droperidol. We conclude that dopamine in the carotid body does not limit ventilatory responses to hypoxia during acclimatization to sustained hypoxia.

Animals↗

Hypoxic ventilatory responsiveness in Tibetan compared with Han residents of 3,658 m.

Lifelong high-altitude residents of North and South America acquire blunted hypoxic ventilatory responses and exhibit decreased ventilation compared with acclimatized newcomers. The ventilatory characteristics of Himalayan high-altitude residents are of interest in the light of their reportedly lower hemoglobin levels and legendary exercise performance. Until recently, Sherpas have been the only Himalayan population available for study. To determine whether Tibetans exhibited levels of ventilation and hypoxic ventilatory drives that were as great as acclimatized newcomers, we compared 27 lifelong Tibetan residents of Lhasa, Tibet, China (3,658 m) with 30 acclimatized Han ("Chinese") newcomers matched for age, body size, and extent of exercise training. During room air breathing, minute ventilation was greater in the Tibetan than in the Han young men because of an increased respiratory frequency, but arterial O2 saturation and end-tidal PCO2 did not differ, indicating similar levels of effective alveolar ventilation. The Tibetan subjects had higher hypoxic ventilatory response shape parameter A values and hypercapnic ventilatory responsiveness than the Han subjects. Among the Han subjects, duration of high-altitude residence correlated with the degree of blunting of the hypoxic ventilatory drive. Paradoxically, hyperoxia (inspired O2 fraction 0.70) increased minute ventilation and decreased end-tidal PCO2 in the Tibetan but not in the Han men. We concluded that lifelong Tibetan residents of high altitude neither hypoventilated nor exhibited blunted hypoxic ventilatory responses compared with acclimatized Han newcomers, suggesting that the effects of lifelong high-altitude residence on ventilation and ventilatory response to hypoxia differ in Tibetan compared with other high-altitude populations.

Adult↗

Cortisol, testosterone, and free testosterone in athletes performing a marathon at 4,000 m altitude.

Cortisol, testosterone, free testosterone and the ratio between free testosterone and cortisol (FTCR) were monitored in six athletes participating in a marathon starting at 3,860 and finishing at 3,400 m, having reached the top at 5,100 m altitude. Blood was drawn at sea level before the departure for the mountain area, after a week of acclimatization, immediately after the marathon and after a 24-hour recovery period from the run. Cortisol increased after acclimatization and especially after the marathon; it decreased to normal values after recovery. Testosterone decreased after acclimatization, especially after the run; it presented a partial recovery 24 h after the race. Free testosterone did not decrease after acclimatization and presented partial recovery. FTCR could also be useful for monitoring fitness, overtraining and overstrain in strenuous and ultraendurance exercise.

Adult↗