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1.
Ventilatory acclimatization tohypoxia is associated with an increase in ventilation under conditionsof acute hyperoxia(Ehyperoxia) and an increase in acute hypoxic ventilatory response (AHVR). Thisstudy compares 48-h exposures to isocapnic hypoxia( protocol I) with 48-hexposures to poikilocapnic hypoxia ( protocolP) in 10 subjects to assess the importance ofhypocapnic alkalosis in generating the changes observed in ventilatoryacclimatization to hypoxia. During both hypoxic exposures,end-tidal PO2 was maintained at60 Torr, with end-tidal PCO2 held at the subject's prehypoxic level( protocol I) or uncontrolled( protocol P).Ehyperoxiaand AHVR were assessed regularly throughout the exposures.Ehyperoxia(P < 0.001, ANOVA) and AHVR(P < 0.001) increased during thehypoxic exposures, with no significant differences betweenprotocols I andP. The increase inEhyperoxiawas associated with an increase in slope of theventilation-end-tidal PCO2 response(P < 0.001) with no significantchange in intercept. These results suggest that changes in respiratorycontrol early in ventilatory acclimatization to hypoxiaresult from the effects of hypoxia per se and not the alkalosisnormally accompanying hypoxia.

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2.
Honda, Y., H. Tani, A. Masuda, T. Kobayashi, T. Nishino, H. Kimura, S. Masuyama, and T. Kuriyama. Effect of priorO2 breathing on ventilatoryresponse to sustained isocapnic hypoxia in adult humans.J. Appl. Physiol. 81(4):1627-1632, 1996.Sixteen healthy volunteers breathed 100%O2 or room air for 10 min in random order, then their ventilatory response to sustained normocapnic hypoxia (80% arterial O2saturation, as measured with a pulse oximeter) was studied for 20 min.In addition, to detect agents possibly responsible for the respiratorychanges, blood plasma of 10 of the 16 subjects was chemically analyzed.1) Preliminary O2 breathing uniformly andsubstantially augmented hypoxic ventilatory responses.2) However, the profile ofventilatory response in terms of relative magnitude, i.e., biphasichypoxic ventilatory depression, remained nearly unchanged.3) Augmented ventilatory incrementby prior O2 breathing wassignificantly correlated with increment in the plasma glutamine level.We conclude that preliminary O2administration enhances hypoxic ventilatory response without affectingthe biphasic response pattern and speculate that the excitatory aminoacid neurotransmitter glutamate, possibly derived from augmentedglutamine, may, at least in part, play a role in this ventilatoryenhancement.

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3.
Tansley, J. G., C. Clar, M. E. F. Pedersen, and P. A. Robbins. Human ventilatory response to acute hyperoxia during andafter 8 h of both isocapnic and poikilocapnic hypoxia.J. Appl. Physiol. 82(2): 513-519, 1997.During 8 h of either isocapnic or poikilocapnic hypoxia,there may be a rise in ventilation(E) thatcannot be rapidly reversed with a return to higherPO2 (L. S. G. E. Howard and P. A. Robbins. J. Appl. Physiol. 78:1098-1107, 1995). To investigate this further, threeprotocols were compared: 1) 8-hisocapnic hypoxia [end-tidalPCO2(PETCO2 ) held atprestudy value, end-tidal PO2(PETO2) = 55 Torr],followed by 8-h isocapnic euoxia(PETO2 = 100 Torr);2) 8-h poikilocapnic hypoxia followed by 8-h poikilocapnic euoxia; and3) 16-h air-breathing control.Before and at intervals throughout each protocol, theE response to eucapnichyperoxia (PETCO2 held1-2 Torr above prestudy value,PETO2 = 300 Torr) wasdetermined. There was a significant rise in hyperoxic E over 8 hduring both forms of hypoxia (P < 0.05, analysis of variance) that persisted during the subsequent 8-heuoxic period (P < 0.05, analysis ofvariance). These results support the notion that an 8-h period ofhypoxia increases subsequenthyperoxic E, even if acid-base changes have been minimized through maintenance ofisocapnia during the hypoxic period.

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4.
Liang, Pei-Ji, Daphne A. Bascom, and Peter A. Robbins.Extended models of the ventilatory response to sustained isocapnic hypoxia in humans. J. Appl. Physiol. 82(2): 667-677, 1997.The purpose of this study was to examine extensions of a modelof hypoxic ventilatory decline (HVD) in humans. In the original model (model I) devised by R. Painter, S. Khamnei, and P. Robbins(J. Appl. Physiol. 74: 2007-2015, 1993), HVD is modeledentirely by a modulation of peripheral chemoreflex sensitivity. In thefirst extension (model II), a more complicated dynamic is usedfor the change in peripheral chemoreflex sensitivity. In the secondextension (model III), HVD is modeled as a combination ofboth the mechanism of Painter et al. and a component that isindependent of peripheral chemoreflex sensitivity. In all cases, aparallel noise structure was incorporated to describe the stochasticproperties of the ventilatory behavior to remove the correlation of theresiduals. Data came from six subjects from a study by D. A. Bascom, J. J. Pandit, I. D. Clement, and P. A. Robbins (Respir. Physiol.88: 299-312, 1992). For model II, there was a significantimprovement in fit for two out of six subjects. The reasons for thiswere not entirely clear. For model III, the fit was againsignificantly improved in two subjects, but in this case the subjectswere those who had the most marked undershoot and recovery ofventilation at the relief of hypoxia. In these two subjects, thechemoreflex-independent component contributed ~50% to total HVD.In the other four subjects, the chemoreflex-independent componentcontributed ~10% to total HVD. It is concluded that in somesubjects, but not in others, there may be a component of HVD thatis independent of peripheral chemoreflex sensitivity.

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5.
Sajkov, Dimitar, Alister Neill, Nicholas A. Saunders, and R. Douglas McEvoy. Comparison of the effects of sustained isocapnichypoxia on ventilation in men and women. J. Appl.Physiol. 83(2): 599-607, 1997.Sleep-relatedrespiratory disturbances are more common in men than in premenopausalwomen. This might, in part, be due to different susceptibilities to therespiratory depressant effects of hypoxia. Therefore, we comparedventilation during 10 min of baseline room-air breathing and 20-minsustained isocapnic hypoxia (fractional inspiredO2 = 11%, arterial saturation ofO2  80%) followed by 10 min ofbreathing 100% O2 in 10 normal men and in 10 women in the follicular phase of the menstrual cycle. Control measurements were made during two transitions from room air (10 min) to 100% O2 (10 min) andaveraged. Inspired minute ventilation(I) after2 min of hypoxia was the same in men and women [131 ± 6.1%baseline for men, 136 ± 7.7% baseline for women; not significant(NS)] and declined to the same level after 20 min (115 ± 5.0% baseline for men, 116 ± 6.6% baseline for women; NS)associated with a similar decline in inspiratory time and tidal volume.Breathing frequency did not change.I decreased transiently during subsequent 100%O2 breathing in both men and women, associated with reduced frequency and duty cycle and increased expiratory time. The fall inI wassignificantly greater than that observed during control hyperoxiaexperiments in men but not in women. We conclude that ventilatoryresponses to sustained isocapnic hypoxia do not differ between awakehealthy men and women in the follicular phase of their menstrual cycle.However, after termination of isocapnic hypoxia, men appear to depress their ventilation to a greater degree than women.

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6.
Waters, Karen A., André Laferrière, JuliePaquette, Cynthia Goodyer, and Immanuela R. Moss. Curtailedrespiration by repeated vs. isolated hypoxia in maturing piglets isunrelated to NTS ME or SP levels. J. Appl.Physiol. 83(2): 522-529, 1997.In earlydevelopment, respiratory disorders can produce recurring hypoxicepisodes during sleep. To examine possible effects of daily repeatedvs. isolated hypoxic hypoxia, cardiorespiratory functions and central,respiratory-related neuromodulator levels in 21- to 32-day-old,chronically instrumented, unsedated piglets were compared between afifth sequential daily hypoxia and an isolated hypoxia (10%O2-90%N2 for 30 min). Diaphragmaticelectromyographic activity, heart rate and arterial pressure, and pHand gas tensions were measured. In vivo microdialysis, via chronicallyimplanted guides, served to sample interstitial substance P (SP) andmethionine-enkephalin (ME) at the level of the respiratory-relatednucleus tractus solitarii (NTS). Compared with an isolated hypoxia,repeated hypoxia resulted in 1)lower respiratory frequency (f), ventilation equivalent, and arterialpH, higher arterial PO2during hypoxia, and lower f in recovery from hypoxia; and2) increased SP concentrations butno change in ME concentrations. We conclude that, in these maturingswine, repeated vs. isolated hypoxic exposure curtails respiratoryresponses to hypoxia by a mechanism(s) unrelated to SP or ME levels atthe NTS.

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7.
To evaluatewhether changes in extracellular glutamate (Glu) levels in the centralnervous system could explain the depressed hypoxic ventilatory responsein hypothermic neonates, 12 anesthetized, paralyzed, and mechanicallyventilated piglets <7 days old were studied. The Glu levels in thenucleus tractus solitarius obtained by microdialysis, minute phrenicoutput (MPO), O2 consumption, arterial blood pressure, heart rate, and arterial blood gases weremeasured in room air and during 15 min of isocapnic hypoxia (inspiredO2 fraction = 0.10) at braintemperatures of 39.0 ± 0.5°C [normothermia (NT)]and 35.0 ± 0.5°C [hypothermia (HT)]. During NT, MPO increased significantly during hypoxia and remained above baseline. However, during HT, there was a marked decrease in MPOduring hypoxia (NT vs. HT, P < 0.03). Glu levels increased significantly in hypoxia during NT;however, this increase was eliminated during HT(P < 0.02). A significant linearcorrelation was observed between the changes in MPO and Glu levelsduring hypoxia (r = 0.61, P < 0.0001). Changes in pH, arterialPO2, O2 consumption, arterial bloodpressure, and heart rate during hypoxia were not different between theNT and HT groups. These results suggest that the depressed ventilatoryresponse to hypoxia observed during HT is centrally mediated and inpart related to a decrease in Glu concentration in the nucleus tractussolitarius.

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8.
Abdominal muscle fatigue after maximal ventilation in humans   总被引:4,自引:0,他引:4  
Kyroussis, Dimitris, Gary H. Mills, Michael I. Polkey,Carl-Hugo Hamnegard, Nicholaos Koulouris, Malcolm Green, and John Moxham. Abdominal muscle fatigue after maximal ventilation inhumans. J. Appl. Physiol. 81(4):1477-1483, 1996.Abdominal muscles are the principal muscles ofactive expiration. To investigate the possibility of abdominal musclelow-frequency fatigue after maximal ventilation in humans, westimulated the nerve roots supplying the abdominal muscles. We used amagnetic stimulator (Magstim 200) powering a 90-mm circular coil andstudied six normal subjects. To assess the optimum level of stimulationand posture, we stimulated at each intervertebral level betweenT7 andL1 in the prone, supine, andseated positions. At T10, we usedincreasing power outputs to assess the pressure-power relationship.Care was taken to avoid muscle potentiation. Twitch gastric pressure(Pga) was recorded with a balloon-tipped catheter. Mean (±SD)baseline twitch Pga measured with the subjects in the prone position atT10 was 23.5 ± 5.4 cmH2O. Within-occasion mean twitchPga coefficient of variation was 4.6 ± 1.1%. Twitch Pga wasmeasured with the subjects in the prone position with stimulation overT10 before and after 2 min ofmaximal isocapnic ventilation (MIV). Twenty minutes after MIV, meantwitch Pga fell by 17 ± 9.1%(P = 0.03) and remained low 90 minafter MIV. We conclude that after maximal ventilation in humans thereis a reduction of twitch Pga and, therefore, of low-frequency fatiguein abdominal muscles.

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9.
Long, W. Q., G. G. Giesbrecht, and N. R. Anthonisen. Ventilatory response to moderate hypoxia in awakechemodenervated cats. J. Appl. Physiol. 74(2): 805-810, 1993.In humans and cats the ventilatory response to 30 min ofmoderate hypoxia (arterial PO2 40-55Torr) is biphasic: ventilation increases sharply for the first 5 minand then declines. In humans there is evidence that the decline isdependent on the initial increase. We therefore examined ventilatoryresponses to moderate isocapnic hypoxia in awake cats with and withoutcarotid body denervation. Cats underwent denervation or a shamoperation. Then they were studied in a Drorbaugh-Fenn plethysmographwhile ventilation, arterial PO2, and end-tidal PO2 and PCO2 weremeasured. Three sham-operated and four denervated cats were studiedwith room air as the control. Sham animals demonstrated a biphasicresponse: ventilation rose to 211% of control at 5 min and fell to114% of control at 25 min. Denervated animals showed neither theinitial increase nor the subsequent decrease in ventilation. Threesham-operated and three denervated cats were studied with 2%CO2 added to the inspirate. Results were similar: intactcats showed a biphasic response to hypoxia, whereas denervated catsshowed neither an increase nor a decrease in ventilation. Preliminaryexperiments showed that hypoxia was not associated with changes inCO2 output or systemic blood pressure in either denervatedor intact animals. We conclude that depression of ventilation does notoccur in awake denervated cats in response to moderate hypoxiaand that the decline in ventilation that occurs in intact cats is insome way dependent on peripheral chemoreceptor output.

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10.
Effect of different levels of hyperoxia on breathing in healthy subjects   总被引:1,自引:0,他引:1  
Becker, Heinrich F., Olli Polo, Stephen G. McNamara, MichaelBerthon-Jones, and Colin E. Sullivan. Effect of different levelsof hyperoxia on breathing in healthy subjects. J. Appl. Physiol. 81(4): 1683-1690, 1996.Wehave recently shown that breathing 50%O2 markedly stimulates ventilationin healthy subjects if end-tidal PCO2(PETCO2) ismaintained. The aim of this study was to investigate apossible dose-dependent stimulation of ventilation byO2 and to examine possiblemechanisms of hyperoxic hyperventilation. In eight normalsubjects ventilation was measured while they were breathing 30 and 75%O2 for 30 min, withPETCO2 being held constant.Acute hypercapnic ventilatory responses were also tested in thesesubjects. The 75% O2 experimentwas repeated without controllingPETCO2 in 14 subjects, andin 6 subjects arterial blood gases were taken at baseline and at theend of the hyperoxia period. Minute ventilation(I) increased by 21 and 115% with 30 and 75% isocapnic hyperoxia, respectively. The 75%O2 without any control onPETCO2 led toa 16% increase inI, butPETCO2 decreased by3.6 Torr (9%). There was a linear correlation(r = 0.83) between the hypercapnic and the hyperoxic ventilatory response. In conclusion, isocapnic hyperoxia stimulates ventilation in a dose-dependent way, withI more than doubling after 30 min of75% O2. If isocapnia is notmaintained, hyperventilation is attenuated by a decrease in arterialPCO2. There is a correlation betweenhyperoxic and hypercapnic ventilatory responses. On the basis of datafrom the literature, we concluded that the Haldane effect seems to bethe major cause of hyperventilation duringboth isocapnic and poikilocapnichyperoxia.

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11.
Role of endogenous female hormones in hypoxic chemosensitivity   总被引:5,自引:0,他引:5  
Tatsumi, Koichiro, Cheryl K. Pickett, Christopher R. Jacoby,John V. Weil, and Lorna G. Moore. Role of endogenous female hormones in hypoxic chemosensitivity. J. Appl.Physiol. 83(5): 1706-1710, 1997.Effective alveolar ventilation and hypoxicventilatory response (HVR) are higher in females than in males andafter endogenous or exogenous elevation of progesterone and estrogen.The contribution of normal physiological levels of ovarian hormones toresting ventilation and ventilatory control and whether their site(s) of action is central and/or peripheral are unclear.Accordingly, we examined resting ventilation, HVR, and hypercapnicventilatory responses (HCVR) before and 3 wk after ovariectomy in fivefemale cats. We also compared carotid sinus nerve (CSN) and centralnervous system translation responses to hypoxia in 6 ovariectomized and 24 intact female animals. Ovariectomy decreased serum progesterone butdid not change resting ventilation, end-tidalPCO2, or HCVR (allP = NS). Ovariectomy reduced theHVR shape parameter A in the awake(38.9 ± 5.5 and 21.2 ± 3.0 before and after ovariectomy, respectively, P < 0.05) andanesthetized conditions. The CSN response to hypoxia was lower inovariectomized than in intact animals (shape parameterA = 22.6 ± 2.5 and 54.3 ± 3.5 in ovariectomized and intact animals, respectively,P < 0.05), but central nervous system translation of CSN activity into ventilation was similar inovariectomized and intact animals. We concluded that ovariectomy decreased ventilatory and CSN responsiveness to hypoxia, suggesting that the presence of physiological levels of ovarian hormones influences hypoxic chemosensitivity by acting primarily at peripheral sites.

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12.
Yang, X. X., W. S. Powell, M. Hojo, and J. G. Martin.Hyperpnea-induced bronchoconstriction is dependent ontachykinin-induced cysteinyl leukotriene synthesis. J. Appl. Physiol. 82(2): 538-544, 1997.The purposeof the study was to test the hypothesis that tachykinins mediatehyperpnea-induced bronchoconstriction indirectly by triggeringcysteinyl leukotriene (LT) synthesis in the airways. Guinea pigs(350-600 g) were anesthetized with xylazine and pentobarbital sodium and received hyperpnea challenge (tidal volume 3.5-4.0 ml,frequency 150 breaths/min) with either humidified isocapnic gas(n = 6) or dry gas(n = 7). Dry gas challenge wasperformed on animals that received MK-571(LTD4 antagonist; 2 mg/kg iv; n = 5), capsaicin(n = 4), neurokinin (NK) antagonists[NK1 (CP-99994) + NK2 (SR-48968) (1 mg/kg iv);n = 6], or theH1 antihistamine pyrilamine (2 mg/kg iv; n = 5). We measured thetracheal pressure and collected bile for 1 h before and 2 h afterhyperpnea challenge. We examined the biliary excretion of cysteinylLTs; the recovery of radioactivity in bile after instillation of 1 µCi [3H]LTC4intratracheally averaged 24% within 4 h(n = 2). The major cysteinyl LTidentified was LTD4 (32% recoveryof radioactivity). Cysteinyl LTs were purified from bile of animalsundergoing hyperpnea challenge by using reverse-phase high-pressureliquid chromatography and quantified by radioimmunoassay. There was asignificant increase in the peak value of tracheal pressure afterchallenge, indicating bronchoconstriction in dry gas-challenged animalsbut not after humidified gas challenge. MK-571, capsaicin, and NKantagonists prevented the bronchoconstriction; pyrilamine didnot. Cysteinyl LT levels in the bile after challenge weresignificantly increased from baseline in dry gas-challenged animals(P < 0.05) and were higher than inthe animals challenged with humidified gas or dry gas-challengedanimals treated with capsaicin or NK antagonists (P < 0.01). The results indicatethat isocapnic dry gas hyperpnea-induced bronchoconstriction is LTmediated and the role of tachykinins in the response is indirectthrough release of LTs. Endogenous histamine does not contribute to theresponse.

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13.
Dwinell, M. R., P. L. Janssen, J. Pizarro, and G. E. Bisgard. Effects of carotid body hypocapnia during ventilatory acclimatization to hypoxia. J. Appl.Physiol. 82(1): 118-124, 1997.Hypoxicventilatory sensitivity is increased during ventilatory acclimatizationto hypoxia (VAH) in awake goats, resulting in a time-dependent increasein expired ventilation (E). Theobjectives of this study were to determine whether the increasedcarotid body (CB) hypoxic sensitivity is dependent on the level of CB CO2 and whether the CBCO2 gain is changed during VAH.Studies were carried out in adult goats with CB blood gases controlled by an extracorporeal circuit while systemic (central nervous system) blood gases were regulated independently by the level of inhaled gases. Acute E responsesto CB hypoxia (CB PO2 40 Torr) and CBhypercapnia (CB PCO2 50 and 60 Torr)were measured while systemic normoxia and isocapnia were maintained. CBPO2 was then lowered to 40 Torr for 4 h while the systemic blood gases were kept normoxic and normocapnic.During the 4-h CB hypoxia, E increasedin a time-dependent manner. Thirty minutes after return to normoxia,the ventilatory response to CB hypoxia was significantly increasedcompared with the initial response. The slope of the CBCO2 response was also elevatedafter VAH. An additional group of goats(n = 7) was studied with asimilar protocol, except that CB PCO2was lowered throughout the 4-h hypoxic exposure to prevent reflexhyperventilation. CB PCO2 wasprogressively lowered throughout the 4-h CB hypoxic period to maintainE at the control level. After the 4-hCB hypoxic exposure, the ventilatory response to hypoxia was alsosignificantly elevated. However, the slope of the CBCO2 response was not elevatedafter the 4-h hypoxic exposure. These results suggest that CBsensitivity to both O2 andCO2 is increased after 4 h of CBhypoxia with systemic isocapnia. The increase in CB hypoxic sensitivityis not dependent on the level of CBCO2 maintained during the 4-hhypoxic period.

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14.
The ventilatorysensitivity to CO2, in hyperoxia, is increased after an 8-hexposure to hypoxia. The purpose of the present study was to determinewhether this increase arises through an increase in peripheral orcentral chemosensitivity. Ten healthy volunteers each underwent 8-hexposures to 1) isocapnic hypoxia, with end-tidalPO2 (PETO2) = 55 Torr and end-tidal PCO2(PETCO2) = eucapnia; 2)poikilocapnic hypoxia, with PETO2 = 55 Torr and PETCO2 = uncontrolled;and 3) air-breathing control. The ventilatory response toCO2 was measured before and after each exposure with theuse of a multifrequency binary sequence with two levels of PETCO2: 1.5 and 10 Torr above the normalresting value. PETO2 was held at 250 Torr.The peripheral (Gp) and the central (Gc) sensitivities were calculatedby fitting the ventilatory data to a two-compartment model. There wereincreases in combined Gp + Gc (26%, P < 0.05),Gp (33%, P < 0.01), and Gc (23%, P = not significant) after exposure to hypoxia. There were no significant differences between isocapnic and poikilocapnic hypoxia. We conclude that sustained hypoxia induces a significant increase inchemosensitivity to CO2 within the peripheral chemoreflex.

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15.
Acclimatization to altitude involves an increase in the acutehypoxic ventilatory response (AHVR). Because low-dose dopamine decreases AHVR and domperidone increases AHVR, the increase in AHVR ataltitude may be generated by a decrease in peripheral dopaminergicactivity. The AHVR of nine subjects was determined with and without aprior period of 8 h of isocapnic hypoxia under each of threepharmacological conditions: 1)control, with no drug administered;2) dopamine (3 µg · min1 · kg1);and 3) domperidone (Motilin, 40 mg).AHVR increased after hypoxia (P  0.001). Dopaminedecreased (P  0.01), and domperidone increased (P  0.005) AHVR. The effect of both drugs on AHVR appearedlarger after hypoxia, an observation supported by a significantinteraction between prior hypoxia and drug in the analysis of variance(P  0.05). Although the increasedeffect of domperidone after hypoxia of 0.40 l · min1 · %saturation1[95% confidence interval (CI) 0.11 to 0.92 l · min1 · %1]did not reach significance, the lower limit for this confidence interval suggests that little of the increase in AHVR after sustained hypoxia was brought about by a decrease in peripheral dopaminergic inhibition.

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16.
Smith, Curtis A., Craig A. Harms, Kathleen S. Henderson, andJerome A. Dempsey. Ventilatory effects of specific carotid bodyhypocapnia and hypoxia in awake dogs. J. Appl.Physiol. 82(3): 791-798, 1997.Specific carotidbody (CB) hypocapnia in the 10-Torr (less than eupneic) rangereduced ventilation in the awake and sleeping dog to the same degree asdid CB hyperoxia [CB PO2 (PCBO2);>500 Torr; C. A. Smith, K. W. Saupe, K. S. Henderson, and J. A. Dempsey. J. Appl. Physiol. 79:689-699, 1995], suggesting a powerful inhibitory effect ofhypocapnia at the carotid chemosensor over a range ofPCO2 encountered commonly inphysiological hyperpneas. The primary purpose of this study was toassess the ventilatory effect of CB hypocapnia on the ventilatoryresponse to concomitant CB hypoxia. The secondary purpose was to assess the relative gains of the CB and central chemoreceptors to hypocapnia. In eight awake female dogs the vascularly isolated CB was perfused withhypoxic blood (mild,PCBO2 50 Torr or severe, PCBO2 36 Torr) in a background of normocapnia or hypocapnia (10 Torr lessthan eupneic arterial PCO2) in theperfusate. The systemic (and brain) circulation was normoxicthroughout, and arterial PCO2 was notcontrolled (poikilocapnia). With CB hypocapnia, the peak ventilation(range 19-27 s) in response to hypoxic CB perfusion increased 48%(mild) and 77% (severe) due to increased tidal volume. When CBhypocapnia was present, these increases in ventilation were reduced to21 and 27%, respectively. With systemic hypocapnia, with the isolatedCB maintained normocapnic and hypoxic for >70 s, the steady-statepoikilocapnic ventilatory response (i.e., to systemic hypocapnia alone)decreased 15% (mild CB hypoxia) and 27% (severe CB hypoxia) from thepeak response, respectively. We conclude that carotid body hypocapniacan be a major source of inhibitory feedback to respiratory motoroutput during the hyperventilatory response to hypoxic carotid bodystimulation.

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17.
Albert, T. S. E., V. L. Tucker, and E. M. Renkin. Acutealveolar hypoxia increases blood-to-tissue albumin transport: role ofatrial natriuretic peptide. J. Appl.Physiol. 82(1): 111-117, 1997.Plasmaimmunoreactive atrial natriuretic peptide (irANP) and blood-to-tissueclearance of 131I-labeled ratserum albumin (CRSA) wereexamined in anesthetized rats during hypoxic ventilation(n = 5-7/group). Hypoxia (10 min) increased irANP from 211 ± 29 (room air) to 229 ± 28 (15%O2, not significant), 911 ± 205 (10% O2), and 4,374 ± 961 pg/ml (8% O2),respectively. Graded increases inCRSA were significant at 8%O2 in fat (3.6-fold), ileum(2.2-fold), abdominal muscles (2.0-fold), kidney (1.8-fold), andjejunum (1.4-fold). CRSA wasdecreased in back skin and testes; heart, brain, and lungs wereunaffected. The increases in CRSAwere related to irANP and not to arterial PO2. Circulating plasma volume wasnegatively correlated with whole bodyCRSA. Graded increases inextravascular water content (EVW) were found in the kidney, left heart,and cerebrum and were positively related toCRSA in the kidney. EVW decreased in gastrointestinal tissues; the magnitude was inversely related toCRSA. We conclude that ANP-inducedprotein extravasation contributes to plasma volume contraction duringacute hypoxia.

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18.
Duringventilatory acclimatization to hypoxia (VAH), the relationship betweenventilation (E) and end-tidalPCO2 (PETCO2) changes.This study was designed to determine 1) whether these changes can be seenearly in VAH and 2) if these changesare present, whether the responses differ between isocapnic andpoikilocapnic exposures. Ten healthy volunteers were studied by usingthree 8-h exposures: 1) isocapnichypoxia (IH), end-tidal PO2(PETO2) = 55 Torr andPETCO2 held at thesubject's normal prehypoxic value;2) poikilocapnic hypoxia (PH),PETO2 = 55 Torr; and3) control (C), air breathing. TheE-PETCO2relationship was determined in hyperoxia (PETO2 = 200 Torr) beforeand after the exposures. We found a significant increase in theslopes ofE-PETCO2 relationship after both hypoxic exposures compared with control (IH vs.C, P < 0.01; PH vs. C,P < 0.001; analysis of covariance with pairwise comparisons). This increase was not significantly different between protocols IH andPH. No significant changes in theintercept were detected. We conclude that 8 h of hypoxia, whetherisocapnic or poikilocapnic, increases the sensitivity of the hyperoxicchemoreflex response to CO2.

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19.
Episodic hypoxia evokes a sustained augmentation of respiratorymotor output known as long-term facilitation (LTF). Phrenic LTF isprevented by pretreatment with the 5-hydroxytryptamine (5-HT) receptorantagonist ketanserin. We tested the hypothesis that 5-HT receptoractivation is necessary for the induction but not maintenance ofphrenic LTF. Peak integrated phrenic nerve activity (Phr) wasmonitored for 1 h after three 5-min episodes of isocapnic hypoxia(arterial PO2 = 40 ± 2 Torr; 5-minhyperoxic intervals) in four groups of anesthetized, vagotomized,paralyzed, and ventilated Sprague-Dawley rats [1) control(n = 11), 2) ketanserin pretreatment (2 mg/kg iv; n = 7), and ketanserin treatment 0 and 45 minafter episodic hypoxia (n = 7 each)]. Ketanserintransiently decreased Phr, but it returned to baseline levels within10 min. One hour after episodic hypoxia, Phr was significantlyelevated from baseline in control and in the 0- and 45-min posthypoxia ketanserin groups. Conversely, ketanserin pretreatment abolished phrenic LTF. We conclude that 5-HT receptor activation is necessary toinitiate (during hypoxia) but not maintain (following hypoxia) phrenic LTF.

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20.
Jones, David R., Randy M. Becker, Steve C. Hoffmann, John J. Lemasters, and Thomas M. Egan. When does the lungdie? Kfc, cellviability, and adenine nucleotide changes in the circulation-arrested rat lung. J. Appl. Physiol. 83(1):247-252, 1997.Lungs harvested from cadavericcirculation-arrested donors may increase the donor pool for lungtransplantation. To determine the degree and time course ofischemia-reperfusion injury, we evaluated the effect ofO2 ventilation on capillarypermeability [capillary filtration coefficient(Kfc)],cell viability, and total adenine nucleotide (TAN) levels in in situcirculation-arrested rat lungs.Kfc increased with increasing postmortem ischemic time(r = 0.88). Lungs ventilated withO2 1 h postmortem had similarKfc andwet-to-dry ratios as controls. Nonventilated lungs had threefold(P < 0.05) and sevenfold (P < 0.0001) increases inKfc at 30 and 60 min postmortem compared with controls. Cell viability decreased inall groups except for 30-min postmortemO2-ventilated lungs. TAN levelsdecreased with increasing ischemic time, particularly in nonventilatedlungs. Loss of adenine nucleotides correlated with increasingKfc values (r = 0.76). This study indicates thatlungs retrieved 1 h postmortem may have normalKfc withpreharvest O2 ventilation. Therelationship betweenKfc and TANsuggests that vascular permeability may be related to lung TAN levels.

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