PubMed HealthSearch

Biomedical subjects

A H Jansen

Publications and source records attributed to A H Jansen.

18 recordsLinked to original sources

Maturation of steady-state CO2 sensitivity in vagotomized anesthetized lambs.

The maturation of the respiratory sensitivity to CO2 was studied in three groups of anesthetized (ketamine, acepromazine) lambs 2-3, 14-16, and 21-22 days old. The lambs were tracheostomized, vagotomized, paralyzed, and ventilated with 100% O2. Phrenic nerve activity served as the measure of respiration. The lambs were hyperventilated to apneic threshold, and end-tidal PCO2 was raised in 0.5% steps for 5-7 min each to a maximum 7-8% and then decreased in similar steps to apneic threshold. The sinus nerves were cut, and the CO2 test procedure was repeated. Phrenic activity during the last 2 min of every step change was analyzed. The CO2 sensitivity before and after sinus nerve section was determined as change in percent minute phrenic output per Torr change in arterial PCO2 from apneic threshold. Mean apneic thresholds (arterial PCO2) were not significantly different among the groups: 34.8 +/- 2.08, 32.7 +/- 2.08, and 34.7 +/- 2.25 (SE) Torr for 2- to 3-, 14- to 16-, and 21- to 22-day-old lambs, respectively. After sinus denervation, apneic thresholds were raised in all groups [39.9 +/- 2.08, 40.9 +/- 2.08, and 45.3 +/- 2.25 (SE) Torr, respectively] but were not different from each other. CO2 response slopes did not change with age before or after sinus nerve section. We conclude that carotid bodies contribute to the CO2 response during hyperoxia by affecting the apneic threshold but do not affect the steady-state CO2 sensitivity and the central chemoreceptors are functionally mature shortly after birth.

Anesthesia

Analysis of respiratory neuronal activity in fetal sheep.

We developed a new method to monitor fetal medullary respiratory neurons utilizing a two-stage approach. At 129-133 days of gestation, sheep were anesthetized, and a window was placed over the area of the fourth ventricle. After a recovery period of 3-5 days, the fetus was exteriorized into a saline bath under maternal spinal anesthesia, and the head was connected rigidly to a stereotaxic frame. Microelectrodes were inserted into the area of the nucleus tractus solitarius during rapid-eye-movement sleep, and extracellular recordings of 223 respiratory neurons were analyzed: 76% were inspiratory, 9% expiratory, and 15% phase spanning, as classified by visual and computer correlation to diaphragmatic activity. More detailed analysis of 100 neurons was done to assess the respiratory component (eta 2) by use of a modification of the method developed by Orem and Dick (J. Neurophysiol, 50: 1098-1107, 1983). With use of cohorts of 25 breaths, fetal respiratory neurons were found to frequently change their phase relationship to diaphragmatic activity. The eta 2 statistic of fetal respiratory neurons was not a stable characteristic but changed over time. This could be a reflection of an immature central respiratory system before birth or the lack of major sensory inputs.

Animals

Fetal breathing and development of control of breathing.

Technical advances during the last several decades have greatly facilitated research into fetal physiology and behavior, specifically fetal breathing (FB). Breathing movements have been demonstrated in the fetuses of every mammalian species investigated and appear to be part of normal fetal development. In this review we focus on the methods of measuring FB and on some of the problems associated with these measurements and their interpretation. We also review fetal behavior, the role of the peripheral and central chemoreceptors in spontaneous FB, the fetal respiratory response to hypercapnia and hypoxia, and the transition to continuous breathing at birth. It is clear that in many ways the control of breathing movements in utero differs from that after birth. In particular, inhibitory influences are much more prominent before than after birth. Possibly this is due to the unique fetal situation, in which conservation of energy may be more important than any advantage breathing activity imparts to the fetus.

Animals

Influence of naloxone on fetal breathing and the respiratory response to hypercapnia.

The effect of naloxone on fetal breathing and the respiratory sensitivity to CO2 was tested on chronically prepared fetal lambs on days one and four post-surgery. After a control period the fetus was challenged with hypercapnia for 10 min and after another control period 9 mg naloxone was administered to the fetus followed by another CO2 test 15 min later. An index of fetal breathing (Veq), tidal volume (VT) and frequency of breathing (f) was determined from tracheal pressure deflections and from the integrated diaphragmatic EMG, expressed as power of diaphragmatic activity per min. Naloxone consistently caused fetal arousal but the duration was variable. The respiratory response to naloxone was also variable and not statistically different from control. The respiratory sensitivity to CO2 (% delta Veq/Torr delta PaCO2 or % delta Diaph. Power/min/Torr delta PaCO2) was not changed by naloxone on either day. We conclude that endorphins do not have a significant direct role in the fetal respiratory response to CO2 but may be involved in the control of state.

Animals

Control of organ blood flow in fetal sheep during normoxia and hypoxia.

The role of peripheral chemoreceptors in the circulatory adaptation to hypoxia and the effects of rapid-eye-movement (REM) and non-REM (NREM) sleep and breathing activity on organ blood flow were assessed in fetal sheep. Blood flow was measured with isotope-labeled microspheres on intact, vagotomized (VX), and sinoaortic-denervated (SAD) fetuses. Denervation did not change the biventricular cardiac output (Biv. CO) or organ blood flows during normoxia. In intact fetuses the blood flow was increased during hypoxemia in brain, adrenals, and heart but not in kidneys, skeletal muscles, or placenta. The increase in organ blood flow during hypoxemia was reduced in the VX group and even more in SAD fetuses, but in the latter group, blood flow was still increased in mid-brain, medulla, pons, skeletal muscles, and heart. Sleep states per se did not significantly affect the blood flow to any organs tested. However, the Biv. CO and blood flow to all organs except kidneys and adrenals was increased during fetal breathing in REM sleep. We conclude that 1) during moderate hypoxemia both aortic and carotid bodies plus an additional mechanism are involved in redistributing fetal blood flow, and 2) changes in organ perfusion during REM sleep are due to concomitant fetal breathing.

Animals

The effect of chronic biphrenectomy on lung growth and maturation in fetal lambs. Morphologic and morphometric studies.

Three fetal lambs underwent phrenic nerve section between Days 99 and 104 of gestation, and 2 twins of the experimental animals underwent sham operation at the same time. When they were killed at 135 to 137 days of gestation, the experimental animals had lower specific lung weights (g/kg) and lung volumes (ml/kg) and had delayed lung development by subjective microscopy. Light microscopic morphometry showed significantly less volume proportion of potential gas-exchanging air spaces, less parenchyma, and more gas-exchanging wall. Scanning electron microscopy confirmed these findings and also showed that the transition zone between conducting and gas-exchanging areas was less sharp in the experimental animals, attributed to diminished alveolarization of distal conducting airways. Transmission electron microscopy, together with morphometry, showed a diminished maturation of alveolar Type II cells, with fewer osmiophilic lamellar bodies and more glycogen. The number of mesenchymal-Type II cell interconnections was not altered. Maturation of bronchiolar epithelium was not affected, and mesenchymal-epithelial connections were not observed. We conclude that bilateral phrenic nerve section not only diminishes lung growth, but also diminishes intrauterine maturation of the alveolar well. Maturation of bronchiolar epithelium may not be affected by fetal respiration.

Animals

A novel analysis of fetal breathing.

We have analyzed a variety of approaches in assessing fetal breathing parameters (VT, TI, Ttot, VT/TI, VI) in eight fetal sheep during a control period and during stimulation with 6 and 9% CO2. By using conventional analysis of data blocks varying from 100 to 1500 breaths, several different conclusions could be reached regarding the respiratory response to hypercapnia: stimulation, depression, or no change in all parameters studied. A new analysis based on piecewise linear regression used as a data grouping technique indicated that a simple mean +/- SD of the individual parameters was an inappropriate description of normal or stimulated fetal breathing. Based on tests for homogeneity of regressions of VT on TI for a completely random design, it is concluded that an estimate of fetal respiratory drive is only described adequately by two to four regression regimes. These regimes, estimated from the regression technique, could be combined to give a weighted mean value based on the proportion of time they were present. Using this new approach and an analysis of variance, we found (i) that frequency and VI were similar between animals during control and hypercapnia, (ii) that breathing frequency decreased during hypercapnia, and (iii) a positive relationship between VT and TI.

Animals

Maturation of spontaneous fetal diaphragmatic activity and fetal response to hypercapnia and hypoxemia.

The electromyogram (EMG) of the diaphragm, lateral rectus, and nuchal and hindlimb muscles were studied during spontaneous activity and during hypercapnia or hypoxemia in eight fetal sheep from 0.5 to 0.8 gestation (73-128 days). At the earliest gestational age, diaphragmatic EMG activity was mainly tonic and associated with tonic activity of somatic muscles. The stimulus for the diaphragmatic activity originated centrally. Brief periods of a rapid-eye-movement (REM) state characterized by phasic lateral rectus and diaphragmatic activity and absence of nuchal activity were recognized. Furthermore, from 0.5 to 0.7 gestation onward, activity of all muscles increased. Thereafter increased specificity of activity in relation to the apparent REM and non-rapid-eye-movement (NREM) state occurred. With maturation, phasic diaphragmatic activity increased at the expense of tonic activity. The most striking effect of maturation on apnea was a greater proportion of apnea lasting greater than 1 min, but the total duration of apnea as a percent of a total recording remained unchanged. The quantitative response to hypercapnia during maturation was independent of the pattern of spontaneous diaphragmatic activity. Hypercapnia at 0.5 gestation changed the pattern of diaphragmatic EMG activity from mainly tonic to phasic. Thus the central chemoreceptors and appropriate neuronal pathways are present and functional as early as 0.5 gestation. Hypercapnia at 0.5 gestation caused a shift in diaphragmatic EMG power to lower frequencies similar to that found during control conditions in the older fetus. This might suggest that during maturation there is increased recruitment of phrenic motoneurons. Hypoxemia abolished tonic somatic activity at 0.5 gestation and decreased phasic diaphragmatic activity at more advanced gestational ages. Therefore the central inhibitory mechanisms of hypoxemia are developed by 0.5 gestation.

Animals

Vitamin K1 increases sister chromatid exchange in vitro in human leukocytes and in vivo in fetal sheep cells: a possible role for "vitamin K deficiency" in the fetus.

The levels of the vitamin K-dependent clotting factors are markedly lower in the human fetus and newborn than in older infants and adults. Direct measurement of vitamin K1 in cord plasma records low or undetectable levels. This phenomenon, although the norm, is referred to as vitamin K deficiency and is a significant risk factor for hemorrhage in the fetus and newborn. Sister chromatid exchange (SCE), which may be used as an index of mutagenic activity, was assayed in cultured leukocytes of placental and adult blood following phytohemagglutinin stimulation. The mean number of SCEs per metaphase in human placental blood was 3.32 +/- SE 0.219 as compared with levels of 5.13 +/- SE 0.273 in young adults (p less than 0.01), and in the presence of added vitamin K1 at a concentration of 1 X 10(-6) M the SCE increased significantly in both adult and placental cells. In vitro SCE dose response curves to K1 in the blood of fetal and maternal sheep were obtained. When five fetal sheep were given 1 mg of K1 by catheter into the femoral vein the SCE increased from 3.94 +/- SE 0.15 preinjection to 5.38 +/- SE 0.23 at 24 h postinjection (p less than 0.01). In the pretreatment fetal sheep, serum vitamin K1 was below detectable levels in all seven animals in which it was assayed and reached levels as high as 0.3 X 10(-6) M 1 h post-K1 injection. The low level of K1 in the fetus may in fact confer some biological advantage by reducing the risk of mutagenic events during a period of rapid cell proliferation.

Adult

Stimulation of fetal breathing activity by beta-adrenergic mechanisms.

Experiments were done on chronically prepared fetal lambs, 125-135 days gestation, to test the effects of various catecholamines on fetal breathing (FB) as well as the influence of isoproterenol on the fetal respiratory response to hypoxemia. Bolus injections of epinephrine, norepinephrine, and isoproterenol (5-20 micrograms) were administered via the lingual artery or femoral or jugular vein during periods of FB activity or apnea. The effects of epinephrine and norepinephrine on FB were variable and not statistically significant. Isoproterenol produced a significant increase in FB, frequency of breathing, and mean inspiratory effort, when infused during rapid-eye-movement (REM) sleep but it failed to induce FB during non-rapid-eye-movement (NREM) sleep. The positive response during REM sleep was absent following pretreatment with 3-5 mg propranolol and after bilateral section of the sinus nerves. The effect of hypoxia on FB was tested before and during constant infusion of isoproterenol (1 microgram/min iv). A reduction of the fetal arterial PO2 by 3-10 Torr produced the characteristic depression of FB in either situation. These results indicate that the fetal carotid body chemoreceptors can reflexly stimulate FB under certain circumstances but that their effectiveness is limited by more powerful inhibitory mechanisms such as those operative during NREM sleep and hypoxemia.

Adrenergic beta-Agonists

Effects of hypercapnia and hypoxemia on fetal breathing after decortication.

The effects of hypercapnia and hypoxemia on breathing movements were studied in 12 chronically decorticated fetal sheep, 127-140 days gestation. The fetal state of consciousness was defined in terms of activity of the lateral rectus and nuchal muscles. Arterial blood pressure was monitored. Fetal breathing was determined by integrated diaphragmatic electromyogram (EMG) and analyzed in terms of inspiratory time (TI), expiratory time (TE), electrical equivalent of tidal volume (EVT), breath interval (TT), duty cycle (TI/TT), mean inspiratory flow equivalent (EVT/TI), and instantaneous ventilation equivalent (EVT/TT). Fetal breathing occurred only during episodes of rapid-eye movements, and the response to hypercapnia consisted of an increase in EVT, TI, EVE, and EVT/TI and a decrease in the coefficient of variation of all measured parameters. Induction of hypoxia during episodes of spontaneous fetal breathing produced a decrease in the rate of breathing and an increase in EVT and TI with no change in the variability of all parameters studied. Since similar responses to hypercapnia and hypoxemia are seen in the intact fetus, we conclude that the cerebral cortex has no obvious effect on the chemical control of fetal breathing.

Animals

Respiratory effects of H+ and dinitrophenol injections into the brain stem subarachnoid space of fetal lambs.

Mock cerebrospinal fluid (pH 5.37-8.38) or 2,4-dinitrophenol (DNP) (0.15-1.5 mg) was injected into the subarachnoid space of the ventral brain stem of exteriorized fetal sheep. Changes in pH on the ventral surface of the medulla did not stimulate respiratory efforts or induce significant cardiovascular changes. The respiratory response to DNP injections ranged from no response to prolonged rhythmic ventilation that was independent of the peripheral chemoreceptors or the control arterial pH and blood gas tensions. This inconsistency suggests an effector site somewhat removed from the immediate surface of the medulla. The heart rate and blood pressure were not affected. It is concluded that increased H+ concentration in the extracellular fluid of the fetal ventral medulla does not initiate respiration, and any respiratory response to metabolic inhibitors applied to this area therefore is not attributable to a secondary change in surface pH.

Animals

Site of central chemosensitivity in fetal sheep.

The heart rate, blood pressure, and respiratory response to topically applied cyanide on the ventrolateral medullary surface and upper spinal cord was studied on exteriorized sinaortic-denervated fetal lambs under pentobarbital anesthesia. On all sites tested cyanide produced a rapid increase in heart rate and blood pressure (P smaller than 0.05) which was most pronounced from the area adjacent to the nerve roots IX to XI (mean 32%). Respiratory efforts consisting of 1-8 gasps were induced in half the applications to the medulla but never when the pledgets were applied to the spinal cord. The mean delay to response was 43 s (range 13-102 s). After cautery of the chemosensitive areas, topical application of cyanide failed to stimulate gasping, whereas intravenous cyanide or cord clamping still produced a vigorous respiratory response. It is concluded that sympathetic stimulation of the heart and blood vessels can originate centrally in response to local histotoxic hypoxia of the ventral medulla and upper spinal cord. Furthermore, it is proposed that in the apneic fetus histotoxic hypoxia of the medulla initiates respiration possibly by stimulating a special gasping mechanism which is separate from the respiratory center responsible for rhythmic breathing after birth. The responsible neurons must be located at least 2 mm beneath the ventral medullary surface.

Administration, Topical