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Biomedical subjects

J L Robotham

Publications and source records attributed to J L Robotham.

At least 55 records · Page 3Linked to original sources

High-resolution computed tomography--physiologic correlation.

High-resolution computed tomography (HRCT) as a tool for investigation of bronchovascular and pulmonary responses to various physiologic and pharmacologic stimuli is a new field of application. The potential of this method has only recently been investigated in animal experiments. To date, research has focused on the determination of airway responses in the context of agonist challenge such as aerosolized or i.v. histamine, isotonic saline, halothane anesthesia, and hypoxia. Likewise, physiologic HRCT has been used in the elucidation of the pulmonary circulatory response to acute hypervolemia and hypoxia. Early results indicate that significant observations can be derived from HRCT as it is the only existing method that not only detects physiologic responses but, unlike existing methods, can characterize their site and locoregional differences. In this article, the rationale for and present status of physiologic HRCT is presented.

Bronchial Hyperreactivity↗

Diaphragmatic fatigue assessed by 31P-magnetic resonance spectroscopy in vivo.

We tested whether fatigue of the piglet diaphragm is associated with inadequate oxidative metabolism as measured by magnetic resonance spectroscopy (MRS). An MRS measured ratio of inorganic phosphate to phosphocreatine (Pi/PCr) > or = 1 was taken as evidence of inadequate oxidative metabolism. Piglets (n = 10) underwent phrenic nerve pacing for 90 min with stimulation frequency of 30 Hz and duty cycle of 0.33. In a separate group of six piglets PCr, Pi, ATP, and intracellular pH were measured by in vivo MRS, and diaphragmatic blood flow was measured with radioactive microspheres at control, 2, 10, 45, 60, and 90 min of pacing. Transdiaphragmatic pressure fell from 25 +/- 3 to 15 +/- 2 mmHg (61 +/- 5%) at 2 min and remained depressed in a separate group of four piglets (P < 0.05). Conversely, compound action potential amplitude remained constant for the first 10 min of pacing and fell to 68 +/- 5% of control at 45 min (P < 0.05). Pi/PCr rose from a control value of 0.32 +/- 0.06 to 0.92 +/- 0.23 at 2 min and 0.79 +/- 0.03 at 10 min (P < 0.05) before returning toward control at 45-90 min. O2 delivery increased from 4.6 +/- 1.2 to 24.7 +/- 4.8 ml.min-1.100 g-1 at 2 min and 18.4 +/- 2.2 ml.min-1.100 g-1 at 10 min (P < 0.05) but then fell to lower levels at 45-90 min. ATP and intracellular pH remained constant except for a decline in pH to 6.98 +/- 0.09 at 45 min (P < 0.05) from the control value of 7.26 +/- 0.06.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenosine Triphosphate↗

Paracrine effects of endocardial endothelial cells on myocyte contraction mediated via endothelin.

Endocardial endothelium is reported to modulate myocardial contraction by releasing diffusible factors, but the nature of the agent(s) responsible is unknown. In the present study we investigated the potential role of endothelin in these effects. Cultured sheep endocardial endothelial cells were found to express endothelin-1 mRNA and to release endothelin-1 into superfusing solution. This superfusate induced positive inotropic effects in isolated rat cardiac myocytes, associated with an increase in the cytosolic Ca2+ transient. Similar positive inotropic effects were induced by vascular endothelial cell superfusate as well as by synthesized endothelin-1, administered at concentrations similar to those present in the superfusate. Incubation of endocardial endothelial cell superfusate with endothelin-1-specific antiserum reduced the free endothelin-1 concentration to undetectable levels and abolished both the positive inotropic effect and the rise in cytosolic Ca2+. These findings indicate that endocardial endothelial cells may modulate myocardial contraction in part through the release of endothelin-1 and suggest that endocardial as well as vascular endothelium could exert potent paracrine effects on myocardium.

Animals↗

Intravascular volume loading reversibly decreases airway cross-sectional area.

High-resolution computed tomography was used to directly determine the short-term effects of intravascular volume expansion on airway caliber. The change in airway cross-sectional area caused by intravascular volume expansion (30 ml/kg, Ringer's lactate) was studied in six anesthetized mini-pigs within 5 min. Twenty-five of 27 large airways (diameter, 2.01 to 5.0 mm) demonstrated decreased internal cross-sectional area (10.56 +/- 1.26 vs 8.66 +/- 1.03 mm2, p < 0.001). Twenty of 24 small airways (diameter, 0.75 to 2.0 mm) showed decreased internal cross-sectional area (1.82 +/- 0.16 vs 1.44 +/- 0.16 mm2, p < 0.001). These changes were rapidly (< 6 min) reversed by intravascular volume reduction. The external airway cross-sectional area did not change. These data suggest rapid, reversible bronchial mucosal vascular engorgement as a cause of increased airway resistance in heart failure.

Airway Resistance↗

Acute effects of increased intravascular volume and hypoxia on the pulmonary circulation: assessment with high-resolution CT.

High-resolution computed tomography (HRCT) was used to evaluate acute morphologic changes in the circulation of anesthetized miniature pigs (a) after volume loading and (b) after induction of hypoxia. Before and after each challenge, serial HRCT scans were obtained at a constant position in the caudal lobes of the lung. Scans were digitized and analyzed to determine the extent of changes in the cross-sectional area of vessels greater than 300 microns in diameter. Parenchymal background attenuation in anterior, middle, and posterior lung regions was used to assess volume changes in vessels less than 300 microns in diameter. Volume loading increased cross-sectional area by 25.2% +/- 4.3 in arteries and by 37.8% +/- 6.1 in veins and caused a gravity-dependent increase in parenchymal attenuation. Hypoxia decreased parenchymal attenuation, which was consistent with constriction of vessels smaller than 300 microns. Larger arteries and veins reacted heterogeneously. Vascular dilation during volume loading was predominantly passive, and hypoxia increased vascular tone throughout the circulation. HRCT represents a new in vivo approach to investigate vascular responses to various stimuli.

Acute Disease↗

Superior and inferior vena caval flows during respiration: pathogenesis of Kussmaul's sign.

Respiratory induced changes in superior (QSVC) and inferior (QIVC) vena caval flows and abdominal pressures were evaluated in anesthetized closed-chest dogs. QSVC and QIVC were measured with ultrasound transit time flow probes (n = 5), and general (Pab) and regional subdiaphragmatic (Pd) abdominal pressures were measured by air-filled balloons (n = 5), during two respiratory maneuvers produced by phrenic nerve stimulation, i.e., simulated spontaneous inspiration (SSI), and Mueller maneuver (MM), with the airway occluded to minimize diaphragmatic descent. With hypervolemia: during SSI, QSVC decreased, QIVC increased, and right atrial pressure increased (P less than 0.05) despite a decrease in esophageal pressure (Pes), i.e., Kussmaul's sign; during MM, both QSVC and QIVC increased (P less than 0.05) without Kussmaul's sign. The ratios delta Pab/delta Pes and delta Pd/Pes were larger during SSI than MM (P less than 0.01). With hypovolemia: during SSI and MM, QSVC increased and QIVC decreased with a venous pressure gradient across the diaphragm (P less than 0.05), consistent with development of a vascular waterfall. These results suggest that 1) changes in abdominal pressure may affect the patterns of QSVC and QIVC during respiration, depending on blood volume status; 2) a prolonged inspiration with hypovolemia may decrease QIVC because of the development of a vascular waterfall; 3) QSVC and QIVC may be interdependent during respiration; and 4) the essential mechanism of Kussmaul's sign is a substantially larger inspiratory increase in abdominal pressures produced by diaphragmatic descent compared with the decrease in intrathoracic pressure under hypervolemic conditions, rather than the presence of pericardial pathology or right heart dysfunction.

Animals↗

Influence of pericardial constraint on atrioventricular interactions.

The effects of the pericardial constraint in control, tamponade, and absent pericardium conditions was studied in 18 anesthetized open-chest dogs. Atrial pressures and systolic and diastolic inflow volumes per beat in the superior (SVC), inferior vena cavae (IVC), and pulmonary vein (PV) were measured. With increasing tamponade, 1) the systolic-diastolic distribution of venous flow became almost exclusively systolic in the SVC (P less than 0.001) and IVC (P less than 0.05), as the gamma-descent disappeared; 2) similar but lesser left-sided changes occurred in PV flows (P less than 0.001) and pressure; and 3) the systolic-diastolic distribution of venous flow was modulated by heart rate. The results imply that during tamponade 1) increased pericardial liquid pressure associated with an increased pericardial constraint couples reciprocal atrial and ventricular volume changes; 2) the atria fill during ventricular ejection (atrioventricular interaction); 3) total heart volume must have been relatively constant throughout a cardiac cycle; and 4) differences in right and left heart compliances may explain persistent diastolic PV flow. Pericardiotomy produced a small increase in the ratio of diastolic to systolic venous inflow volumes (P less than 0.025), suggesting that normally the pericardium has a minor influence on atrioventricular interaction, the volume changes in the atria and ventricles being relatively uncoupled. With severe tamponade, a homogeneous pericardial fluid column tightly couples atrial and ventricular volume changes and accounts for the characteristic changes in atrial pressure waveforms and patterns of venous flow.

Animals↗

Effects of inspiratory diaphragmatic descent on inferior vena caval venous return.

To explain the contradictory results in the literature regarding the effects of inspiratory diaphragmatic descent on inferior vena caval (IVC) venous return, we evaluated changes in total IVC flow as well as regional splanchnic and nonsplanchnic IVC flows by use of ultrasound flow probes placed around the thoracic and subhepatic abdominal IVC during phrenic nerve stimulation (PNS) in anesthetized open-chest dogs. With the abdomen closed (n = 6), PNS under hypervolemic conditions increased the total IVC flow by enhancing the splanchnic IVC flow, with a transient decrease in the nonsplanchnic IVC flow (P less than 0.05). Under hypovolemic conditions, PNS initially increased the total IVC flow but later decreased the total IVC flow by reducing the nonsplanchnic IVC flow, associated with a venous pressure gradient in the IVC across the diaphragm (P less than 0.05), consistent with development of a vascular waterfall. With the abdomen widely open, the mobile abdominal contents eviscerated, and the subhepatic IVC occluded (n = 5), PNS increased the splanchnic IVC flow associated only with an increase in focal contact pressure over the liver without any increase in general abdominal pressure (Pab) (P less than 0.05). These results suggest that our previously proposed concept of abdominal vascular zone conditions (J. Appl. Physiol. 69: 1961-1972, 1990) is useful as a global approximation to understand the effects of respiratory-induced changes in Pab's on the total and regional IVC venous return. Nonhomogeneous distribution of Pab's during diaphragmatic descent may need to be considered to explain all aspects of the behavior of the intact IVC system.

Animals↗

Hypoxic bronchodilation.

Recent advances in computed tomographic imaging provide a unique method to serially and directly visualize acute physiological response in the lung. To directly investigate the airway response to hypoxia, high-resolution computed tomographic scans of the lungs of eight intact anesthetized minipigs were serially repeated before, during, and after ventilation with a hypoxic gas mixture (inspired fraction of O2 congruent to 0.07). This approach demonstrated an acute reversible 56 +/- 8% (SE) dilation in large airways (greater than 2 mm diam) and a 90 +/- 15% dilation in small airways (less than 1.99 mm diam) with decreased inspired O2 tension. Of the airways studied, 70 of 76 dilated. Hypoxic bronchodilation may interact with hypoxic pulmonary vasoconstriction in the fundamental physiological process of ventilation-perfusion matching in the lung.

Animals↗

Mechanisms of blood flow during pneumatic vest cardiopulmonary resuscitation.

Mechanisms of blood flow during cardiopulmonary resuscitation (CPR) were studied in a canine model with implanted mitral and aortic flow probes and by use of cineangiography. Intrathoracic pressure (ITP) fluctuations were induced by a circumferential pneumatic vest, with and without simultaneous ventilation, and by use of positive-pressure ventilation alone. Vascular volume and compression rate were altered with each CPR mode. Antegrade mitral flow was interpreted as left ventricular (LV) inflow, and antegrade aortic flow was interpreted as LV outflow. The pneumatic vest was expected to elevate ITP uniformly and thus produce simultaneous LV inflow and LV outflow throughout compression. This pattern, the passive conduit of "thoracic pump" physiology, was unequivocally demonstrated only during ITP elevation with positive-pressure ventilation alone at slow rates. During vest CPR, LV outflow started promptly with the onset of compression, whereas LV inflow was delayed. At compression rates of 50 times/min and normal vascular filling pressures, the delay was sufficiently long that all LV filling occurred with release of compression. This is the pattern that would be expected with direct LV compression or "cardiac pump" physiology. During the early part of the compression phase, catheter tip transducer LV and left atrial pressure measurements demonstrated gradients necessitating mitral valve closure, while cineangiography showed dye droplets moving from the large pulmonary veins retrograde to the small pulmonary veins. When the compression rate was reduced and/or when intravascular pressures were raised with volume infusion, LV inflow was observed at some point during the compressive phase. Thus, under these conditions, features of both thoracic pump and cardiac pump physiology occurred within the same compression. Our findings are not explained by the conventional conceptions of either thoracic pump or cardiac compression CPR mechanisms alone.

Animals↗

Ventricular external constraint by the lung and pericardium during positive end-expiratory pressure.

We studied intra- and extrapericardial surface pressures (Ppe and Pex) over the left ventricle with air-filled flat balloons in six dogs under different levels of positive end-expiratory pressure (PEEP) and left ventricular end-diastolic pressure. Pex reflected lung constraint and the transpericardial pressure (Ppe-Pex) reflected the elastic recoil of the pericardium (pericardial constraint). Under baseline plasma volume conditions with a PEEP of 0 cm H2O, Ppe was 2.4 +/- 0.2 (SEM) mm Hg and Pex was 0.2 +/- 0.1 mm Hg; that is, 91% of Ppe was contributed by the transpericardial pressure. With incremental increases in PEEP, Pex increased and approach Ppe with a decrease in the transpericardial pressure (p less than 0.01). With a PEEP of 20 cm H2O, Ppe was 5.3 +/- 0.1 mm Hg and Pex was 5.0 +/- 0.2 mm Hg; that is, less than 5% of Ppe was contributed by the transpericardial pressure. Under plasma volume-loaded conditions with an increase in PEEP to 20 cm H2O, Pex increased but remained lower than Ppe, with a substantial contribution of transpericardial pressure still present (19%). These results suggest that lung constraint alone can substantially constrain the left ventricle and that the influence of lung constraint, rather than pericardial constraint, may be progressively important with an elevated lung volume produced by either positive- or negative-pressure respiration.

Animals↗

Cardiorespiratory interactions in patients with an artificial heart.

A retrospective analysis of the influence of respiration was carried out in three patients with artificial hearts. During spontaneous ventilation, large swings in intrathoracic pressure can produce a pattern reminiscent of pulsus paradoxus in the systemic arterial pressure. A decrease in intrathoracic pressure decreased biventricular filling and enhanced biventricular emptying. An increase in intrathoracic pressure increased biventricular filling, but acting as an increased afterload, impeded biventricular emptying. The influence of respiration on the artificial heart can be considered the result of the artificial ventricles' functioning effectively as extrathoracic pumps, such that changes in intrathoracic pressure produce gradients for biventricular filling and ejection relative to atmospheric pressure (which serves as the reference pressure for the artificial ventricles). Respiratory-induced variation in ventricular performance is clearly present with the artificial heart, but the mechanisms producing these changes appear to be markedly different from normal conditions, in which the ventricles are functionally within the thorax and have a compliant common septum allowing ventricular interaction.

Atrial Function↗

Influence of the pericardium on ventricular loading during respiration.

The influence of the pericardium on ventricular loading during respiration was studied in 17 acutely instrumented anesthetized dogs. Changes in intrapericardial surface pressures (Ppe) on the ventricles were measured by use of air-filled flat latex balloons during acute changes in ventricular loading with the chest open or during negative intrathoracic pressure (NITP) produced by phrenic nerve stimulation with the chest closed. Ppe always demonstrated a phasic change within a cardiac cycle, with its maximum near end diastole and minimum near end systole, and a waveform similar to ventricular dimensions measured by sonomicrometer crystals. With the chest open we found that 1) inferior vena caval constriction decreased Ppe on both ventricles at end diastole (P less than 0.01), 2) aortic constriction increased Ppe on both ventricles at end systole and end diastole (P less than 0.05), and 3) pulmonary artery constriction increased Ppe on the right ventricle (RV) (P less than 0.01) while decreasing Ppe on the left ventricle (LV) at end diastole (P less than 0.05). Thus regional Ppe over a ventricle is influenced by changes in ventricular loading conditions. During NITP with lung volume either constant or increased, Ppe over the anterolateral LV decreased less than two independent extrapericardial measures of intrathoracic pressure, and this resulted in an increased transpericardial pressure at end systole (P less than 0.05) and end diastole (P less than 0.01). During NITP with increased transpericardial pressure, Ppe over the anterior LV, lateral LV, and RV inflow showed small regional differences, but all decreased less than esophageal pressure (P less than 0.01). These results sugges that the increase in transpericardial pressure during late diastole to early systole, produced by increases in ventricular volume during NITP, could effectively attenuate the increases in ventricular preload and afterload caused by respiration, analogous to a negative feedback loop.

Animals↗

Effects of abdominal pressure on venous return: abdominal vascular zone conditions.

The effects of changes in abdominal pressure (Pab) on inferior vena cava (IVC) venous return were analyzed using a model of the IVC circulation based on a concept of abdominal vascular zone conditions analogous to pulmonary vascular zone conditions. We hypothesized that an increase in Pab would increase IVC venous return when the IVC pressure at the level of the diaphragm (Pivc) exceeds the sum of Pab and the critical closing transmural pressure (Pc), i.e., zone 3 conditions, but reduce IVC venous return when Pivc is below the sum of Pab and Pc, i.e., zone 2 conditions. The validity of the model was tested in 12 canine experiments with an open-chest IVC bypass. An increase in Pab produced by phrenic stimulation increased the IVC venous return when Pivc-Pab was positive but decreased the IVC venous return when Pivc - Pab was negative. The value of Pivc - Pab that separated net increases from decreases in venous return was 1.00 +/- 0.72 (SE) mmHg (n = 6). An increase in Pivc did not influence the femoral venous pressure when Pivc was lower than the sum of Pab and a constant, 0.96 +/- 0.70 mmHg (n = 6), consistent with presence of a waterfall. These results agreed closely with the predictions of the model and its computer simulation. The abdominal venous compartment appears to function with changes in Pab either as a capacitor in zone 3 conditions or as a collapsible Starling resistor with little wall tone in zone 2 conditions.

Abdomen↗

Regional distribution of fiber types in developing baboon diaphragm muscles.

Fiber type distribution and mean fiber area were determined for seven sites in diaphragm muscles of premature (140 days gestation), full-term (180 days gestation), and adult baboons. Within a group, data did not differ significantly amongst the seven sites. The diaphragm of premature animals had a large proportion [56(+/- 2)%] of type IIc fibers, smaller proportions of type I, IIo, and IIh fibers [16(+/- 2), 21(+/- 1), and 7(+/- 2)%, respectively], and no type IIg fibers. Full-term animals had fewer type IIc [2(+/- 1)%] fibers, greater proportions of type I [46(+/- 2)%], IIh [23(+/- 1)%], and IIg [11(+/- 1)%] fibers, and a similar proportion of type IIo fibers [17(+/- 1)%]. Diaphragm from adult baboons had similar proportions of type IIh, IIg, and IIc fibers in females [39(+/- 4), 20(+/- 2), 1(+/- 1), 41(+/- 5), and 1(+/- 1)%] and males [48(+/- 2), 16 (+/- 1), 0(+/- 0), 36(+/- 2), and 3(+/- 2)%]. Fiber area for premature [143(+/- 9), 210(+/- 15), 231(+/- 15), and 156(+/- 16) microns2 for type I, IIo, IIh, and IIc fibers], newborn [317(+/- 32), 374(+/- 36), 468(+/- 42), 498(+/- 43), and 322(+/- 37) microns2 for type I, IIo, IIh, IIg, and IIc fibers], and for type I, IIo, IIg, and IIc fibers from adult female [1,759(+/- 130), 2,365(+/- 284), 5,026(+/- 742), and 1,843(+/- 111) microns2] and adult male [2,513(+/- 221), 3,987(+/- 267), 6,102(+/- 376), and 2,833(+/- 151) microns2] baboons indicated growth which correlated with body weight. Our results also show that metabolic and contractile enzymes develop normally, but growth of respiratory muscle fibers is arrested, during 10 days following premature birth.

Animals↗

Negative intrathoracic pressure decreases independently left ventricular filling and emptying.

The mechanism for the fall in left ventricular (LV) stroke volume with normal and obstructed inspiration is controversial with changes proposed in LV preload and afterload. During respiration extending over several cardiac cycles, changes in both LV filling and emptying could occur, rendering demonstration of any responsible mechanism difficult. To evaluate the independent effects of negative intrathoracic pressure (NITP) on LV filling and emptying, we have analyzed the effects of NITP confined to either diastole or systole using electrocardiogram (ECG)-triggered phrenic nerve stimulation in six anesthetized closed-chest dogs. Lung volume was either maintained by completely obstructing the airway or allowed to increase during NITP. With diastolic NITP and the airway obstructed during phrenic nerve stimulation, LV filling volume (integrated mitral flow) significantly decreased (-37 +/- 6.1% SE) associated with increases in LV and right atrial filling pressures at end diastole relative to both atmospheric and esophageal pressures. Right atrial pressure relative to either atmospheric or esophageal pressure increased significantly more than left atrial pressure. The ensuing LV stroke volume (integrated ascending aortic flow) decreased significantly (-30.8 +/- 5.9%). With NITP confined to systole and at constant LV preload, LV stroke volume also decreased (-12.9 +/- 2.5%) associated with an increase in LV systolic pressure relative to esophageal pressure. Similar significant changes were observed despite a smaller fall in esophageal pressure when lung volume was allowed to increase during either diastolic or systolic NITP. We conclude that 1) NITP confined to diastole decreases LV filling and the ensuing LV stroke volume, most likely by ventricular interdependence; 2) NITP confined to systole also decreases LV stroke volume, presumptively by imposing an increased afterload on the LV; 3) both diastolic and systolic mechanisms should contribute to a decreased LV stroke volume during normal and obstructed inspiration; and 4) if the effects of intrathoracic pressure changes were to extend over several cardiac cycles, mechanisms exist to account for either increases or decreases in LV volumes.

Airway Obstruction↗

Relationship of diaphragmatic contractility to diaphragmatic blood flow in newborn lambs.

We determined the relationship of diaphragmatic contraction rate to diaphragmatic blood flow (Qdi), metabolism, and contractility in nine open-chested mechanically ventilated newborn lambs. The diaphragm was paced for 15 min at slow (20/min) and fast (100/min) contraction rates each followed by a 30-min rest period. There was a mild reduction in transdiaphragmatic pressure (Pdi) during the slow contraction period accompanied by a shift to the right of the curve relating stimulation frequency (10-100 Hz) to Pdi. Pdi returned to control at the start of the fast contraction period, but then fell by 30% within 2 min with continued fast contraction rates. The frequency-Pdi curve was significantly shifted to the right. Qdi, O2 transport, and O2 consumption increased during slow contraction and to an even greater extent during fast contraction. Fractional O2 extraction reached an apparent maximum during slow contraction. Lactate efflux from the right phrenic vein during slow contraction remained unchanged from control. During fast contraction lactate efflux rose proportionately more than did O2 consumption. We conclude that the energy demands at fast rates of diaphragmatic contraction in newborn lambs cannot be met by aerobic metabolism alone despite increasing O2 transport to the diaphragm.

Animals↗