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Acute respiratory distress syndrome causes a heterogeneous lung injury, and without protective mechanical ventilation a secondary ventilator-induced lung injury can occur. To ventilate noncompliant lung regions, high inflation pressures are required to 'pop open' the injured alveoli. The temporal impact, however, of these elevated pressures on normal alveolar mechanics (that is, the dynamic change in alveolar size and shape during ventilation) is unknown. In the present study we found that ventilating the normal lung with high peak pressure (45 cmH20) and low positive end-expiratory pressure (PEEP of 3 cmH2O) did not initially result in altered alveolar mechanics, but alveolar instability developed over time.
Anesthetized rats underwent tracheostomy, were placed on pressure control ventilation, and underwent sternotomy. Rats were then assigned to one of three ventilation strategies: control group (
Alveoli were stable in the control group for the entire experiment (low %
A large change in lung volume with each breath will, in time, lead to unstable alveoli and pulmonary damage. Reducing the change in lung volume by increasing the PEEP, even with high inflation pressure, prevents alveolar instability and reduces injury. We speculate that ventilation with large changes in lung volume over time results in surfactant deactivation, which leads to alveolar instability.
The treatment of acute lung injury and the acute respiratory distress syndrome remains largely supportive, in the form of mechanical ventilation. However, mechanical ventilation has been implicated in the development of ventilator-induced lung injury (VILI) and is felt to significantly contribute to the high-mortality-associated acute respiratory distress syndrome [
To simulate the ventilator-induced injury that occurs in normal regions of the lung, we employed a commonly used model of injurious mechanical ventilation (IMV) (high tidal volume and low positive end-expiratory pressure (PEEP)). Although alveolar recruitment/derecruitment is most commonly associated with acute lung injury [
In the present study, we utilized
Adult, male Sprague–Dawley rats weighing between 298 g and 548 g were anesthetized with intraperitoneal ketamine (90 mg/kg) and xylazine (10 mg/kg) at the onset of the procedure and as needed to maintain surgical anesthesia. A tracheostomy was established with a 2.5 mm pediatric endotracheal tube. Paralysis was then achieved with intravenous pancuronium (0.8 mg/kg) and the rats were placed on pressure control ventilation with 50% oxygen delivered via a Galileo ventilator (Hamilton Medical, Reno, NV, USA). Baseline ventilator settings included a control pressure (
A carotid arterial catheter was placed for blood gas analysis (model ABL5; Radiometer Inc., Copenhagen, Denmark) and inline measurement of systemic arterial pressure (TruWave™; Baxter Healthcare Corp., Irvine, CA, USA). The internal jugular vein was cannulated for fluid and drug infusion. Fluid resuscitation was performed with a 1 cm3 bolus of lactated Ringer's solution when the mean arterial pressure fell below 60 mmHg. Rats were then placed on zero PEEP and a midline sternotomy was performed with removal of the right third to sixth ribs. The lung volume history was standardized by generating a single inflation from zero PEEP to a peak pressure of 25 cmH2O at a constant rate of inflation (3 cmH2O/s; Galileo Ventilator™ and PV Tool™; Hamilton Medical, Inc.).
Following surgical instrumentation, the rats were placed on the ventilator and assigned to one of three ventilatory strategies: control group (
Concomitant with the initiation of the experimental ventilatory strategies, the respiratory rate was set to 20 breaths/min for all groups. Time 0 was designated as the time immediately following initiation of the experimental ventilatory strategy. Hemodynamic, lung function, and
A microscopic coverslip mounted on a ring was lowered onto the pleural surface and the lung was held in place by gentle suction (≤5 cmH2O) at end inspiration for placement of an
We analyzed the alveolar mechanics by replaying the video frame-by-frame and capturing still images of individual alveoli at peak inspiration (
Randomization of alveoli for measurement of alveolar stability. The percentage change in alveolar area between peak inspiration and end expiration.
Measurements of alveolar area were made by manually tracing the outer wall of individual alveoli at both
Image analysis measurement of alveolar stability.
Arterial blood gases, systemic arterial pressures, and pulmonary parameters (exhaled tidal volume and peak airway pressure) were recorded at baseline and then at 15-minute intervals for two hours. Pulmonary parameters were calculated inline by the Galileo ventilator (Hamilton Medical): the peak airway pressure was, by definition, the highest airway pressure measured during the breath cycle.
At necropsy, the right lung (which was filmed during the protocol) was excised and its bronchus cannulated. The lung was inflated with 10% formalin by gravity to a pressure of 25 cmH2O. After 24 hours, the tissue was blocked in paraffin and serial sections were made for staining with hematoxylin and eosin. The slides were reviewed at high magnification (400×). Additionally, a tissue sample from the left lung was sharply dissected free of nonparenchymal tissue. The sample was weighed before and every 24 hours after incubation at 65°C. This was repeated until there was no weight change over a 24-hour period, at which time the samples were deemed to be dry. Lung water was expressed as a wet to dry weight ratio.
All values are reported as the mean ± standard error of mean. Significant differences between groups were determined by analysis of variance and significant differences within groups by a repeated-measures analysis of variance. Whenever the
Experiments described in this study were performed in accordance with the National Institutes of Health guidelines for the use of experimental animals in research. The protocol was approved by the Committee for the Humane Use of Animals at our institution.
Hemodynamic and pulmonary parameters are presented in Table
Hemodynamic and pulmonary parameters
| Baseline | 15 minutes | 30 minutes | 45 minutes | 60 minutes | 75 minutes | 90 minutes | |
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| Mean arterial pressure (mmHg) | 102 ± 17 | 111 ± 10 | 123 ± 7 | 138 ± 0 | 143 ± 8 | 124 ± 10 | 105 ± 20 |
| pH | 7.32 ± 0.05 | 7.32 ± 0.10 | 7.30 ± 0.10 | 7.26 ± 0.01 | 7.26 ± 0.02 | 7.26 ± 0.05 | 7.26 ± 0.02 |
| PCO2 (mmHg) | 28 ± 9 | 40 ± 1 | 36 ± 0 | 37 ± 4 | 34 ± 5 | 29 ± 2 | 23 ± 5 |
| PO2 (mmHg) | 241 ± 81 | 316 ± 18 | 325 ± 36 | 298 ± 16 | 331 ± 37 | 334 ± 10 | 340 ± 12 |
| Tidal volume (ml/kg) | 15.0 ± 5.9 | 7.8 ± 1.3 | 7.8 ± 1.3 | 7.8 ± 1.3 | 6.9 ± 1.6 | 7.9 ± 1.4 | 9.9 ± 1.8 |
| Peak pressure (cmH2O) | 16 ± 0 | 15 ± 1 | 16 ± 0 | 16 ± 0 | 16 ± 0 | 16 ± 0 | 16 ± 0 |
| Intravenous fluid (ml) | 9.3 ± 0.7 | ||||||
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| Mean arterial pressure (mmHg) | 92 ± 13 | 79 ± 10 | 89 ± 10 | 86 ± 9* | 71 ± 11* | 64 ± 11* | 55 ± 10# |
| pH | 7.25 ± 0.06 | 7.39 ± 0.05# | 7.37 ± 0.04# | 7.33 ± 0.03 | 7.31 ± 0.04 | 7.24 ± 0.04 | 7.20 ± 0.03 |
| PCO2 (mmHg) | 30 ± 6 | 23 ± 5*† | 22 ± 4 | 21 ± 4 | 17 ± 3* | 16 ± 3 | 15 ± 4 |
| PO2 (mmHg) | 187 ± 32 | 241 ± 37 | 260 ± 42 | 240 ± 54 | 244 ± 59 | 251 ± 54 | 232 ± 45 |
| Tidal volume (ml/kg) | 12.2 ± 5.9 | 31.4 ± 5.5*#† | 30.3 ± 3.9*#† | 27.7 ± 2.6*#† | 38.4 ± 10.8*#† | 40.0 ± 13.2#† | 39.0 ± 9.2*#† |
| Peak pressure (cmH2O) | 17 ± 0* | 39 ± 4* | 45 ± 1* | 45 ± 1* | 45 ± 1* | 45 ± 1* | 46 ± 2* |
| Intravenous fluid (ml) | 12.6 ± 2.9 | ||||||
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| Mean arterial pressure (mmHg) | 105 ± 23 | 94 ± 13 | 100 ± 16 | 85 ± 14* | 84 ± 20* | 83 ± 16 | 66 ± 14 |
| pH | 7.40 ± 0.05 | 7.27 ± 0.04 | 7.32 ± 0.08 | 7.28 ± 0.03 | 7.27 ± 0.04 | 7.23 ± 0.06# | 7.22 ± 0.09# |
| PCO2 (mmHg) | 32 ± 3 | 44 ± 3 | 33 ± 7 | 26 ± 4 | 25 ± 3 | 19 ± 1 | 15 ± 1# |
| PO2 (mmHg) | 263 ± 32 | 262 ± 40 | 315 ± 14 | 307 ± 27 | 317 ± 20 | 315 ± 11 | 317 ± 17 |
| Tidal volume (ml/kg) | 12.9 ± 1.4 | 8.6 ± 2.4# | 9.6 ± 2.5# | 9.6 ± 2.6# | 9.6 ± 2.6# | 9.2 ± 2.4# | 9.2 ± 2.4# |
| Peak pressure (cmH2O) | 17 ± 0* | 50 ± 3* | 50 ± 6* | 50 ± 3* | 50 ± 3* | 50 ± 3* | 50 ± 6* |
| Intravenous fluid (ml) | 9.0 ± 1.9 |
Data presented as the mean ± standard error. PCO2 (partial pressure of carbon dioxide); PO2 (partial pressure of oxygen). *
Alveoli were stable (minimal change in size during tidal ventilation, low %
Alveolar stability. Expressed as the percentage change in alveolar area between peak inspiration and end expiration (%
Arterial blood gas values are also presented in Table
Rat lung stained with hematoxylin and eosin.
Lungs in the HP/LP group at necropsy appeared cherry red, with areas of hemorrhagic consolidation evident at the pleural surface. Lungs in the control and HP/HP groups appeared pink, without evidence of hemorrhage on the pleural surface.
The histologic assessment was analyzed qualitatively, and the pictures displayed (Figure
There was a numerically higher, but not statistically different, increase in lung edema, determined by the lung wet/dry weight ratio, in the HP/LP group (wet to dry weight ratio: control group = 5.39 ± 0.72, HP/LP group = 6.35 ± 0.71, HP/HP group = 5.62 ± 0.21,
To our knowledge this is the first study to directly observe and quantify subpleural alveolar mechanics in healthy lungs exposed to IMV over time. We found that alveoli were initially stable but became unstable with time. Increasing PEEP prevented the development of gross pathologic changes and of alveolar recruitment/derecruitment in spite of high peak airway pressure and volume. We postulate that the large volume change with IMV resulted in surfactant deactivation [
Previous work has demonstrated that normal alveoli do not change size appreciably during positive pressure ventilation with either physiologic [
How could a large change in lung volume occur without a change in either the size or number of alveoli? What is the critical factor or factors that convert an alveolus with normal stable alveolar mechanics into an unstable alveolus with abnormal mechanics? Why was no deterioration in gas exchange associated with unstable alveoli and lung injury?
The mechanism by which the normal lung changes volume at the alveolar level is poorly understood. The following discussion highlights some of the possible mechanisms of lung volume change that would explain our consistent finding that normal alveoli do not change size appreciably during tidal ventilation.
There are substantial data to support the hypothesis that lung volume change is not simply due to a balloon-like isotropic change in alveolar volume. Macklin suggested that the alveolar size changes little during lung volume change and that the increase in lung volume is accommodated by changes in volume of the alveolar ducts [
If any or all of these mechanisms are responsible for the change in lung volume, this could explain our finding that there is little change in alveolar size even with a large change in lung volume. If the lung changes volume by changes in the size of the alveolar duct, this would not be visible due to the limited depth of field of our
What are the critical factors that convert an alveolus with normal stable alveolar mechanics into an unstable alveolus with abnormal mechanics? We postulate that the large volume change deactivates pulmonary surfactant [
The data demonstrating that high tidal volume and low PEEP ventilation inhibits pulmonary surfactant [
In the present study, oxygenation was not significantly different at 90 minutes between any of the groups, even though only the HP/LP group(high pressure/low PEEP) had unstable alveoli. How can a lung with alveoli that collapse at end expiration oxygenate as well as a lung with patent alveoli throughout the ventilatory cycle? We hypothesize that surfactant-deficient, unstable alveoli are forced open during lung inflation due to the exceeding large tidal volume and inflation pressure with IMV. While inflated, these alveoli would exchange gas and load oxygen into the arterial blood.
Baumgardner and colleagues utilized a fluorescence-quenching PO2 probe placed inside the distal aorta [
We hypothesize that high inflation pressure would further improve oxygenation in noncompliant alveoli by forcing more collapsed alveoli open. The plateau pressure in Syring and colleague's study was 28 cmH2O, as compared with the peak inspiratory pressure of 45 cmH2O in the present HP/LP group. We speculate that even though alveoli in our HP/LP group were very 'stiff', they were recruited during inspiration due to the high inflation pressure – and the rapid respiratory rate kept them inflated for a sufficient length of time to adequately oxygenate the blood. Although forcing surfactant-deficient unstable alveoli open with each breath will improve oxygenation in the short run, it will cause a tremendous amount of mechanical damage to the pulmonary parenchyma (VILI) and will significantly exacerbate morbidity and mortality [
Numerous factors have been implicated in the development of VILI. For example, it has been shown that alterations in the respiratory rate [
Although there are methodologic problems with our
Our microscope's limited depth of field (70 μm) restricts our analysis of alveolar mechanics to only two dimensions. Regardless of this limitation, we clearly demonstrate that alveolar mechanics are dramatically altered in two dimensions following exposure to IMV.
To maintain the same microscopic field during tidal ventilation, gentle suction (≤5 cmH2O) must be applied to hold the lung tissue under the coverslip. This amount of suction is within the range of normal intrapleural and transpulmonary pressures. In a previous study we compared the alveolar size at
The measurement was performed in a nonblinded fashion. Unfortunately, this may have introduced some bias. If minimal bias were introduced, however, we feel very confident that this would not change our results significantly since there was such a large difference in %
• A large change in lung volume with each breath will, in time, lead to unstable alveoli and pulmonary damage.
• Reducing the change in lung volume by increasing the PEEP, even with high inflation pressure, prevents alveolar instability and reduces lung injury.
• We speculate that ventilation with large changes in lung volume over time results in surfactant deactivation, which leads to alveolar instability.
The authors declare that they have no competing interests.
LAP conducted the experiments, analyzed and graphed the data, and wrote the first draft of the paper. JMH assisted LAP in conducting the experiments and editing the manuscript. LAG contributed to the experimental design, data analysis and interpretation, and performed the histologic analysis. DC contributed to the experimental design of the study, data analysis, and interpretation. SA assisted with manuscript drafting, data analysis and extensive editing. GFN contributed to the design and development of the protocol, data analysis and interpretation, and writing of the manuscript.
A movie file illustrating stable subpleural alveoli in the normal rat lung during dynamic tidal ventilation. Each sphere-shaped object is an inflated individual alveolus and there is minimal atelectasis (that is, the entire field is covered by inflated alveoli). Notice there is minimal alveolar movement (that is, alveoli are stable) during tidal ventilation, at least in the two dimensions that can be seen with our
Click here for file
A movie file demonstrating unstable subpleural alveoli in the injured rat lung during dynamic tidal ventilation. The red area without alveoli (that is, individual circles) shows diffuse atelectasis prior to inspiration. The individual alveoli (spheres) 'pop' open with inspiration and then quickly collapse with expiration. Notice that alveoli are very unstable and there is complete collapse of most alveoli during deflation and than reinflation during lung inflation – classic alveolar recruitment/derecruitment.
Click here for file
The authors would like to thank Ms Kathy Snyder for her expert technical assistance. This study was funded in part by a grant from Hamilton Medical, Inc.