| Literature DB >> 24883253 |
Frans J Walther1, José M Hernández-Juviel2, Larry M Gordon2, Alan J Waring3.
Abstract
Background. Chemical spills are on the rise and inhalation of toxic chemicals may induce chemical acute <span class="Disease">lung injury (ALI)/acute respiratory distress syndrome (ARDS). Although the pathophysiology of ALI/ARDS is well understood, the absence of specific antidotes has limited the effectiveness of therapeutic interventions. Objectives. Surfactant inactivation and formation of free radicals are important pathways in (chemical) ALI. We tested the potential of <span class="Chemical">lipid mixtures with advanced surfactant protein B and C (SP-B and C) mimics to improve oxygenation and lung compliance in rabbits with lavage- and chemical-induced ALI/ARDS. Methods. Ventilated young adult rabbits underwent repeated saline lung lavages or underwent intratracheal instillation of hydrochloric acid to induce ALI/ARDS. After establishment of respiratory failure rabbits were treated with a single intratracheal dose of 100 mg/kg of synthetic surfactant composed of 3% Super Mini-B (S-MB), a SP-B mimic, and/or SP-C33 UCLA, a SP-C mimic, in a lipid mixture (DPPC:POPC:POPG 5:3:2 by weight), the clinical surfactant Infasurf(®), a bovine lung lavage extract with SP-B and C, or synthetic lipids alone. End-points consisted of arterial oxygenation, dynamic lung compliance, and protein and lipid content in bronchoalveolar lavage fluid. Potential mechanism of surfactant action for S-MB and SP-C33 UCLA were investigated with captive bubble surfactometry (CBS) assays. Results. All three surfactant peptide/lipid mixtures and Infasurf equally lowered the minimum surface tension on CBS, and also improved oxygenation and lung compliance. In both animal models, the two-peptide synthetic surfactant with S-MB and SP-C33 UCLA led to better arterial oxygenation and lung compliance than single peptide synthetic surfactants and Infasurf. Synthetic surfactants and Infasurf improved lung function further in lavage- than in chemical-induced respiratory failure, with the difference probably due to greater capillary-alveolar protein leakage and surfactant dysfunction after HCl instillation than following lung lavage. At the end of the duration of the experiments, synthetic surfactants provided more clinical stability in ALI/ARDS than Infasurf, and the protein content of bronchoalveolar lavage fluid was lowest for the two-peptide synthetic surfactant with S-MB and SP-C33 UCLA. Conclusion. Advanced synthetic surfactant with robust SP-B and SP-C mimics is better equipped to tackle surfactant inactivation in chemical ALI than synthetic surfactant with only a single surfactant peptide or animal-derived surfactant.Entities:
Keywords: Acute lung injury; Captive bubble surfactometry; Hydrochloric acid; Lung compliance; Lung lavage; Oxygenation; Surfactant protein B; Surfactant protein C; Synthetic surfactant; Ventilated rabbits
Year: 2014 PMID: 24883253 PMCID: PMC4034647 DOI: 10.7717/peerj.393
Source DB: PubMed Journal: PeerJ ISSN: 2167-8359 Impact factor: 2.984
Protein and phospholipid values in bronchoalveolar lavage fluid (BALF).
Protein and phospholipid values (µg/ml) in BALF obtained during the first lavage to induce surfactant deficiency and the first postmortem lung lavage in lavaged and HCl-treated (postmortem BALF only) rabbits. Data are shown as mean ± SEM.
| Surfactant | Protein (µg/ml) ± SEM | Phospholipids (µg/ml) ± SEM | ||
|---|---|---|---|---|
| 1st BALF | Postmortem BALF | 1st BALF | Postmortem BALF | |
|
| ||||
| S-MB + SP-C33 UCLA | 268 ± 12 | 2,124 ± 130 | 10.1 ± 2.7 | 100.5 ± 17.8 |
| S-MB | 302 ± 21 | 2,358 ± 65 | 10.8 ± 2.8 | 96.3 ± 33.0 |
| SP-C33 UCLA | 297 ± 27 | 2,503 ± 146 | 9.4 ± 1.9 | 101.2 ± 15.4 |
| Infasurf | 278 ± 22 | 2,648 ± 137 | 11.2 ± 2.8 | 94.9 ± 12.1 |
| Lipids alone | 285 ± 26 | 4,062 ± 230 | 11.4 ± 2.4 | 105.9 ± 5.5 |
|
| ||||
| S-MB + SP-C33 UCLA | 2,531 ± 176 | 83.9 ± 6.5 | ||
| S-MB | 3,337 ± 228 | 87.2 ± 5.4 | ||
| SP-C33 UCLA | 3,203 ± 235 | 98.3 ± 2.0 | ||
| Infasurf | 3,874 ± 172 | 103.9 ± 3.5 | ||
| Lipids alone | 4,623 ± 224 | 105.9 ± 2.7 | ||
Notes.
p < 0.01 vs. all other surfactant preparations.
p < 0.05 vs. S-MB + SP-C33 UCLA surfactant.
p < 0.05 vs. S-MB + SP-C33 UCLA and S-MB surfactant.
Figure 1Surface activity of synthetic lung surfactants, clinical surfactant, and synthetic lipids only on the captive bubble surfactometer.
Minimum and maximum surface tension values are plotted for synthetic lipids with 3% (weight ratio) Super Mini-B (S-MB), 3% SP-C33 UCLA or 1.5% S-MB + 1.5% SP-C33 UCLA, clinical surfactant (Infasurf), and synthetic lipids alone. Synthetic lipids are 5:3:2 (weight ratio) DPPC:POPC:POPG. Surface activity of S-MB surfactant, Infasurf and synthetic lipids alone have been reported previously (Walther et al., 2005; Walther et al., 2010). Data are shown as mean ± SEM of n = 4.
Figure 2Arterial oxygenation and dynamic compliance in surfactant-treated, ventilated rabbits with ARDS induced by repeated in vivo lavage.
Arterial partial pressure of oxygen (PaO2 in torr) and dynamic compliance (ml/kg/cm H2O) are shown as a function of time for the 5 groups of 7–8 ventilated rabbits treated with experimental surfactant at time 0, when PaO2 had dropped from >500 torr to <100 torr after standardized lung lavages. Rabbits were treated with synthetic lung surfactants (synthetic lipids + 3% Super Mini-B [S-MB], 3% SP-C33 UCLA or 1.5% S-MB + 1.5% SP-C33 UCLA) and clinical surfactant (Infasurf) as positive and synthetic lipids alone as negative control. Synthetic lipids are 5:3:2 (weight ratio) DPPC:POPC:POPG. From 90 min after surfactant treatment onwards, improvements in oxygenation and compliance for S-MB + SP-C33 UCLA surfactant differed significantly (p < 0.01) from the other surfactant preparations. Data are shown as mean ± SEM of groups of 7–8 rabbits.
Figure 3Arterial oxygenation and dynamic compliance in surfactant-treated, ventilated rabbits with ALI induced by intratracheal instillation of 0.1 N hydrogen chloride (HCl).
Arterial partial pressure of oxygen (PaO2 in torr) and dynamic compliance (mL/kg/cm H2O) are shown as a function of time for the 5 groups of 8 ventilated rabbits treated with experimental surfactant at time 0, when PaO2 had dropped below 40% of the starting value after HCl instillation. Rabbits were treated with synthetic lung surfactants (synthetic lipids + 3% Super Mini-B [S-MB], 3% SP-C33 UCLA, or 1.5% S-MB + 1.5% SP-C33 UCLA) and clinical surfactant (Infasurf) as positive and synthetic lipids alone as negative control. Synthetic lipids are 5:3:2 (weight ratio) DPPC:POPC:POPG. From 90 min after surfactant treatment onwards, improvements in oxygenation and compliance for S-MB + SP-C33 UCLA surfactant differed significantly (p < 0.01) from the other surfactant preparations. Data are shown as mean ± SEM of groups of 8 rabbits.