Literature DB >> 10400140

Multiple mechanisms of lung surfactant inhibition.

B A Holm1, Z Wang, R H Notter.   

Abstract

We studied the mechanisms by which C16:0 lysophosphatidylcholine (LPC) and albumin inhibit the surface activity of calf lung surfactant extract (CLSE) by using a pulsating bubble apparatus with a specialized hypophase exchange system, plus adsorption and Wilhelmy balance measurements. In the absence of inhibitors, CLSE (1 mg phospholipid/mL) reached minimum surface tension (gamma(min)) < 1 mN/m within 5 min of bubble pulsation at 20 cycles/min at 37 degrees C. Mixtures of CLSE:LPC had impaired surface activity depending on LPC content: gamma(min) was raised to 5 mN/m by 14 wt % LPC, to 15 mN/m by 25-30 wt% LPC, and to >20 mN/m (67 wt % LPC), even at high CLSE concentrations (3 and 6 mg phospholipid/mL). In contrast, inhibition of CLSE by albumin was more easily abolished when surfactant concentration was raised. Mixtures of albumin (3 mg/mL) and CLSE (1 mg phospholipid/mL) had gamma(min) >20 mN/m, but normal values of gamma(min) < 1 mN/m were reached at higher CLSE concentration (3 mg phospholipid/mL) even when albumin concentration was increased 8-fold to 24 mg/mL. In hypophase exchange studies, LPC, but not albumin, was able to penetrate preformed CLSE surface films and raise gamma(min) CLSE surface films with gamma(min) < 1 mN/m were isolated by an initial hypophase exchange with saline, and a second exchange with an LPC-containing hypophase raised gamma(min) to approximately 10 mN/m. CLSE surface films retained the ability to reach gamma(min) < 1 mN/m in analogous hypophase exchange studies with albumin. The ability of LPC to penetrate surface films of CLSE, although albumin could not, was also demonstrated in adsorption experiments in a Teflon dish, where diffusion was minimized by subphase stirring. Wilhelmy balance experiments also demonstrated that LPC could mix and interact with CLSE or dipalmitoyl phosphatidylcholine in solvent-spread surface films. The ability of LPC or other cell membrane lipids to penetrate interfacial films and raise gamma(min) even at high surfactant concentration may increase their inhibitory actions during acute lung injury.

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Year:  1999        PMID: 10400140     DOI: 10.1203/00006450-199907000-00015

Source DB:  PubMed          Journal:  Pediatr Res        ISSN: 0031-3998            Impact factor:   3.756


  36 in total

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Authors:  H E Warriner; J Ding; A J Waring; J A Zasadzinski
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2.  Inactivation of pulmonary surfactant due to serum-inhibited adsorption and reversal by hydrophilic polymers: experimental.

Authors:  H William Taeusch; Jorge Bernardino de la Serna; Jesus Perez-Gil; Coralie Alonso; Joseph A Zasadzinski
Journal:  Biophys J       Date:  2005-05-27       Impact factor: 4.033

3.  Computational Models of Ventilator Induced Lung Injury and Surfactant Dysfunction.

Authors:  Jason H T Bates; Bradford J Smith; Gilman B Allen
Journal:  Drug Discov Today Dis Models       Date:  2014-04-29

4.  Pulmonary inflammation disrupts surfactant function during Pneumocystis carinii pneumonia.

Authors:  T W Wright; R H Notter; Z Wang; A G Harmsen; F Gigliotti
Journal:  Infect Immun       Date:  2001-02       Impact factor: 3.441

5.  Exposure to polymers reverses inhibition of pulmonary surfactant by serum, meconium, or cholesterol in the captive bubble surfactometer.

Authors:  Elena López-Rodríguez; Olga Lucía Ospina; Mercedes Echaide; H William Taeusch; Jesús Pérez-Gil
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6.  Inflammation product effects on dilatational mechanics can trigger the Laplace instability and acute respiratory distress syndrome.

Authors:  Sourav Barman; Michael L Davidson; Lynn M Walker; Shelly L Anna; Joseph A Zasadzinski
Journal:  Soft Matter       Date:  2020-07-29       Impact factor: 3.679

7.  Inhibition of pulmonary surfactant adsorption by serum and the mechanisms of reversal by hydrophilic polymers: theory.

Authors:  Joseph A Zasadzinski; T F Alig; Coralie Alonso; Jorge Bernardino de la Serna; Jesus Perez-Gil; H William Taeusch
Journal:  Biophys J       Date:  2005-07-08       Impact factor: 4.033

8.  A non-BRICHOS surfactant protein c mutation disrupts epithelial cell function and intercellular signaling.

Authors:  Markus Woischnik; Christiane Sparr; Sunčana Kern; Tobias Thurm; Andreas Hector; Dominik Hartl; Gerhard Liebisch; Surafel Mulugeta; Michael F Beers; Gerd Schmitz; Matthias Griese
Journal:  BMC Cell Biol       Date:  2010-11-20       Impact factor: 4.241

9.  Rediscovering the Schulze-Hardy rule in competitive adsorption to an air-water interface.

Authors:  Patrick C Stenger; Stephen G Isbell; Debra St Hillaire; Joseph A Zasadzinski
Journal:  Langmuir       Date:  2009-09-01       Impact factor: 3.882

10.  Metal nanoparticle pollutants interfere with pulmonary surfactant function in vitro.

Authors:  Mandeep Singh Bakshi; Lin Zhao; Ronald Smith; Fred Possmayer; Nils O Petersen
Journal:  Biophys J       Date:  2007-09-21       Impact factor: 4.033

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