Literature DB >> 35841141

Effects of cholesterol on the structure and collapse of DPPC monolayers.

Fazle R Dayeen1, Bret A Brandner2, Michael W Martynowycz3, Kamil Kucuk1, Michael J Foody4, Wei Bu5, Stephen B Hall6, David Gidalevitz7.   

Abstract

Cholesterol induces faster collapse by compressed films of pulmonary surfactant. Because collapse prevents films from reaching the high surface pressures achieved in the alveolus, most therapeutic surfactants remove or omit cholesterol. The studies here determined the structural changes by which cholesterol causes faster collapse by films of dipalmitoyl phosphatidylcholine, used as a simple model for the functional alveolar film. Measurements of isobaric collapse, with surface pressure held constant at 52 mN/m, showed that cholesterol had little effect until the mol fraction of cholesterol, Xchol, exceeded 0.20. Structural measurements of grazing incidence X-ray diffraction at ambient laboratory temperatures and a surface pressure of 44 mN/m, just below the onset of collapse, showed that the major structural change in an ordered phase occurred at lower Xchol. A centered rectangular unit cell with tilted chains converted to an untilted hexagonal structure over the range of Xchol = 0.0-0.1. For Xchol = 0.1-0.4, the ordered structure was nearly invariant; the hexagonal unit cell persisted, and the spacing of the chains was essentially unchanged. That invariance strongly suggests that above Xchol = 0.1, cholesterol partitions into a disordered phase, which coexists with the ordered domains. The phase rule requires that for a binary film with coexisting phases, the stoichiometries of the ordered and disordered regions must remain constant. Added cholesterol must increase the area of the disordered phase at the expense of the ordered regions. X-ray scattering from dipalmitoyl phosphatidylcholine/cholesterol fit with that prediction. The data also show a progressive decrease in the size of crystalline domains. Our results suggest that cholesterol promotes adsorption not by altering the unit cell of the ordered phase but by decreasing both its total area and the size of individual crystallites.
Copyright © 2022 Biophysical Society. Published by Elsevier Inc. All rights reserved.

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Year:  2022        PMID: 35841141      PMCID: PMC9515002          DOI: 10.1016/j.bpj.2022.07.007

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   3.699


  43 in total

Review 1.  Minimally Invasive Surfactant Therapy and Noninvasive Respiratory Support.

Authors:  Angela Kribs
Journal:  Clin Perinatol       Date:  2016-10-14       Impact factor: 3.430

2.  Cholesterol-phospholipid interactions: new insights from surface x-ray scattering data.

Authors:  Andrey Ivankin; Ivan Kuzmenko; David Gidalevitz
Journal:  Phys Rev Lett       Date:  2010-03-08       Impact factor: 9.161

3.  Surface forces in lungs. I. Alveolar surface tension-lung volume relationships.

Authors:  J C Smith; D Stamenovic
Journal:  J Appl Physiol (1985)       Date:  1986-04

4.  Phase equilibria in the phosphatidylcholine-cholesterol system.

Authors:  J H Ipsen; G Karlström; O G Mouritsen; H Wennerström; M J Zuckermann
Journal:  Biochim Biophys Acta       Date:  1987-11-27

5.  The physical properties of an effective lung surfactant.

Authors:  A D Bangham; C J Morley; M C Phillips
Journal:  Biochim Biophys Acta       Date:  1979-06-21

6.  Relations among recoil pressure, surface area, and surface tension in the lung.

Authors:  T A Wilson
Journal:  J Appl Physiol Respir Environ Exerc Physiol       Date:  1981-05

7.  A comparison of the molecular species compositions of mammalian lung surfactant phospholipids.

Authors:  A D Postle; E L Heeley; D C Wilton
Journal:  Comp Biochem Physiol A Mol Integr Physiol       Date:  2001-05       Impact factor: 2.320

8.  Separation of subfractions of the hydrophobic components of calf lung surfactant.

Authors:  S B Hall; Z Wang; R H Notter
Journal:  J Lipid Res       Date:  1994-08       Impact factor: 5.922

9.  Optical factors in the rapid analysis of captive bubbles.

Authors:  Hamed Khoojinian; Jim P Goodarzi; Stephen B Hall
Journal:  Langmuir       Date:  2012-09-21       Impact factor: 3.882

10.  Effects of lung surfactant factor (LSF) treatment on gas exchange and histopathological changes in an animal model of adult respiratory distress syndrome (ARDS): comparison of recombinant LSF with bovine LSF.

Authors:  D Häfner; P G Germann; D Hauschke
Journal:  Pulm Pharmacol       Date:  1994-10
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  1 in total

1.  Interfacial structure of pulmonary surfactants revisited: Cholesterol and surface pressure effects.

Authors:  Tommy Nylander
Journal:  Biophys J       Date:  2022-08-12       Impact factor: 3.699

  1 in total

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