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1.
Am J Physiol Lung Cell Mol Physiol ; 322(2): L191-L203, 2022 02 01.
Article in English | MEDLINE | ID: mdl-34851730

ABSTRACT

By coating the alveolar air-liquid interface, lung surfactant overwhelms surface tension forces that, otherwise, would hinder the lifetime effort of breathing. Years of research have provided a picture of how highly hydrophobic and specialized proteins in surfactant promote rapid and efficient formation of phospholipid-based complex three-dimensional films at the respiratory surface, highly stable under the demanding breathing mechanics. However, recent evidence suggests that the structure and performance of surfactant typically isolated from bronchoalveolar lung lavages may be far from that of nascent, still unused, surfactant as freshly secreted by type II pneumocytes into the alveolar airspaces. In the present work, we report the isolation of lung surfactant from human amniotic fluid (amniotic fluid surfactant, AFS) and a detailed description of its composition, structure, and surface activity in comparison to a natural surfactant (NS) purified from porcine bronchoalveolar lavages. We observe that the lipid/protein complexes in AFS exhibit a substantially higher lipid packing and dehydration than in NS. AFS shows melting transitions at higher temperatures than NS and a conspicuous presence of nonlamellar phases. The surface activity of AFS is not only comparable with that of NS under physiologically meaningful conditions but displays significantly higher resistance to inhibition by serum or meconium, agents that inactivate surfactant in the context of severe respiratory pathologies. We propose that AFS may be the optimal model to study the molecular mechanisms sustaining pulmonary surfactant performance in health and disease, and the reference material to develop improved therapeutic surfactant preparations to treat yet unresolved respiratory pathologies.


Subject(s)
Amniotic Fluid/chemistry , Pulmonary Surfactants/chemistry , 2-Naphthylamine/analogs & derivatives , 2-Naphthylamine/chemistry , Animals , Calorimetry, Differential Scanning , Humans , Hydrophobic and Hydrophilic Interactions , Laurates/chemistry , Lipids/chemistry , Membranes , Swine
2.
Biochim Biophys Acta Biomembr ; 1864(1): 183808, 2022 02 01.
Article in English | MEDLINE | ID: mdl-34687755

ABSTRACT

Lung surfactant (LS) stabilizes the respiratory surface by forming a film at the alveolar air-liquid interface that reduces surface tension and minimizes the work of breathing. Typically, this surface-active agent has been isolated from animal lungs both for research and biomedical applications. However, these materials are constituted by complex membranous architectures including surface-active and inactive lipid/protein assemblies. In this work, we describe the composition, structure and surface activity of discrete membranous entities that are part of a LS preparation isolated from bronchoalveolar lavages of porcine lungs. Seven different fractions could be resolved from whole surfactant subjected to sucrose density gradient centrifugation. Detailed compositional characterization revealed differences in protein and cholesterol content but no distinct saturated:unsaturated phosphatidylcholine ratios. Moreover, no significant differences were detected regarding apparent hydration at the headgroup region of membranes, as reported by the probe Laurdan, and lipid chain mobility analysed by electron spin resonance (ESR) in spite of the variety of membranous assemblies observed by transmission electron microscopy. In addition, six of the seven separated LS subfractions formed similar, essentially disordered-like, interfacial films and performed efficient surface activity, under physiologically relevant conditions. Altogether, our work show that a LS isolated from porcine lungs is comprised by a heterogenous population of membranous assemblies lacking freshly secreted unused LS complexes sustaining highly dehydrated and ordered membranous assemblies as previously reported. We propose that surfactant subfractions may illustrate intermediates in sequential structural steps within the structural transformations occurring along the respiratory compression-expansion cycles.


Subject(s)
Lipids/chemistry , Lung/chemistry , Pulmonary Surfactants/chemistry , Surface-Active Agents/chemistry , Animals , Bronchi/chemistry , Bronchi/metabolism , Lung/metabolism , Pulmonary Alveoli/chemistry , Pulmonary Surfactants/metabolism , Surface Tension , Surface-Active Agents/metabolism , Swine
3.
Arch Biochem Biophys ; 703: 108850, 2021 05 30.
Article in English | MEDLINE | ID: mdl-33753033

ABSTRACT

Lung surfactant (LS) is an outstanding example of how a highly regulated and dynamic membrane-based system has evolved to sustain a wealth of structural reorganizations in order to accomplish its biophysical function, as it coats and stabilizes the respiratory air-liquid interface in the mammalian lung. The present review dissects the complexity of the structure-function relationships in LS through an updated description of the lipid-protein interactions and the membrane structures that sustain its synthesis, secretion, interfacial performance and recycling. We also revise the current models and the biophysical techniques employed to study the membranous architecture of LS. It is important to consider that the structure and functional properties of LS are often studied in bulk or under static conditions, in spite that surfactant function is strongly connected with a highly dynamic behaviour, sustained by very polymorphic structures and lipid-lipid, lipid-protein and protein-protein interactions that reorganize in precise spatio-temporal coordinates. We have tried to underline the evidences available of the existence of such structural dynamism in LS. A last important aspect is that the synthesis and assembly of LS is a strongly regulated intracellular process to ensure the establishment of the proper interactions driving LS surface activity, while protecting the integrity of other cell membranes. The use of simplified lipid models or partial natural materials purified from animal tissues could be too simplistic to understand the true molecular mechanisms defining surfactant function in vivo. In this line, we will bring into the attention of the reader the methodological challenges and the questions still open to understand the structure-function relationships of LS at its full biological relevance.


Subject(s)
Cell Membrane/metabolism , Membrane Lipids/metabolism , Membrane Proteins/metabolism , Pulmonary Surfactants/chemistry , Pulmonary Surfactants/metabolism , Humans
4.
Biochim Biophys Acta Biomembr ; 1863(6): 183572, 2021 06 01.
Article in English | MEDLINE | ID: mdl-33548215

ABSTRACT

Surfactant protein C (SP-C) is a protein present in the pulmonary surfactant system that is involved in the biophysical properties of this lipoprotein complex, but it also has a role in lung defense and homeostasis. In this article, we propose that the link between both functions could rely on the ability of SP-C to induce fragmentation of phospholipid membranes and generate small vesicles that serve as support to present different ligands to cells in the lungs. Our results using bimolecular fluorescence complementation and tunable resistive pulse sensing setups suggest that SP-C oligomerization could be the triggering event that causes membrane budding and nanovesiculation. As shown by fluorescence microscopy and flow cytometry, these vesicles are differentially assimilated by alveolar macrophages and alveolar type II cells, indicating distinct roles of these alveoli-resident cells in the processing of the SP-C- induced vesicles and their cargo. These results depict a more accurate picture of the mechanisms of this protein, which could be relevant for the comprehension of pulmonary pathologies and the development of new therapeutic approaches.


Subject(s)
Pulmonary Surfactant-Associated Protein C/metabolism , Unilamellar Liposomes/metabolism , Amino Acid Sequence , Cell Line , Dimerization , Endocytosis , Flow Cytometry , Humans , Microscopy, Fluorescence , Peptidomimetics/chemistry , Peptidomimetics/metabolism , Protein Domains , Protein Multimerization , Pulmonary Surfactant-Associated Protein C/chemistry , Pulmonary Surfactant-Associated Protein C/genetics , Recombinant Proteins/biosynthesis , Recombinant Proteins/chemistry , Recombinant Proteins/isolation & purification , Unilamellar Liposomes/chemistry
5.
Sci Rep ; 7(1): 6406, 2017 07 25.
Article in English | MEDLINE | ID: mdl-28743969

ABSTRACT

Pulmonary surfactant (PS) reduces surface tension at the air-liquid interface in the alveolar epithelium of the lung, which is required for breathing and for the pulmonary maturity of the developing foetus. However, the origin of PS had never been thoroughly investigated, although it was assumed to be secreted from the foetal developing lung. Human amniotic membrane (hAM), particularly its epithelial cell layer, composes the amniotic sac enclosing the amniotic fluid. In this study, we therefore aimed to investigate a potential contribution of the cellular components of the hAM to pulmonary surfactant found in amniotic fluid. We identified that cells within the native membrane contain lamellar bodies and express all four surfactant proteins as well as ABCA3. Lipidomic profiling by nanoESI - MS/MS revealed the presence of the essential lipid species as found in PS. Also, the biophysical activity of conditioned cell culture supernatant obtained from hAM was tested with captive bubble surfactometry. hAM supernatant showed the ability to reduce surface tension, similar to human PS obtained from bronchoalveolar lavage. This means that hAM produces the essential PS-associated components and can therefore contribute as second potential source of PS in amniotic fluid aside from the foetal lung.


Subject(s)
Amnion/metabolism , Amniotic Fluid/chemistry , Pulmonary Surfactants/metabolism , 1,2-Dipalmitoylphosphatidylcholine/analysis , 1,2-Dipalmitoylphosphatidylcholine/metabolism , ATP-Binding Cassette Transporters/chemistry , ATP-Binding Cassette Transporters/metabolism , Amnion/chemistry , Amnion/cytology , Amniotic Fluid/metabolism , Epithelial Cells/metabolism , Epithelial Cells/ultrastructure , Female , Humans , Lipid Metabolism , Mesenchymal Stem Cells/metabolism , Pregnancy , Pulmonary Surfactant-Associated Protein D/metabolism
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