The Changing State of Surfactant Lipids: New Insights from Ancient Animals

SYNOPSIS. Pulmonary surfactant is a mixture of phospholipids (including disaturated phospholipids), cholesterol and proteins lining the air-liquid interface within the lung. Surfactant acts to reduce surface tension, thereby increasing lungcompliance and also preventing edema. The saccular lungs, or...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:American zoologist 1998-04, Vol.38 (2), p.305-320
Hauptverfasser: DANIELS, CHRISTOPHER B., ORGEIG, SANDRA, WOOD, PHILIP G., SULLIVAN, LUCY C., LOPATKO, OLGA V., SMITS, ALLAN W.
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:SYNOPSIS. Pulmonary surfactant is a mixture of phospholipids (including disaturated phospholipids), cholesterol and proteins lining the air-liquid interface within the lung. Surfactant acts to reduce surface tension, thereby increasing lungcompliance and also preventing edema. The saccular lungs, or other gas-holding structures, of nonmammals have 7–70% more surfactant/cm2 of surface than lungs of mammals. Nonmammalian surfactant acts as an antiglue that decreases the inflation pressures of collapsed lungs by reducing the adherence of apposing epithelial surfaces. The autonomic nervous system appears to be the primary system controlling release of surfactant in nonmammals. The lipid composition is highly conserved within the vertebrates, except that surfactant of teleost fish is dominated by cholesterol whereas tetrapod surfactant consists primarily of disaturated phospholipids (DSP). The dipnoan Neoceratodus forsteri demonstrates a “fish-type” surfactant profile while the other derived dipnoans demonstrate a surfactant profile similar to that of tetrapods. Homology of the surfactant protein SP-A within the vertebrates points to a single evolutionaryorigin for the system and indicates that fish surfactant is a “protosurfactant”. Amongst the tetrapods, the relative proportions of DSP and cholesterol vary in response to lung structure, habitat, and body temperature (Tb) but not in relation to phytogeny. The cholesterol content of surfactant is elevated in species with simple saccular lungs, in aquatic species, and in species with low Tb. The DSP content is highest in complex lungs, particularly ofaquatic species or species with high Tb. The cholesterol content of surfactant also increases in response to acute decreases in Tb in lizards and torpid marsupials, presumably to maintain fluidity of the lipid mixture.
ISSN:1540-7063
0003-1569
1557-7023
DOI:10.1093/icb/38.2.305