Title of article :
The model of the action mechanism of SP-C in the lung surfactant monolayers
Author/Authors :
Li، نويسنده , , Dan and Zeng، نويسنده , , Zuoxiang and Xue، نويسنده , , Weilan and Yao، نويسنده , , Yali، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2007
Abstract :
The action mechanism of surfactant protein C (SP-C) in the lung surfactant monolayers is studied. On the basis of the SP-C molecular structure, a detailed interaction model is developed to describe the interaction of phospholipids/SP-C in the lung surfactant monolayers. It is supposed that: (1) in an alveolus monolayer, SP-C molecules are surrounded by phosphatidylglycerol (PG). When the monolayer is compressed, SP-C molecules can promote PG molecules to be squeezed out; (2) during compressing of the monolayer, unsaturated-PG molecules form a collapse pit firstly when liquid-expanded state (LE) components achieve the collapse pressure. Then, SP-Cʹs α-helix is attracted by the collapse pit and both α-helix and PG molecules are squeezed out speedily. Finally, the squeezed-out matters can form a lipid–protein aggregation in the subphase. The lipid–protein aggregation, in the centre of which, there is the hydrophobic α-helix section surrounded by PG molecules; (3) during the monolayer expanding, because of the increasing of the monolayerʹs surface tension, the structure of the lipid–protein aggregation is disturbed and reinserts into the surface of the monolayer rapidly. On the basis of analyzing the energies change of the squeeze-out process, a mathematical model is obtained to calculate the squeezed-out number of DPPG molecules when a SP-C molecule squeezes out in a monolayer. According to the model, it is concluded that SP-C has the capability to promote the squeeze-out and the reinsertion of most of PG component in an alveolus monolayer, the prediction data agree well with the experimental data.
Keywords :
Pulmonary surfactant , Surfactant protein , lipid–protein interaction , Squeeze out , Monolayer
Journal title :
Colloids and Surfaces B Biointerfaces
Journal title :
Colloids and Surfaces B Biointerfaces