Holopainen J M, Lehtonen J Y, Kinnunen P K
Biomembrane Research Group, Department of Medical Chemistry, Institute of Biomedicine, University of Helsinki, FIN-00014 Helsinki, Finland.
Biophys J. 1999 Apr;76(4):2111-20. doi: 10.1016/S0006-3495(99)77367-4.
Molecular-level mechanisms of fusion and hemifusion of large unilamellar dioleoyl phosphatidic acid/phosphocholine (DOPA/DOPC, 1:1 molar ratio) vesicles induced by millimolar Ca2+ and Mg2+, respectively, were investigated using fluorescence spectroscopy. In keeping with reduction of membrane free volume Vf, both divalent cations increased the emission polarization for 1,6-diphenyl-1,3, 5-hexatriene (DPH). An important finding was a decrease in excimer/monomer emission intensity ratio (Ie/Im) for the intramolecular excimer-forming probe 1, 2-bis[(pyren-1-)yl]decanoyl-sn-glycero-3-phosphocholine (bis-PDPC) in the course of fusion and hemifusion. Comparison with another intramolecular excimer-forming probe, namely, 1-[(pyren-1)-yl]decanoyl-2-[(pyren-1)-yl]tetradecanoyl-sn-gl ycero-3-p hosphocholine (PDPTPC), allowed us to exclude changes in acyl chain alignment to be causing the decrement in Ie/Im. As a decrease in Vf should increase Ie/Im for bis-PDPC and because contact site between adhering liposomes was required we conclude the most feasible explanation to be the adoption of the extended conformation (P.K.J., Chem. Phys. Lipids 63:251-258) by bis-PDPC. In this conformation the two acyl chains are splaying so as to become embedded in the opposing leaflets of the two adhered bilayers, with the headgroup remaining between the adjacent surfaces. Our data provide evidence for a novel mechanism of fusion of the lipid bilayers.
分别使用毫摩尔浓度的Ca2+和Mg2+诱导大单层二油酰磷脂酸/磷脂酰胆碱(DOPA/DOPC,摩尔比1:1)囊泡融合和半融合的分子水平机制,通过荧光光谱进行了研究。与膜自由体积Vf的减小相一致,两种二价阳离子均增加了1,6-二苯基-1,3,5-己三烯(DPH)的发射偏振。一个重要发现是,在融合和半融合过程中,分子内形成准分子的探针1,2-双[(芘-1-)基]癸酰-sn-甘油-3-磷酸胆碱(双-PDPC)的准分子/单体发射强度比(Ie/Im)降低。与另一种分子内形成准分子的探针,即1-[(芘-1)-基]癸酰-2-[(芘-1)-基]十四烷酰-sn-甘油-3-磷酸胆碱(PDPTPC)进行比较,使我们能够排除酰基链排列变化导致Ie/Im降低的可能性。由于Vf的减小应会增加双-PDPC的Ie/Im,并且由于需要粘附脂质体之间的接触位点,我们得出最合理的解释是双-PDPC采用了伸展构象(P.K.J.,《化学物理脂质》63:251-258)。在这种构象中,两条酰基链展开,从而嵌入两个粘附双层的相对小叶中,而头部基团保留在相邻表面之间。我们的数据为脂质双层融合的新机制提供了证据。