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Evolution of a Rippled Membrane during Phospholipase A2 Hydrolysis Studied by Time-Resolved AFM

机译:时间分辨原子力显微镜研究磷脂酶A2水解过程中膜的演变

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摘要

The sensitivity of phospholipase A2 (PLA2) for lipid membrane curvature is explored by monitoring, through time-resolved atomic force microscopy, the hydrolysis of supported double bilayers in the ripple phase. The ripple phase presents a corrugated morphology. PLA2 is shown to have higher activity toward the ripple phase compared to the gel phase in 1,2-dimyristoyl-sn-glycero-3-phosphocholine (DMPC) membranes, indicating its preference for this highly curved membrane morphology. Hydrolysis of the stable and metastable ripple structures is monitored for equimolar DMPC/1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC)-supported double bilayers. As shown by high-performance liquid chromatography results, DSPC is resistant to hydrolysis at this temperature, resulting in a more gradual hydrolysis of the surface that leads to a change in membrane morphology without loss of membrane integrity. This is reflected in an increase in ripple spacing, followed by a sudden flattening of the lipid membrane during hydrolysis. Hydrolysis of the ripple phase results in anisotropic holes running parallel to the ripples, suggesting that the ripple phase has strip regions of higher sensitivity to enzymatic attack. Bulk high-performance liquid chromatography measurements indicate that PLA2 preferentially hydrolyzes DMPC in the DMPC/DSPC ripples. We suggest that this leads to the formation of a flat gel-phase lipid membrane due to enrichment in DSPC. The results point to the ability of PLA2 for inducing a compositional phase transition in multicomponent membranes through preferential hydrolysis while preserving membrane integrity.
机译:磷脂酶A2(PLA2)对脂质膜曲率的敏感性是通过使用时间分辨原子力显微镜监测波纹相中支持的双层的水解来监测的。波纹相呈现波纹状形态。与1,2-二肉豆蔻酰基-sn-甘油-3-磷酸胆碱(DMPC)膜中的凝胶相相比,PLA2对波纹相具有更高的活性,表明其偏爱这种高度弯曲的膜形态。监测稳定和亚稳态波纹结构的水解情况,以检测等摩尔的DMPC / 1,2-二硬脂酰基-sn-甘油-3-磷酸胆碱(DSPC)支持的双层。如高效液相色谱结果所示,DSPC在此温度下耐水解,导致表面逐渐水解,从而导致膜形态发生变化,而不会损失膜的完整性。这反映为波纹间距增加,随后在水解过程中脂质膜突然变平。波纹相的水解导致各向异性的空穴平行于波纹延伸,这表明波纹相具有对酶攻击具有更高敏感性的条状区域。大量高效液相色谱测量表明,PLA2优先水解DMPC / DSPC波纹中的DMPC。我们建议由于DSPC的富集,导致形成平坦的凝胶相脂质膜。结果表明,PLA2具有通过优先水解在保持膜完整性的同时在多组分膜中诱导组成相变的能力。

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