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Toward a Better Raft Model: Modulated Phases in the Four-Component Bilayer DSPC/DOPC/POPC/CHOL

机译:迈向更好的筏模型:四组分双层中的调制相DSPC / DOPC / POPC / CHOL

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摘要

The liquid-liquid (Ld + Lo) coexistence region within a distearoyl-phosphatidylcholine/dioleoyl-phosphatidylcholine/palmitoyl-oleoyl-phosphatidylcholine/cholesterol (DSPC/DOPC/POPC/CHOL) mixture displays a nanoscopic-to-macroscopic transition of phase domains as POPC is replaced by DOPC. Previously, we showed that the transition goes through a modulated phase regime during this replacement, in which patterned liquid phase morphologies are observed on giant unilamellar vesicles (GUVs). Here, we describe a more detailed investigation of the modulated phase regime along two different thermodynamic tielines within the Ld + Lo region of this four-component mixture. Using fluorescence microscopy of GUVs, we found that the modulated phase regime occurs at relatively narrow DOPC/(DOPC+POPC) ratios. This modulated phase window shifts to higher values of DOPC/(DOPC+POPC) when CHOL concentration is increased, and coexisting phases become closer in properties. Monte Carlo simulations reproduced the patterns observed on GUVs, using a competing interactions model of line tension and curvature energies. Sufficiently low line tension and high bending moduli are required to generate stable modulated phases. Altogether, our studies indicate that by tuning the lipid composition, both the domain size and morphology can be altered drastically within a narrow composition space. This lends insight into a possible mechanism whereby cells can reorganize plasma membrane compartmentalization simply by tuning the local membrane composition or line tension.
机译:二硬脂酰磷脂酰胆碱/二油酰磷脂酰胆碱/棕榈酰-油酰-磷脂酰胆碱/胆固醇(DSPC / DOPC / POPC / CHOL)混合物中的液-液(Ld + Lo)共存区域显示出相域的纳米到宏观转变POPC被DOPC代替。以前,我们表明过渡过程在此替换过程中经历了调制相过程,其中在巨型单层囊泡(GUV)上观察到图案化的液相形态。在这里,我们描述了在这种四组分混合物的Ld + Lo区域内沿着两条不同的热力学联系线对调制相态进行更详细的研究。使用GUV的荧光显微镜,我们发现调制相态发生在相对较窄的DOPC /(DOPC + POPC)比率下。当CHOL浓度增加时,该已调制的相位窗口将移至较高的DOPC /(DOPC + POPC)值,并且共存相的性质会更接近。蒙特卡洛模拟使用线张力和曲率能量的竞争相互作用模型重现了在GUV上观察到的图案。为了产生稳定的调制相位,需要足够低的线张力和高弯曲模量。总之,我们的研究表明,通过调节脂质组成,可以在狭窄的组成空间内极大地改变域大小和形态。这有助于深入了解可能的机制,使细胞可以简单地通过调节局部膜成分或线张力来重组质膜区室。

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