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GUVs Melt Like LUVs: The Large Heat Capacity of MLVs Is Not Due to Large Size or Small Curvature

机译:GUV像LUV一样熔化:MLV的大热容量并非归因于尺寸大或曲率小

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摘要

The excess heat capacity functions (ΔCp) associated with the main phase transition of large unilamellar vesicles (LUVs) and multilamellar vesicles (MLVs) are very different. Two explanations are possible. First, the difference in vesicle size (curvature) results in different gel-fluid interactions in the membrane; those interactions have a large effect on the cooperativity of the phase transition. Second, there is communication between the bilayers in an MLV when they undergo the gel-fluid transition; this communication results in thermodynamic coupling of the phase transitions of the bilayers in the MLV and, consequently, in an apparent increase in the cooperativity of the transition. To test these hypotheses, differential scanning calorimetry was performed on giant unilamellar vesicles (GUVs) of pure dipalmitoylphosphatidylcholine. The ΔCp curve of GUVs was found to resemble that of the much smaller LUVs. The transition in GUVs and LUVs is much broader (half-width ∼1.5°C) than in MLVs (∼0.1°C). This similarity in GUVs and LUVs indicates that their size has little effect on gel-fluid interactions in the phase transition. The result suggests that coupling between the transitions in the bilayers of an MLV is responsible for their apparent higher cooperativity in melting.
机译:与大单层囊泡(LUVs)和多层囊泡(MLVs)的主相变相关的过剩热容量函数(ΔCp)有很大不同。有两种解释。首先,囊泡大小(曲率)的差异会导致膜中不同的凝胶-流体相互作用。这些相互作用对相变的协同作用有很大的影响。其次,当MLV中的双层经历凝胶-流体转变时,它们之间存在连通。这种连通导致MLV中双层的相变的热力学耦合,因此,明显提高了转变的协同性。为了检验这些假设,对纯二棕榈酰磷脂酰胆碱的巨型单层囊泡(GUV)进行了差示扫描量热法。发现GUV的ΔCp曲线与小得多的LUV的ΔCp曲线相似。 GUV和LUV中的转变要比MLV中的转变(约0.1°C)宽得多(半宽约1.5°C)。 GUV和LUV的相似性表明,它们的大小对相变中的凝胶-流体相互作用几乎没有影响。结果表明,MLV双层中的跃迁之间的耦合是其明显更高的熔融协同性的原因。

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