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Membrane Fluidity and Lipid Order in Ternary Giant Unilamellar Vesicles Using a New Bodipy-Cholesterol Derivative

机译:新的Bodipy-胆固醇衍生物在三元巨型单层囊泡中的膜流动性和脂质顺序

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摘要

Cholesterol-rich, liquid-ordered (Lo) domains are believed to be biologically relevant, and yet detailed knowledge about them, especially in live cells under physiological conditions, is elusive. Although these domains have been observed in model membranes, understanding cholesterol-lipid interactions at the molecular level, under controlled lipid mixing, remains a challenge. Further, although there are a number of fluorescent lipid analogs that partition into liquid-disordered (Ld) domains, the number of such analogs with a high affinity for biologically relevant Lo domains is limited. Here, we use a new Bodipy-labeled cholesterol (Bdp-Chol) derivative to investigate membrane fluidity, lipid order, and partitioning in various lipid phases in giant unilamellar vesicles (GUVs) as a model system. GUVs were prepared from mixtures of various molar fractions of dioleoylphosphatidylcholine, cholesterol, and egg sphingomyelin. The Ld phase domains were also labeled with 1,1′-didodecyl-3,3,3′,3′-tetramethylindocarbocyanine (DiI-C12) for comparison. Two-photon fluorescence lifetime and anisotropy imaging of Bdp-Chol are sensitive to lipid phase domains in GUVs. The fluorescence lifetime of Bdp-Chol in liquid-disordered, single-phase GUVs is 5.50 ± 0.08 ns, compared with 4.1 ± 0.4 ns in the presence of DiI-C12. The observed reduction of fluorescence lifetime is attributed to Förster resonance energy transfer between Bdp-Chol (a donor) and DiI-C12 (an acceptor) with an estimated efficiency of 0.25 and donor-acceptor distance of 2.6 ± 0.2 nm. These results also indicate preferential partitioning (Kp = 1.88) of Bdp-Chol into the Lo phase. One-photon, time-resolved fluorescence anisotropy of Bdp-Chol decays as a triexponential in the lipid bilayer with an average rotational diffusion coefficient, lipid order parameter, and membrane fluidity that are sensitive to phase domains. The translational diffusion coefficient of Bdp-Chol, as measured using fluorescence correlation spectroscopy, is (7.4 ± 0.3) × 10−8 cm2/s and (5.0 ± 0.2) × 10−8 cm2/s in the Ld and Lo phases, respectively. Experimental translational/rotational diffusion coefficient ratios are compared with theoretical predictions using the hydrodynamic model (Saffman-Delbrück). The results suggest that Bdp-Chol is likely to form a complex with other lipid molecules during its macroscopic diffusion in GUV lipid bilayers at room temperature. Our integrated, multiscale results demonstrate the potential of this cholesterol analog for studying lipid-lipid interactions, lipid order, and membrane fluidity of biologically relevant Lo domains.
机译:富含胆固醇的液体有序(Lo)域被认为具有生物学相关性,但是关于它们的详细知识(尤其是在生理条件下的活细胞中)仍然难以捉摸。尽管已经在模型膜中观察到了这些结构域,但是在受控的脂质混合下,在分子水平上了解胆固醇-脂质相互作用仍然是一个挑战。此外,尽管有许多荧光脂质类似物可划分为液体无序(Ld)结构域,但是对与生物学相关的Lo结构域具有高亲和力的此类类似物的数目受到限制。在这里,我们使用新的Bodipy标记的胆固醇(Bdp-Chol)衍生物作为模型系统研究膜流动性,脂质顺序以及在巨大单层囊泡(GUV)中各个脂质相中的分配。从不同摩尔分数的油酰磷脂酰胆碱,胆固醇和卵鞘磷脂的混合物制备GUV。为了比较,还用1,1'-二癸基-3,3,3',3'-四甲基吲哚基花菁(DiI-C12)标记了Ld相域。 Bdp-Chol的双光子荧光寿命和各向异性成像对GUV中的脂质相域敏感。 Bdp-Chol在液体无序单相GUV中的荧光寿命为5.50±0.08 ns,而在DiI-C12存在下为4.1±0.4 ns。观察到的荧光寿命减少归因于Bdp-Chol(供体)和DiI-C12(受体)之间的Förster共振能量转移,估计效率为0.25,供体-受体距离为2.6±0.2 nm。这些结果还表明Bdp-Chol优先分配到Lo相中(Kp = 1.88)。 Bdp-Chol的单光子时间分辨荧光各向异性在脂质双层中以三指数衰减,具有对相域敏感的平均旋转扩散系数,脂质有序参数和膜流动性。使用荧光相关光谱法测得的Bdp-Chol的平移扩散系数为(7.4±0.3)×10 −8 cm 2 / s和(5.0±0.2)在Ld和Lo相位分别为×10 −8 cm 2 / s。使用流体动力学模型(Saffman-Delbrück)将实验的平移/旋转扩散系数比与理论预测值进行比较。结果表明,Bdp-Chol在室温下在GUV脂质双层中的宏观扩散过程中可能与其他脂质分子形成复合物。我们综合的,多尺度的结果证明了这种胆固醇类似物在研究脂质-脂质相互作用,脂质顺序和生物学相关Lo结构域的膜流动性方面的潜力。

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