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在脑神经鞘磷脂的熔融过程中,界面水分子的重新取向与 C24:1 神经鞘磷脂脂质的相变有关。

Reorientation of interfacial water molecules during melting of brain sphingomyelin is associated with the phase transition of its C24:1 sphingomyelin lipids.

机构信息

Division for Organic Chemistry and Biochemistry, Ruđer Bošković Institute, Bijenička 54, Zagreb 10000, Croatia.

Division of Analytical Chemistry, Department of Chemistry, Faculty of Science, University of Zagreb, Horvatovac 102a, Zagreb 10000, Croatia.

出版信息

Chem Phys Lipids. 2024 Oct;264:105434. doi: 10.1016/j.chemphyslip.2024.105434. Epub 2024 Aug 30.

Abstract

Melting of brain sphingomyelin (bSM) manifests as a broad feature in the DSC curve that encompasses the temperature range of 25 - 45 °C, with two distinguished maxima originating from the phase transitions of two the most abundant components: C24:1 (T) and C18:0 (T). While C24:1/C18:0 sphingomyelin transforms from the gel/ripple phase to the fluid/fluid phase, the dynamics of water molecules in the interfacial layer remain completely unknown. Therefore, we carried out a calorimetric (DSC), spectroscopic (temperature-dependent UV-Vis and fluorescence) and MD simulation study of bSM in the absence/presence of Laurdan® (bSM ± L) suspended in Britton-Robinson buffer with three different pH values, 4 (BRB4), 7 (BRB7) and 9 (BRB9), and of comparable ionic strength (I = 100 mM). According to DSC, T̅ (≈ 34.5 °C/≈ 32.1 °C) and T̅ (≈ 38.0 °C/≈ 37.2 °C) of bSM suspended in BRB4, BRB7, and BRB9 in the absence/presence of Laurdan® are found to be practically pH-independent. Turbidity-based data (UV-Vis) detected both qualitative and quantitative differences in the response of bSM suspended in BRB4/BRB7/BRB9 (T̅: ∼ 35 °C/32.0 ± 0.2 °C/36.4 ± 0.4), suggesting an intricate interplay of weakening of van der Waals forces between their hydrocarbon chains and of increased hydration in the polar headgroups region during melting. The temperature-dependent response of Laurdan® reported a discontinuous, pH-dependent change in the reorientation of interfacial water molecules that coincides with the melting of C24:1 lipids (on average, T̅: ≈ 31.8 °C/30.6 °C/30.5 °C). MD simulations elucidated the impact of Laurdan® on a change in the physicochemical properties of bSM lipids and characterized the hydrogen bond network at the interface at 20 °C and 50 °C.

摘要

脑鞘磷脂(bSM)的熔化表现为 DSC 曲线中的一个宽特征,涵盖了 25-45°C 的温度范围,两个显著的最大值源自两个最丰富成分的相变:C24:1(T)和 C18:0(T)。当 C24:1/C18:0 鞘磷脂从凝胶/波纹相转变为流/流相时,界面层中水分子的动力学仍然完全未知。因此,我们在不存在/存在 Laurdan®(bSM±L)的情况下进行了脑鞘磷脂的量热(DSC)、光谱(温度依赖性紫外-可见和荧光)和 MD 模拟研究,将其悬浮在 Britton-Robinson 缓冲液中,缓冲液的 pH 值分别为 4(BRB4)、7(BRB7)和 9(BRB9),离子强度(I=100mM)相当。根据 DSC,在 BRB4、BRB7 和 BRB9 中不存在/存在 Laurdan®时,bSM 悬浮液的 T̅(≈34.5°C/≈32.1°C)和 T̅(≈38.0°C/≈37.2°C)实际上与 pH 无关。基于浊度的(紫外-可见)数据检测到 bSM 悬浮液在 BRB4/BRB7/BRB9 中的响应存在定性和定量差异(T̅:∼35°C/32.0±0.2°C/36.4±0.4°C),这表明在熔化过程中它们的烃链之间的范德华力减弱和极性头基团区域水合作用增强之间存在复杂的相互作用。报道的 Laurdan®的温度依赖性响应显示界面水分子的重新取向发生不连续的、依赖 pH 的变化,这与 C24:1 脂质的熔化相吻合(平均而言,T̅:≈31.8°C/30.6°C/30.5°C)。MD 模拟阐明了 Laurdan®对 bSM 脂质物理化学性质变化的影响,并在 20°C 和 50°C 时表征了界面处的氢键网络。

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