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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Local anesthetic-induced microscopic and mesoscopic effects in micelles. A fluorescence, spin label and SAXS study
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Local anesthetic-induced microscopic and mesoscopic effects in micelles. A fluorescence, spin label and SAXS study

机译:胶束中局部麻醉剂引起的微观和介观作用。荧光,自旋标记和SAXS研究

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摘要

The interaction of the local anesthetic tetracaine (TTC) with anionic sodium lauryl sulfate (SLS) and zwitterionic 3-(N-hexadecyl-N,N-dimethylammonio)propanesulfonate (HPS) micelles was investigated by fluorescence, spin labeling EPR and small angle X-ray scattering (SAXS). Fluorescence pH titrations allowed the choice of adequate pHs for the EPR and SAXS experiments, where either charged or uncharged TTC would be present. The data also indicated that the anesthetic is located in a less polar environment than its charged counterpart in both micellar systems. EPR spectra evidenced that both anesthetic forms increased molecular organization within the SLS micelle, the cationic form exerting a more pronounced effect. The SAXS data showed that protonated TTC causes an increase in the SLS polar shell thickness, hydration number, and aggregation number, whereas the micellar features are not altered upon incorporation of the uncharged drug. The combined results suggest that the electrostatic interaction between charged TTC and SLS, and the intercalation of the drug in the micellar polar region induce a change in molecular packing with a decrease in the mean cross-sectional area, not observed when the neutral drug sinks more deeply into the micellar hydrophobic domain. In the case of HPS micelles, the EPR spectral changes were small for the charged anesthetic and the SAXS data did not evidence any change in micellar structure, suggesting that this species protrudes more into the aqueous phase due to the lack of electrostatic attractive forces in this system.
机译:通过荧光,自旋标记EPR和小角度X考察了局麻药丁卡因(TTC)与阴离子月桂基硫酸钠(SLS)和两性离子3-(N-十六烷基-N,N-二甲基铵)丙烷磺酸盐(HPS)胶束的相互作用。射线散射(SAXS)。荧光pH滴定法可以为EPR和SAXS实验选择适当的pH,在这些实验中可能存在带电或不带电的TTC。数据还表明,在两个胶束系统中,麻醉剂所处的极性都小于其带电荷的麻醉剂。 EPR光谱表明,两种麻醉剂形式均会增加SLS胶束中的分子组织,而阳离子形式则表现出更明显的作用。 SAXS数据显示,质子化的TTC导致SLS极性壳层厚度,水合数和聚集数增加,而胶束特征在掺入不带电荷的药物后不会改变。综合结果表明,带电的TTC和SLS之间的静电相互作用以及药物在胶束极性区域中的嵌入会导致分子堆积的变化,平均横截面积减小,而中性药物下沉时则未观察到深入到胶束疏水域。在HPS胶束的情况下,带电麻醉剂的EPR光谱变化很小,SAXS数据未证明胶束结构有任何变化,这表明该物种由于缺乏静电吸引力而更向水相突出。系统。

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