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DHA-fluorescent probe is sensitive to membrane order and reveals molecular adaptation of DHA in ordered lipid microdomains

机译:DHA-荧光探针对膜序来敏感揭示DHA在有序脂质微摩体中的分子适应

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摘要

Docosahexaenoic acid (DHA) disrupts the size and order of plasma membrane lipid microdomains in vitro and in vivo. However, it is unknown how the highly disordered structure of DHA mechanistically adapts to increase the order of tightly packed lipid microdomains. Therefore, we studied a novel DHA-Bodipy fluorescent probe to address this issue. We first determined if the DHA-Bodipy probe localized to the plasma membrane of primary B and immortal EL4 cells. Image analysis revealed that DHA-Bodipy localized into the plasma membrane of primary B cells more efficiently than EL4 cells. We then determined if the probe detected changes in plasma membrane order. Quantitative analysis of time-lapse movies established that DHA-Bodipy was sensitive to membrane molecular order. This allowed us to investigate how DHA-Bodipy physically adapted to ordered lipid microdomains. To accomplish this, we employed steady-state and time-resolved fluorescence anisotropy measurements in lipid vesicles of varying composition. Similar to cell culture studies, the probe was highly sensitive to membrane order in lipid vesicles. Moreover, these experiments revealed, relative to controls, that upon incorporation into highly ordered microdomains, DHA-Bodipy underwent an increase in its fluorescence lifetime and molecular order. In addition, the probe displayed a significant reduction in its rotational diffusion compared to controls. Altogether, DHA-Bodipy was highly sensitive to membrane order and revealed for the first time that DHA, despite its flexibility, could become ordered with less rotational motion inside ordered lipid microdomains. Mechanistically, this explains how DHA acyl chains can increase order upon formation of lipid microdomains in vivo.
机译:二十二碳六烯酸(DHA)在体外和体内都会破坏质膜脂质微区的大小和顺序。然而,未知的DHA高度无序的结构如何机械地适应增加紧密堆积的脂质微域的顺序。因此,我们研究了一种新型的DHA-Bodipy荧光探针来解决这个问题。我们首先确定DHA-Bodipy探针是否定位于原代B细胞和永生EL4细胞的质膜。图像分析显示,DHA-Bodipy比EL4细胞更有效地定位在原代B细胞的质膜中。然后,我们确定探针是否检测到质膜顺序的变化。延时电影的定量分析表明,DHA-Bodipy对膜分子顺序敏感。这使我们能够研究DHA-Bodipy如何物理适应有序脂质微结构域。为此,我们在不同组成的脂质囊泡中采用了稳态和时间分辨的荧光各向异性测量。与细胞培养研究相似,该探针对脂质小泡中的膜秩序高度敏感。而且,相对于对照,这些实验表明,在掺入高度有序的微区中后,DHA-Bodipy的荧光寿命和分子顺序增加了。另外,与对照相比,探针显示出其旋转扩散显着降低。总而言之,DHA-Bodipy对膜的排列高度敏感,并首次揭示了DHA,尽管它具有柔韧性,但在有序的脂质微区内部可以通过较少的旋转运动而变得有序。从机理上讲,这解释了DHA酰基链如何在体内脂质微结构域形成后增加顺序。

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