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首页> 外文期刊>Journal of biological inorganic chemistry: JBIC: a publication of the Society of Biological Inorganic Chemistry >The transport kinetics of lanthanide species in a single erythrocyte probed by confocal laser scanning microscopy
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The transport kinetics of lanthanide species in a single erythrocyte probed by confocal laser scanning microscopy

机译:共聚焦激光扫描显微镜探测单种红细胞中镧系元素的迁移动力学

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A novel method has been developed to visualize and follow the temporal course of lanthanide transport across the membrane into a single living erythrocyte. By means of confocal scanning microscopy and the optical section technique, the entry of lanthanide ions was followed by the fluorescence quenching of fluorescein isothiocyanate (FITC)-labeled membrane and cytosol. From the difference of the quenching kinetics of the whole section and the central area, the time for diffusion through the membrane and the diffusion in the extracellular and intracellular media can be deduced. To clarify the mechanism of lanthanide-induced fluorescence quenching of FITC-labeled erythrocytes and to ensure that this reaction can be used in this method, the reaction was investigated by steady-state fluorescence techniques. The results showed that the lanthanides strongly quenched the florescence emitted by FITC covalently bound to membrane proteins and cytosolic proteins. The static quenching mechanism is responsible for the fluorescence quenching of FITC-labeled proteins by Ln species. The quenching mechanism is discussed on the basis of complex formation. The dependence of fluorescence quenching on both ion size and the total orbital angular momentum L supports the complexation mechanism. The transport time across the membrane is strikingly correlated with Ln species and extracellular concentration. For a given concentration, the transport time of [Ln(cit)_2]~(3-) is much shorter than that of Ln~(3+), since they enter the cells via the anion channel. This is supported by the inhibition effect of 4, 4'-diisothiocyanato-2, 2'-stilbenendisulfonate on the transport of [Ln(cit)_2]~(3-). On the other hand, the transport of free Ln~(3+) might be attributed to the enhanced permeability of erythrocytes owing to Ln~3+ binding. These findings strongly demonstrate the existence of the non-internalization mechanism of Ln species uptake by erythrocytes.
机译:已经开发出一种新颖的方法来可视化并跟踪镧系元素跨膜转运进入单个活血红细胞的时间过程。通过共聚焦扫描显微镜和光学切片技术,镧系元素离子进入后,荧光素异硫氰酸酯(FITC)标记的膜和细胞质被荧光猝灭。从整个截面和中心区域的猝灭动力学的差异,可以推定通过膜扩散以及在细胞外和细胞内介质中扩散的时间。为了阐明镧系元素诱导的FITC标记的红细胞的荧光猝灭机理,并确保该反应可用于该方法,通过稳态荧光技术研究了该反应。结果表明,镧系元素强烈抑制了由FITC共价结合至膜蛋白和胞质蛋白的荧光。静态猝灭机制负责通过Ln物种对FITC标记的蛋白质进行荧光猝灭。在络合物形成的基础上讨论了淬灭机理。荧光猝灭对离子尺寸和总轨道角动量L的依赖性支持了络合机理。跨膜的运输时间与Ln物种和细胞外浓度显着相关。对于给定的浓度,[Ln(cit)_2]〜(3-)的运输时间比Ln〜(3+)的运输时间短得多,因为它们通过阴离子通道进入细胞。这由4,4'-二异硫氰酸根-2,2'-磺基苯二磺酸盐对[Ln(cit)_2]〜(3-)的运输的抑制作用所支持。另一方面,由于Ln〜3 +的结合,游离Ln〜(3+)的转运可能归因于红细胞通透性的提高。这些发现有力地证明了红细胞摄取Ln物种的非内在化机制的存在。

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