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Bayesian total internal reflection fluorescence correlation spectroscopy reveals hIAPP-induced plasma membrane domain organization in live cells

机译:贝叶斯全内反射荧光相关光谱显示活细胞中hIAPP诱导的质膜结构域组织

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摘要

Amyloid fibril deposition of human islet amyloid polypeptide (hIAPP) in pancreatic islet cells is implicated in the pathogenesis of type II diabetes. A growing number of studies suggest that small peptide aggregates are cytotoxic via their interaction with the plasma membrane, which leads to membrane permeabilization or disruption. A recent study using imaging total internal reflection-fluorescence correlation spectroscopy (ITIR-FCS) showed that monomeric hIAPP induced the formation of cellular plasma membrane microdomains containing dense lipids, in addition to the modulation of membrane fluidity. However, the spatial organization of microdomains and their temporal evolution were only partially characterized due to limitations in the conventional analysis and interpretation of imaging FCS datasets. Here, we apply a previously developed Bayesian analysis procedure to ITIR-FCS data to resolve hIAPP-induced microdomain spatial organization and temporal dynamics. Our analysis enables the visualization of the temporal evolution of multiple diffusing species in the spatially heterogeneous cell membrane, lending support to the carpet model for the association mode of hIAPP aggregates with the plasma membrane. The presented Bayesian analysis procedure provides an automated and general approach to unbiased model-based interpretation of imaging FCS data, with broad applicability to resolving the heterogeneous spatial-temporal organization of biological membrane systems.
机译:人胰岛淀粉样多肽(hIAPP)在胰岛胰岛细胞中的淀粉样原纤维沉积与II型糖尿病的发病有关。越来越多的研究表明,小的肽聚集体通过与质膜的相互作用而具有细胞毒性,从而导致膜通透性或破坏。最近使用成像全内反射-荧光相关光谱法(ITIR-FCS)进行的研究表明,单体hIAPP可以诱导细胞质膜微区的形成,该微区除了可以调节膜流动性外,还可以包含高密度脂质。但是,由于对FCS成像数据集的常规分析和解释存在局限性,因此仅部分表征了微域的空间组织及其时间演变。在这里,我们将先前开发的贝叶斯分析程序应用于ITIR-FCS数据,以解决hIAPP诱导的微域空间组织和时间动态。我们的分析使可视化的空间异质性细胞膜中的多种扩散物种的时间演变,为地毯模型的hIAPP聚集体与质膜的关联模式提供了支持。提出的贝叶斯分析程序为成像FCS数据的基于无偏模型的解释提供了一种自动化的通用方法,对解决生物膜系统的异质时空组织具有广泛的适用性。

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