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High-Speed Single-Molecule Tracking of CXCL13 in the B-Follicle

机译:B卵泡中CXCL13的高速单分子跟踪

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摘要

Soluble factors are an essential means of communication between cells and their environment. However, many molecules readily interact with extracellular matrix components, giving rise to multiple modes of diffusion. The molecular quantification of diffusion in situ is thus a challenging imaging frontier, requiring very high spatial and temporal resolution. Overcoming this methodological barrier is key to understanding the precise spatial patterning of the extracellular factors that regulate immune function. To address this, we have developed a high-speed light microscopy system capable of millisecond sampling in ex vivo tissue samples and submillisecond sampling in controlled in vitro samples to characterize molecular diffusion in a range of complex microenvironments. We demonstrate that this method outperforms competing tools for determining molecular mobility of fluorescence correlation spectroscopy (FCS) and fluorescence recovery after photobleaching (FRAP) for evaluation of diffusion. We then apply this approach to study the chemokine CXCL13, a key determinant of lymphoid tissue architecture, and B-cell-mediated immunity. Super-resolution single-molecule tracking of fluorescently labeled CCL19 and CXCL13 in collagen matrix was used to assess the heterogeneity of chemokine mobility behaviors, with results indicating an immobile fraction and a mobile fraction for both molecules, with distinct diffusion rates of 8.4 ± 0.2 and 6.2 ± 0.3 µm2s−1, respectively. To better understand mobility behaviors in situ, we analyzed CXCL13-AF647 diffusion in murine lymph node tissue sections and observed both an immobile fraction and a mobile fraction with an example diffusion coefficient of 6.6 ± 0.4 µm2s−1, suggesting that mobility within the follicle is also multimodal. In quantitatively studying mobility behaviors at the molecular level, we have obtained an increased understanding of CXCL13 bioavailability within the follicle. Our high-speed single-molecule tracking approach affords a novel perspective from which to understand the mobility of soluble factors relevant to the immune system.
机译:可溶性因子是细胞与其环境之间进行交流的重要手段。但是,许多分子很容易与细胞外基质成分相互作用,从而导致多种扩散模式。因此,原位扩散的分子量化是一个具有挑战性的成像领域,需要非常高的空间和时间分辨率。克服这种方法上的障碍是了解调节免疫功能的细胞外因子的精确空间格局的关键。为了解决这个问题,我们开发了一种高速光学显微镜系统,该系统能够在离体组织样本中进行毫秒采样,并在受控的体外样本中进行亚毫秒采样,以表征一系列复杂微环境中的分子扩散。我们证明,此方法优于竞争工具,用于确定荧光相关光谱(FCS)的分子迁移率和光漂白(FRAP)后用于评估扩散的荧光恢复。然后,我们将这种方法用于研究趋化因子CXCL13(淋巴组织结构和B细胞介导的免疫力的关键决定因素)。胶原基质中荧光标记的CCL19和CXCL13的超分辨率单分子跟踪用于评估趋化因子迁移行为的异质性,结果表明这两个分子的固定部分和移动部分的扩散速率分别为8.4±0.2和分别为6.2±0.3 µm 2 s -1 。为了更好地了解原位的迁移行为,我们分析了CXCL13-AF647在小鼠淋巴结组织切片中的扩散,并观察到固定部分和移动部分的扩散系数为6.6±0.4μm 2 s < sup> -1 ,表明卵泡内的活动性也是多峰的。在定量研究分子水平上的流动性行为时,我们对卵泡中CXCL13的生物利用度有了进一步的了解。我们的高速单分子跟踪方法提供了一个新颖的视角,从中可以了解与免疫系统相关的可溶性因子的活动性。

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