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基于微流控的超分辨率显微镜可实现对血液干细胞滚动的纳米级特征分析。

Microfluidics-based super-resolution microscopy enables nanoscopic characterization of blood stem cell rolling.

机构信息

King Abdullah University of Science and Technology (KAUST), Biological and Environmental Sciences and Engineering Division, Thuwal 23955-6900, Saudi Arabia.

出版信息

Sci Adv. 2018 Jul 18;4(7):eaat5304. doi: 10.1126/sciadv.aat5304. eCollection 2018 Jul.

Abstract

Hematopoietic stem/progenitor cell (HSPC) homing occurs via cell adhesion mediated by spatiotemporally organized ligand-receptor interactions. Although molecules and biological processes involved in this multistep cellular interaction with endothelium have been studied extensively, molecular mechanisms of this process, in particular the nanoscale spatiotemporal behavior of ligand-receptor interactions and their role in the cellular interaction, remain elusive. We introduce a microfluidics-based super-resolution fluorescence imaging platform and apply the method to investigate the initial essential step in the homing, tethering, and rolling of HSPCs under external shear stress that is mediated by selectins, expressed on endothelium, with selectin ligands (that is, CD44) expressed on HSPCs. Our new method reveals transient nanoscale reorganization of CD44 clusters during cell rolling on E-selectin. We demonstrate that this mechanical force-induced reorganization is accompanied by a large structural reorganization of actin cytoskeleton. The CD44 clusters were partly disrupted by disrupting lipid rafts. The spatial reorganization of CD44 and actin cytoskeleton was not observed for the lipid raft-disrupted cells, demonstrating the essential role of the spatial clustering of CD44 on its reorganization during cell rolling. The lipid raft disruption causes faster and unstable cell rolling on E-selectin compared with the intact cells. Together, our results demonstrate that the spatial reorganization of CD44 and actin cytoskeleton is the result of concerted effect of E-selectin-ligand interactions, external shear stress, and spatial clustering of the selectin ligands, and has significant effect on the tethering/rolling step in HSPC homing. Our new experimental platform provides a foundation for characterizing complicated HSPC homing.

摘要

造血干细胞/祖细胞 (HSPC) 的归巢是通过时空组织的配体-受体相互作用介导的细胞黏附发生的。尽管已经广泛研究了参与这种内皮细胞多步细胞相互作用的分子和生物学过程,但该过程的分子机制,特别是配体-受体相互作用的纳米级时空行为及其在细胞相互作用中的作用,仍然难以捉摸。我们引入了一种基于微流控的超分辨率荧光成像平台,并应用该方法研究了在外源剪切应力下 HSPC 归巢、系链和滚动的初始基本步骤,该过程由内皮细胞上表达的选择素以及 HSPC 上表达的选择素配体(即 CD44)介导。我们的新方法揭示了 CD44 簇在 HSPC 上 E-选择素滚动过程中的瞬时纳米级重排。我们证明,这种机械力诱导的重排伴随着肌动蛋白细胞骨架的大结构重排。破坏质膜筏会部分破坏 CD44 簇。对于破坏质膜筏的细胞,没有观察到 CD44 和肌动蛋白细胞骨架的空间重排,这表明 CD44 的空间聚类在其细胞滚动过程中的重排中起着重要作用。与完整细胞相比,质膜筏的破坏导致细胞在 E-选择素上滚动更快且不稳定。总之,我们的结果表明,CD44 和肌动蛋白细胞骨架的空间重排是 E-选择素-配体相互作用、外部剪切应力和选择素配体的空间聚类协同作用的结果,并且对 HSPC 归巢中的系链/滚动步骤有重大影响。我们的新实验平台为表征复杂的 HSPC 归巢提供了基础。

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