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Use of non-contact hopping probe ion conductance microscopy to investigate dynamic morphology of live platelets

机译:使用非接触跳跃探针离子电导显微镜研究活血小板的动态形态

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Circulating platelets are anucleated and multi-functional cells that participate in hemostasis and arterial thrombosis. Multiple ligands and mechanical forces activate platelets, leading to cytoskeletal rearrangement and dramatic shape-changes. Such dramatic changes in platelets membrane structures are commonly detected by optical and electron microscopy after platelets are fixed. We have recently developed a method to study the membrane morphology of live platelets using Hopping Probe Ion Conductance Microscopy (HPICM). We have successfully used this technology to study the process of platelet microvesiculation upon exposure to selective agonists. Here, we further discussed technical details of using HPICM to study platelet biology and compared results from HPICM to those from conventional atomic force microscopy and scanning electron microscopy. This method offers several advantages over current technologies. First, it monitors morphological changes of platelets in response to agonists in real time. Second, platelets can be repeatedly scanned over time without damages brought by heat and prolong light exposure. Third, there is no direct contact with platelet surface so that there will no or minimal mechanical damages brought by a cantilever of a conventional atomic force microscopy. Finally, it offers the potential to study platelet membrane ion channels, which have been technically challenging up-to-date. Our data show that HPICM has high-resolution in delineating changes of platelet morphology in response to stimulations and could help to unravel the complex role of platelet in thrombus formation.
机译:循环血小板是参与止血和动脉血栓形成的无核和多功能细胞。多个配体和机械力激活血小板,导致细胞骨架重排和剧烈的形状变化。血小板固定后,通常通过光学和电子显微镜检测血小板膜结构的这种剧烈变化。我们最近开发了一种使用跳跃探针离子电导显微镜(HPICM)研究活血小板膜形态的方法。我们已经成功地使用了这项技术来研究血小板微囊泡暴露于选择性激动剂的过程。在这里,我们进一步讨论了使用HPICM研究血小板生物学的技术细节,并将HPICM的结果与常规原子力显微镜和扫描电子显微镜的结果进行了比较。与现有技术相比,该方法具有许多优势。首先,它实时监测响应激动剂的血小板形态变化。其次,可以随时间反复扫描血小板,而不会因加热和长时间曝光而造成损害。第三,不与血小板表面直接接触,因此不会或仅有常规原子力显微镜的悬臂带来的最小机械损伤。最后,它提供了研究血小板膜离子通道的潜力,而这些通道在技术上一直是最新的。我们的数据表明,HPICM具有高分辨力,可描绘出响应刺激而产生的血小板形态变化,并有助于揭示血小板在血栓形成中的复杂作用。

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