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A self-filling microfluidic device for noninvasive and time-resolved single red blood cell experiments

机译:一种用于无创且时间分辨的单红细胞实验的自填充微流控设备

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摘要

Existing approaches to red blood cell (RBC) experiments on the single-cell level usually rely on chemical or physical manipulations that often cause difficulties with preserving the RBC's integrity in a controlled microenvironment. Here, we introduce a straightforward, self-filling microfluidic device that autonomously separates and isolates single RBCs directly from unprocessed human blood samples and confines them in diffusion-controlled microchambers by solely exploiting their unique intrinsic properties. We were able to study the photo-induced oxygenation cycle of single functional RBCs by Raman microscopy without the limitations typically observed in optical tweezers based methods. Using bright-field microscopy, our noninvasive approach further enabled the time-resolved analysis of RBC flickering during the reversible shape evolution from the discocyte to the echinocyte morphology. Due to its specialized geometry, our device is particularly suited for studying the temporal behavior of single RBCs under precise control of their environment that will provide important insights into the RBC's biomedical and biophysical properties.
机译:现有的在单细胞水平上进行红细胞(RBC)实验的方法通常依赖于化学或物理操作,这些操作通常会导致在受控的微环境中保持RBC完整性的困难。在这里,我们介绍了一种简单,自填充的微流控设备,该设备可自动将未经处理的人体血液样本中的单个RBC直接分离并分离出来,并仅通过利用其独特的固有特性将它们限制在扩散控制的微腔室内。我们能够通过拉曼显微镜研究单功能红细胞的光诱导氧合循环,而没有在基于光镊的方法中通常观察到的限制。使用明场显微镜,我们的非侵入性方法进一步实现了从盘状细胞到棘突细胞形态的可逆形状演变过程中红细胞闪烁的时间分辨分析。由于其特殊的几何形状,我们的设备特别适合在精确控制其环境的情况下研究单个RBC的时间行为,这将为RBC的生物医学和生物物理特性提供重要见解。

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