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液滴封装提高了免疫细胞细胞因子捕获检测的准确性。

Droplet encapsulation improves accuracy of immune cell cytokine capture assays.

作者信息

Yuan Yuan, Brouchon Julie, Calvo-Calle J Mauricio, Xia Jing, Sun Li, Zhang Xu, Clayton Kiera L, Ye Fangfu, Weitz David A, Heyman John A

机构信息

Beijing National Laboratory for Condensed Matter Physics and CAS Key Laboratory of Soft Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing, China.

出版信息

Lab Chip. 2020 Apr 21;20(8):1513-1520. doi: 10.1039/c9lc01261c. Epub 2020 Apr 3.

Abstract

Quantification of cell-secreted molecules, e.g., cytokines, is fundamental to the characterization of immune responses. Cytokine capture assays that use engineered antibodies to anchor the secreted molecules to the secreting cells are widely used to characterize immune responses because they allow both sensitive identification and recovery of viable responding cells. However, if the cytokines diffuse away from the secreting cells, non-secreting cells will also be identified as responding cells. Here we encapsulate immune cells in microfluidic droplets and perform in-droplet cytokine capture assays to limit the diffusion of the secreted cytokines. We use microfluidic devices to rapidly encapsulate single natural killer NK-92 MI cells and their target K562 cells into microfluidic droplets. We perform in-droplet IFN-γ capture assays and demonstrate that NK-92 MI cells recognize target cells within droplets and become activated to secrete IFN-γ. Droplet encapsulation prevents diffusion of secreted products to neighboring cells and dramatically reduces both false positives and false negatives, relative to assays performed without droplets. In a sample containing 1% true positives, encapsulation reduces, from 94% to 2%, the number of true-positive cells appearing as negatives; in a sample containing 50% true positives, the number of non-stimulated cells appearing as positives is reduced from 98% to 1%. After cells are released from the droplets, secreted cytokine remains captured onto secreting immune cells, enabling FACS-isolation of populations highly enriched for activated effector immune cells. Droplet encapsulation can be used to reduce background and improve detection of any single-cell secretion assay.

摘要

细胞分泌分子(如细胞因子)的定量分析是免疫反应特征描述的基础。使用工程抗体将分泌分子锚定到分泌细胞上的细胞因子捕获测定法被广泛用于免疫反应的特征描述,因为它们既能灵敏地识别又能回收有活力的反应细胞。然而,如果细胞因子从分泌细胞扩散出去,非分泌细胞也会被鉴定为反应细胞。在这里,我们将免疫细胞封装在微流控液滴中,并进行液滴内细胞因子捕获测定,以限制分泌的细胞因子的扩散。我们使用微流控装置将单个自然杀伤细胞NK-92 MI及其靶细胞K562快速封装到微流控液滴中。我们进行液滴内IFN-γ捕获测定,并证明NK-92 MI细胞在液滴内识别靶细胞并被激活分泌IFN-γ。相对于无液滴进行的测定,液滴封装可防止分泌产物扩散到邻近细胞,并显著减少假阳性和假阴性。在含有1%真阳性的样本中,封装将表现为阴性的真阳性细胞数量从94%减少到2%;在含有50%真阳性的样本中,表现为阳性的未刺激细胞数量从98%减少到1%。细胞从液滴中释放后,分泌的细胞因子仍捕获在分泌免疫细胞上,从而能够通过荧光激活细胞分选术分离高度富集激活效应免疫细胞的群体。液滴封装可用于减少背景并改善任何单细胞分泌测定的检测。

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